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<ep-patent-document id="EP96911939B9W1" file="EP96911939W1B9.xml" lang="en" country="EP" doc-number="0830632" kind="B9" correction-code="W1" date-publ="20021218" status="c" dtd-version="ep-patent-document-v1-1">
<SDOBI lang="en"><B000><eptags><B001EP>......DEDK..FRGB................................................................</B001EP><B003EP>*</B003EP><B005EP>J</B005EP><B007EP>DIM350 (Ver 2.1 Jan 2001)
 2999001/0</B007EP></eptags></B000><B100><B110>0830632</B110><B120><B121>CORRECTED EUROPEAN PATENT SPECIFICATION</B121></B120><B130>B9</B130><B132EP>B1</B132EP><B140><date>20021218</date></B140><B150><B151>W1</B151><B155><B1551>DE</B1551><B1552>Beschreibung</B1552><B1551>EN</B1551><B1552>Description</B1552><B1551>FR</B1551><B1552>Description</B1552></B155></B150><B190>EP</B190></B100><B200><B210>96911939.5</B210><B220><date>19960426</date></B220><B240><B241><date>19971128</date></B241><B242><date>20000807</date></B242></B240><B250>en</B250><B251EP>en</B251EP><B260>en</B260></B200><B300><B310>50695</B310><B320><date>19950428</date></B320><B330><ctry>DK</ctry></B330></B300><B400><B405><date>20021218</date><bnum>200251</bnum></B405><B430><date>19980325</date><bnum>199813</bnum></B430><B450><date>20020717</date><bnum>200229</bnum></B450><B451EP><date>20010612</date></B451EP><B480><date>20021218</date><bnum>200251</bnum></B480></B400><B500><B510><B516>7</B516><B511> 7G 02B  27/52   A</B511><B512> 7G 06E   3/00   B</B512></B510><B540><B541>de</B541><B542>PHASENKONTRASTBILDERZEUGUNG</B542><B541>en</B541><B542>PHASE CONTRAST IMAGING</B542><B541>fr</B541><B542>IMAGERIE A CONTRASTE DE PHASE</B542></B540><B560><B561><text>EP-A- 0 657 760</text></B561><B561><text>GB-A- 2 199 716</text></B561><B561><text>US-A- 5 363 186</text></B561><B562><text>APPLIED OPTICS, NEW YORK, NY, US, vol. 27, no. 14, 15 July 1988, pages 2915-2921, XP002010327 LOHMANN A W ET AL: "ARRAY ILLUMINATOR BASED ON PHASE CONTRAST"</text></B562></B560></B500><B700><B720><B721><snm>GLÜCKSTAD, Jesper</snm><adr><str>Dalgas Have 38, 4. tv.</str><city>DK-2000 Frederiksberg</city><ctry>DK</ctry></adr></B721></B720><B730><B731><snm>FORSKNINGSCENTER RISO</snm><iid>00968881</iid><irf>13534 EP 1</irf><syn>RISO, FORSKNINGSCENTER</syn><adr><str>Frederiksborgvej 399
P.O. Box 49</str><city>4000 Roskilde</city><ctry>DK</ctry></adr></B731></B730><B740><B741><snm>Plougmann &amp; Vingtoft A/S</snm><iid>00101171</iid><adr><str>Sundkrogsgade
P.O. Box 831</str><city>2100 Copenhagen O</city><ctry>DK</ctry></adr></B741></B740></B700><B800><B840><ctry>DE</ctry><ctry>DK</ctry><ctry>FR</ctry><ctry>GB</ctry></B840><B860><B861><dnum><anum>DK9600190</anum></dnum><date>19960426</date></B861><B862>en</B862></B860><B870><B871><dnum><pnum>WO96034307</pnum></dnum><date>19961031</date><bnum>199648</bnum></B871></B870></B800></SDOBI><!-- EPO <DP n="1"> -->
<description id="desc" lang="en">
<heading id="h0001">FIELD OF THE INVENTION</heading>
<p id="p0001" num="0001">The invention relates to a method and a system for synthesizing a prescribed intensity pattern based on phase contrast imaging.</p>
<heading id="h0002">BACKGROUND OF THE INVENTION</heading>
<p id="p0002" num="0002">It is well known to form an image on an illuminated surface of a body by absorption or blocking of energy of an illuminating beam. For example in an overhead projector, an overhead transparent absorbs or blocks part of the light beam of the projector whereby a large image of an overhead is formed on a screen. However, this results in a loss of light intensity as part of the emitted light from an image forming system is reflected or absorbed.</p>
<p id="p0003" num="0003">To avoid loss of energy causing, e.g. loss of light intensity of the synthesized intensity pattern, power dissipation generating heat in components of the system, etc., methods and systems have been developed wherein the phase of a light beam is modulated instead of the amplitude or intensity of the light beam, as modulation of the phase of the light beam do not lead to loss of energy. The phase modulation is followed by a conversion of the phase modulation into an amplitude or intensity modulation.</p>
<p id="p0004" num="0004">A diffractive optical element, such as a holographic optical element, may be used to generate a phase modulation. Then, the resulting intensity modulation at each point of a picture formed by conversion of the phase modulation into intensity modulation will depend upon the phase modulation values at each point of the diffractive optical element as the light intensity at each point of the picture is formed by a coherent superposition of light received from the entire surface of the diffractive optical element. Diffractive optical elements are rather complex to design for synthesis of a prescribed intensity pattern.<!-- EPO <DP n="2"> --></p>
<p id="p0005" num="0005">Imaging methods and systems may also be used in connection with phase modulation. These methods and systems are characterized by the fact that the intensity of a point of a picture formed by conversion of phase modulation into intensity modulation will depend upon the phase modulation value of one point of the phase modulator only as this point is imaged onto the picture point in question by the imaging system. This one-to-one relationship makes the design of phase modulators in these systems simple. Methods and systems of this kind are named phase contrast imaging methods and systems.</p>
<p id="p0006" num="0006">Phase contrast imaging methods were originally developed within the field of microscopy. Many objects of interest in microscopy are largely transparent, thus absorbing little or no light. When light passes through such an object, the predominant effect is the generation of a spatially varying phase shift which can not be seen by a human as the eye of a human responds to light intensity and colour and does not respond to the phase of light.</p>
<p id="p0007" num="0007">In 1935, Fritz Zernik proposed a phase contrast technique which rests on spatial-filtering principles and has the advantage that the observed intensity is linearly related to the phase shift introduced by the object.</p>
<p id="p0008" num="0008">Suppose that a transparent object with amplitude transmittance<maths id="math0001" num="(1)"><math display="block"><mrow><mtext>t(</mtext><mtext mathvariant="italic">x</mtext><mtext>,</mtext><mtext mathvariant="italic">y</mtext><mtext>) = exp[jφ</mtext><mtext mathvariant="italic">(x,y)</mtext><mtext>]</mtext></mrow></math><img id="ib0001" file="imgb0001.tif" wi="36" he="5" img-content="math" img-format="tif"/></maths> is coherently illuminated in an image-forming system. For simplicity, a magnification of unity is assumed and the finite extent of the exit and entrance pupils of the system is neglected. Further, a necessary condition to achieve linearity between phase shift and intensity is that the phase shift φ be less than 1 radian, in which case the amplitude transmittance can be approximated by<!-- EPO <DP n="3"> --><maths id="math0002" num="(2)"><math display="block"><mrow><mtext>t(</mtext><mtext mathvariant="italic">x,y</mtext><mtext>) = 1 + jφ</mtext><mtext mathvariant="italic">(x,y)</mtext></mrow></math><img id="ib0002" file="imgb0002.tif" wi="35" he="5" img-content="math" img-format="tif"/></maths></p>
<p id="p0009" num="0009">The terms of order φ<sup>2</sup> and higher are neglected in this approximation. It is seen that the first term of (2) leads to a strong wave component that passes through the sample without change, while the second term generates weaker diffracted light that is deflected away from the axis of the system.</p>
<p id="p0010" num="0010">The image produced by a conventional microscope can be written<maths id="math0003" num="(3)"><math display="block"><mrow><msup><mrow><mtext>I ≈ |1 + jφ|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup><mtext> ≈ 1</mtext></mrow></math><img id="ib0003" file="imgb0003.tif" wi="32" he="6" img-content="math" img-format="tif"/></maths> where the term φ<sup>2</sup> has been approximated by zero. It is seen that the diffracted light is not observable because it is in phase quadrature with the strong background. As Zernik recognized that the background is brought to a focus on-axis in the focal plane while the diffracted light - containing higher spatial frequencies - is spread away from the focal point, he proposed that a phase-changing plate be inserted in the focal plane to modify the phase relation between focused and diffracted light.</p>
<p id="p0011" num="0011">The phase-changing plate can consist of a glass substrate on which a small transparent dielectric dot has been coated. The dot is placed at the center of the focal plane and has a thickness and index of refraction such that it retards the phase of the focused light by either π/2 radians or 3π/2 radians relative to the phase retardation of the diffracted light. In the former case the intensity in the image plane becomes<maths id="math0004" num="(4)"><math display="block"><mrow><msup><mrow><mtext>I = |exp[j(π/2)+jφ]|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup><msup><mrow><mtext> = |j(1+φ)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup><mtext> ≈ 1 + 2φ</mtext></mrow></math><img id="ib0004" file="imgb0004.tif" wi="75" he="6" img-content="math" img-format="tif"/></maths> while in the latter case<maths id="math0005" num="(5)"><math display="block"><mrow><msup><mrow><mtext>I = |exp[j(3π/2)+jφ]|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup><msup><mrow><mtext> = |j(-1+φ)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup><mtext> ≈ 1 - 2φ</mtext></mrow></math><img id="ib0005" file="imgb0005.tif" wi="78" he="6" img-content="math" img-format="tif"/></maths><!-- EPO <DP n="4"> --></p>
<p id="p0012" num="0012">Thus, the image intensity has become linearly related to the phase shift φ. When the phase of the background is retarded by π/2, the result is known as positive phase contrast, while a 3π/2 retardation is said to yield negative phase contrast.</p>
<p id="p0013" num="0013">It is seen that the method described above leads to a phase contrast imaging method that provides a small phase signal that is superimposed on a large DC-component. This leads to an important disadvantage of the method because, typically, it will be necessary to attenuate the DC-component to enhance the information contained in the phase modulated signal. However, the attenuation of the DC-component leads to loss of energy. This kind of filtering is usually denoted Dark Field Filtering.</p>
<p id="p0014" num="0014">It is another disadvantage of the phase contrast imaging method described above that it is based on the assumption that the phase shift φ is less than 1 radian which is very often not fulfilled in practical real-life applications. However, the theory is still applied to such applications, disregarding the fact that the basic assumption is not fulfilled, and this leads to non-optimized technical solutions.</p>
<p id="p0015" num="0015">In EP 0 657 760 a phase contrast imaging system is disclosed in which an image simulation and projection system is based on the Texas Instrument flexure beam digital mirror device (DMD). The flexure beam DMD is used for analog phase modulation of reflected light and the phase modulation is converted to amplitude modulation utilizing a phase contrast imaging method. The flexure beam DMD provides a flicker-free modulated wave and accordingly, optical image sensor synchronization is not needed. The system disclosed operates according to the Zernike method and, thus, includes the corresponding disadvantages described above.</p>
<p id="p0016" num="0016">Another example of a phase contrast imaging system is disclosed in GB 2 199 716, wherein an optical guide-beam projector for a missile guidance system is disclosed that<!-- EPO <DP n="5"> --> provides a spatially intensity modulated guide-beam. A spatial phase modulator is used to generate the guide-beam. The phase encoding of the spatial phase modulator constitutes a periodic square-wave modulation (50% duty cycle) of two phase values 0 and π/2. The phase modulation is converted into an amplitude modulation by Fourier transforming lenses and a phase plate providing a phase shift of the background signal by π/2. A method for synthesizing the specific intensity pattern of the optical guide-beam based on phase contrast imaging is not disclosed in this document.</p>
<p id="p0017" num="0017">A similar example of a phase contrast imaging system is disclosed in "Array illuminator based on phase contrast", Applied Optics Vol. 27, No. 14, pp. 2915-2921 (1988). A method is disclosed of converting a wide beam of uniform intensity into an array of bright spots without losses. The input spatial phase mask constitutes a periodic array of phase dots with the phase value π, the remaining area of the phase mask having the phase value 0. The phase modulation is converted into an amplitude modulation by Fourier transforming lenses and a phase plate providing a phase shift of the background signal by π. The method is limited to the implementation of periodic array configurations with the binary phase values 0 and π.</p>
<p id="p0018" num="0018">It is well-known to use so-called "radiation focusators", i.e. computer generated holographic optical elements, for spatial phase modulation of a light beam, e.g as disclosed in Special Issue on Computer Optics in the USSR, Optics and Lasers in Engineering, Vol. 15, no. 5 1991. However, such elements are complicated to synthesize. Typically, they are synthesized in such a way that the desired image is formed in the Fresnel region or the Frauenhofer region. Thus, the intensity of a resolution element in the generated image is a function of several, typically all, phase values of the resolution elements of the holographic optical element. Obviously, this complicates the design of a general purpose holographic optical element and advanced, very time consuming<!-- EPO <DP n="6"> --> algorithms have to be applied. Further, the complicated design of the holographic optical elements renders it almost impossible to implement dynamically changeable spatial phase modulators with such elements.</p>
<p id="p0019" num="0019">It is a further disadvantage of holographic optical elements that a carrier frequency is needed to separate diffracted light from non-diffracted light resulting in an off-axis system geometry and a need for a diffractive medium that can support these high frequency terms.</p>
<heading id="h0003">SUMMARY OF THE INVENTION</heading>
<p id="p0020" num="0020">It is an object of the present invention to provide an apparatus of the above kind which apparatus is robust, compact, simple to design and relatively cheap to manufacture.</p>
<p id="p0021" num="0021">It is another object of the present invention to provide an improved method and apparatus for phase contrast imaging that take all terms of the Taylor's series:<maths id="math0006" num="(6)"><math display="block"><mrow><mtext mathvariant="italic">t</mtext><mtext>(</mtext><mtext mathvariant="italic">x,y</mtext><mtext>)=</mtext><msup><mrow><mtext mathvariant="italic">e</mtext></mrow><mrow><mtext mathvariant="italic">i</mtext><mtext>φ(</mtext><mtext mathvariant="italic">x,y</mtext><mtext>)</mtext></mrow></msup><mtext>=1+</mtext><mtext mathvariant="italic">iφ</mtext><mtext>(</mtext><mtext mathvariant="italic">x,y</mtext><mtext>)-</mtext><mfrac><mrow><mtext>φ(</mtext><mtext mathvariant="italic">x</mtext><mtext>,</mtext><mtext mathvariant="italic">y</mtext><msup><mrow><mtext>)</mtext></mrow><mrow><mtext>2</mtext></mrow></msup></mrow><mrow><mtext>2!</mtext></mrow></mfrac><mtext> -</mtext><mtext mathvariant="italic">i</mtext><mtext> </mtext><mfrac><mrow><mtext>φ(</mtext><mtext mathvariant="italic">x</mtext><mtext>,</mtext><mtext mathvariant="italic">y</mtext><msup><mrow><mtext>)</mtext></mrow><mrow><mtext>3</mtext></mrow></msup></mrow><mrow><mtext>3!</mtext></mrow></mfrac><mtext> + </mtext><mfrac><mrow><mtext>φ(</mtext><mtext mathvariant="italic">x</mtext><mtext>,</mtext><mtext mathvariant="italic">y</mtext><msup><mrow><mtext>)</mtext></mrow><mrow><mtext>4</mtext></mrow></msup></mrow><mrow><mtext>4!</mtext></mrow></mfrac><mtext> + ...</mtext></mrow></math><img id="ib0006" file="imgb0006.tif" wi="108" he="11" img-content="math" img-format="tif"/></maths> into account and, thus, is not based on the assumption that the phase shift φ is less than 1 radian. It is important to note that each term of the Taylor's series contribute to the DC-value of the function t(<i>x,y</i>). This fact is not recognized in the art as the DC-value has until now been believed to be represented by numeral 1 in equation (2).</p>
<p id="p0022" num="0022">It is still another object of the present invention to provide an improved method and apparatus for phase contrast imaging without the need of attenuating the DC-component of the signal to enhance the information contained in the phase modulated signal.<!-- EPO <DP n="7"> --></p>
<p id="p0023" num="0023">It is yet another object of the present invention to provide an improved method based on a simple imaging operation with a simple one-to-one mapping between resolution elements of a spatial phase modulator and resolution elements of the generated intensity pattern.</p>
<p id="p0024" num="0024">The present invention relates to the act of synthesising an intensity pattern with low loss of electromagnetic energy, comprising spatial modulation of electromagnetic radiation with a spatial phase mask for modulation of the phase of the incident electromagnetic radiation by phasor values of individual resolution elements of the spatial phase mask, each phasor value being determined in such a way that
<ul id="ul0001" list-style="none">
<li>1) the values of the Fourier transformed phasors attains predetermined values for predetermined spatial frequencies, and</li>
<li>2) the phasor value of a specific resolution element of the spatial phase mask corresponds to a distinct intensity level of the image of the resolution element in the intensity pattern,</li>
</ul> and a spatial phase filter for phase shifting of a part of the electromagnetic radiation, in combination with an imaging system for generation of the intensity pattern by interference in the image plane of the imaging system between the part of the electromagnetic radiation that has been phase shifted by the phase filter and the remaining part of the electromagnetic radiation.</p>
<p id="p0025" num="0025">Electromagnetic radiation incident on the spatial phase mask can be described by a function A(<i>x,y</i>), where A(<i>x,y</i>) is a complex number (amplitude and phase) of the incident field on the point (<i>x,y</i>) of the spatial phase mask. At the point (<i>x,y</i>), the spatial phase mask modulates the phase of the incident radiation with a value <i>ϕ(x,y)</i> so that the field after reflection by or transmission through the spatial phase mask may be described by the function A(<i>x</i>, <i>y</i>) * e<sup><i>iϕ(x,y)</i></sup><i>,</i> e<sup>iϕ</sup><sup><i>(x,y)</i></sup> being the phasor value of the point (<i>x</i>, <i>y</i>) of the spatial phase mask. As A(<i>x,y</i>) preferably is a constant value over the entire surface of the spatial phase mask, the term is left out of the following equations for simplicity.</p>
<p id="p0026" num="0026">The expression of the electromagnetic radiation incident on the spatial phase filter may now be separated into an AC-term and a DC-term. If the DC-term of the field is denoted,<!-- EPO <DP n="8"> --> the AC-term of the field is given by the term e<sup>iϕ(x,y)</sup>. As the spatial phase filter changes the phase of the DC-part of the electromagnetic radiation by θ, the intensity of the synthesized intensity pattern at the image plane of the imaging system is given by:<maths id="math0007" num="(7)"><math display="block"><mrow><mtext>|(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><mtext>') = |</mtext><msup><mrow><mtext mathvariant="italic">e</mtext></mrow><mrow><mtext>iϕ(</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">x</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>',</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">y</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>')</mtext></mrow></msup><msup><mrow><mtext> + (e</mtext></mrow><mrow><mtext>iθ</mtext></mrow></msup><msup><mrow><mtext>-1)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup></mrow></math><img id="ib0007" file="imgb0007.tif" wi="51" he="6" img-content="math" img-format="tif"/></maths> wherein (<i>x</i>', <i>y</i>') is the coordinates of the image of the point (<i>x,y</i>) of the spatial phase mask formed by the imaging system in the image plane.</p>
<p id="p0027" num="0027">It should be noted that the second term of the equation is a complex number that adds to the phasors e<sup>iϕ(</sup><sup><i>x,y</i></sup><sup>)</sup> of the spatial phase mask and may be interpreted as a contrast control parameter for the synthesised intensity pattern I(<i>x',y</i>').</p>
<p id="p0028" num="0028">According to a first aspect, the present invention provides a phase contrast imaging method of synthesising an intensity pattern I(x',y') of an image, comprising the steps of
<ul id="ul0002" list-style="dash" compact="compact">
<li>pixellating the intensity pattern I(x',y') in accordance with the disposition of resolution elements (x, y) of a spatial phase mask having a plurality of individual resolution elements (x,y), each resolution element (x,y) modulating the phase of electromagnetic radiation incident upon it with a predetermined phasor value e<sup>iϕ(x,y)</sup>,</li>
<li>radiating electromagnetic radiation towards the spatial phase mask,</li>
<li>Fourier or Fresnel transforming the modulated electromagnetic radiation,</li>
<li>phase shifting in a region of spatial frequencies comprising DC in the Fourier or Fresnel plane, the modulated electromagnetic radiation by a predetermined phase shift value θ in relation to the remaining part of the electromagnetic radiation, and</li>
<li>forming the intensity pattern by Fourier or Fresnel transforming, respectively, the phase shifted Fourier or Fresnel transformed modulated electromagnetic radiation, whereby each resolution element (x,y) of the phase mask is imaged on a corresponding resolution element (x',y') of the image,</li>
<li>calculating the phasor values e<sup>iϕ(x,y)</sup> of the phase mask and the phase shift value θ in accordance with<maths id="math0008" num=""><math display="block"><mrow><msup><mrow><mtext>I(x',y') = |e</mtext></mrow><mrow><mtext>iϕ(x',y')</mtext></mrow></msup><mtext> + </mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><msup><mrow><mtext> (e</mtext></mrow><mrow><mtext>iθ</mtext></mrow></msup><msup><mrow><mtext>-1)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup></mrow></math><img id="ib0008" file="imgb0008.tif" wi="54" he="6" img-content="math" img-format="tif"/></maths> for selected phase shift values θ, <maths id="math0009" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0009" file="imgb0009.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> being the average of the phasor values e<sup>iϕ(x,y)</sup> of the resolution elements of the phase mask,</li>
<li>selecting, for each resolution element, one of two phasor values which represent a particular grey level, and<!-- EPO <DP n="9"> --></li>
<li>supplying the selected phasor values e<sup>iϕ(x,y)</sup> to the resolution elements (x, y) of the spatial phase mask.</li>
</ul></p>
<p id="p0029" num="0029">According to a second aspect, the present invention provides a phase contrast imaging system for synthesising an intensity pattern I(x',y') of an image, comprising
<ul id="ul0003" list-style="dash" compact="compact">
<li>a source of electromagnetic radiation for emission of electromagnetic radiation,</li>
<li>a spatial phase mask for phase modulation of electromagnetic radiation and having a plurality of individual resolution elements (x,y), each resolution element (x,y) modulating the phase of electromagnetic radiation incident upon it with a predetermined phasor value e<sup>iϕ(x,y)</sup>, each resolution element (x,y) being individually addressable and adapted to receive a signal controlling the predetermined phasor value e<sup>iϕ(x,y)</sup>, and each resolution element (x,y) being positioned on a propagation axis of the electromagnetic radiation.</li>
<li>means for Fourier or Fresnel transforming the phase modulated electromagnetic radiation positioned on a propagation axis of the phase modulated radiation,</li>
<li>a spatial phase filter for phase shifting in a region of spatial frequencies comprising DC in the Fourier or Fresnel plane, the transformed electromagnetic radiation by a predetermined phase shift value θ in relation to the remaining part of the transformed electromagnetic radiation,</li>
<li>means for forming the intensity pattern by Fourier or Fresnel transforming, respectively, the phase shifted Fourier or Fresnel transformed modulated electromagnetic radiation, whereby each resolution element (x,y) of the phase mask is imaged on a corresponding resolution element (x',y') of the image,</li>
<li>interface means for addressing each of the resolution elements (x,y) of the phase mask and for transmitting signals controlling the phasor value e<sup>iϕ(x,y)</sup> of each addressed resolution element,</li>
<li>said phasor values e<sup>iϕ(x,y)</sup> substantially fulfilling that<maths id="math0010" num=""><math display="block"><mrow><msup><mrow><mtext>I(x',y') = |e</mtext></mrow><mrow><mtext>iϕ(x',y')</mtext></mrow></msup><mtext> + </mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><msup><mrow><mtext>(e</mtext></mrow><mrow><mtext>iθ</mtext></mrow></msup><msup><mrow><mtext>-1)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup></mrow></math><img id="ib0010" file="imgb0010.tif" wi="52" he="6" img-content="math" img-format="tif"/></maths> for the predetermined phase shift value θ,<maths id="math0011" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0011" file="imgb0011.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> being the average of the phasors e<sup>iϕ(x,y)</sup> of the resolution elements of the phase mask.</li>
</ul></p>
<p id="p0030" num="0030">Although, the present method and imaging system is related to encoding of spatial phase masks in two spatial dimensions (planar encoding), the principles of the method and the imaging system may be utilised for phase encoding in one to three spatial dimensions and/or in the temporal dimension.<!-- EPO <DP n="10"> --></p>
<p id="p0031" num="0031">The electromagnetic radiation may be of any frequency range of the electromagnetic spectrum, i.e. the gamma frequency range, the ultraviolet range, the visible range, the infrared range, the far infrared range, the X-ray range, the microwave range, the HF (high frequency) range, etc. The present method is also applicable to particle radiation, such as electron radiation, neutron radiation, etc.</p>
<p id="p0032" num="0032">Preferably, the electromagnetic radiation is monochromatic or quasi-monochromatic so that the energy of the electromagnetic radiation is concentrated in a narrow frequency bandwidth. As the intensity pattern is synthesized by interference of two electromagnetic waves emitted from a common source of electromagnetic radiation but the phases of which have been changed differently, it is required that the frequency range of the emitted electromagnetic radiation is sufficiently narrow to ensure that the two waves of electromagnetic radiation are coherent so that their superposition generates the desired intensity pattern. If the frequency range is too broad, the two waves will be incoherent and the phase information will be lost as superposition of non-coherent waves results in a summation of the intensities of the two waves. It is required that the difference between individual delays of electromagnetic radiation to be superpositioned is less than the wavelength of the radiation. This is a relaxed requirement that allows the electromagnetic radiation to be relatively broad-banded. For example in the visible range a Xe-lamp or a Hg-lamp can be used as a light source in a system according to the present invention with the advantage compared to a laser light source that the speckle noise is reduced. The requirements of the spatial coherence of the electromagnetic radiation depend upon the space bandwith product of the corresponding system and how close the required system performance is to the theoretically obtainable performance of the system.</p>
<p id="p0033" num="0033">Preferably, the electromagnetic radiation is generated by a coherent source of electromagnetic radiation, such as a laser, a maser, a phase-locked laser diode array, etc. However a high pressure arc lamp, such as a Hg lamp, a Xe lamp, etc, may also be used and even an incandescent lamp may be used as a source of electromagnetic radiation in a low performance system.</p>
<p id="p0034" num="0034">A spatial phase mask is a component that changes the phase of an electromagnetic wave incident upon it. The spatial phase mask may transmit or reflect the incident electromagnetic wave. Typically, the spatial phase mask is divided into a number of<!-- EPO <DP n="11"> --> resolution elements each of which modulates the incident electromagnetic wave by changing its phase by a specific predetermined value. The predetermined values are assigned to each resolution element in different ways depending upon the technology applied in the component. For example in spatial light modulators, each resolution element may be addressed either optically or electrically. The electrical addressing technique resembles the addressing technique of solid-state memories in that each resolution element can be addressed through electronic circuitry to receive a control signal corresponding to the phase change to be generated by the addressed resolution element. The optical addressing technique addresses each resolution element by pointing a light beam on it, the intensity of the light beam corresponding to the phase change to be generated by the resolution element illuminated by the light beam.</p>
<p id="p0035" num="0035">Spatial phase masks may be realized utilizing fixed phase masks, devices comprising liquid crystals and being based on liquid crystal display technology, dynamic mirror devices, digital micromirror arrays, deformable mirror devices, membrane spatial light modulators, laser diode arrays (integrated light source and phase modulator), smart pixel arrays, etc.</p>
<p id="p0036" num="0036">A spatial phase filter is typically a fixed phase mask, such as an optically flat glass plate coated with a dielectric layer at specific positions of the glass plate. However, the spatial phase masks mentioned in the previous section may also be used for spatial phase filters.</p>
<p id="p0037" num="0037">The imaging system maps the phase modulating resolution elements of the spatial phase mask on the target surface of the synthesized intensity pattern. It may comprise a 4f-lens configuration (two Fourier transforming lenses utilizing transmission of light or one Fourier transforming lens utilizing reflection of light) or a single imaging lens. However, any optical imaging system providing a filtering plane for the spatial phase filter may be applied in a phase contrast imaging system.</p>
<p id="p0038" num="0038">In the method according to the present invention, the synthesized intensity pattern is generated by superposition of two electromagnetic waves in the image plane of the imaging system. The spatial phase mask changes the phase values of an electromagnetic wave incident upon it and the imaging system directs the electromagnetic wave with changed phases reflected from or transmitted through the spatial phase mask towards the spatial phase filter. The phase filter phase shifts a part of the electromagnetic radiation<!-- EPO <DP n="12"> --> and the imaging system is adapted to superimpose in the image plane the phase shifted part of the electromagnetic radiation with the part of the electromagnetic radiation that is not phase shifted by the spatial phase filter.</p>
<p id="p0039" num="0039">According to a preferred embodiment of the invention, the spatial phase mask is positioned at the front focal plane of a lens while the spatial phase filter is positioned in the back focal plane of the lens, whereby a first electromagnetic field at the phase mask is Fourier transformed by the lens into a second electromagnetic field at the phase filter. Thus, specific spatial frequencies of the first electromagnetic field will be transmitted through the spatial phase filter at specific positions of the phase filter. For instance, the energy of the electromagnetic radiation at zero frequency (DC) is transmitted through the phase filter at the intersecting point of the Fourier plane and the optical axis of the lens also denoted the zero-order diffraction region.</p>
<p id="p0040" num="0040">It is presently preferred that the spatial phase filter is adapted to phase shift the DC-part of the electromagnetic radiation and to leave the remaining part of the electromagnetic radiation unchanged or, alternatively, to leave the DC-part of the electromagnetic radiation unchanged and to phase shift the remaining part of the electromagnetic radiation. The last alternative is preferred when the energy level of the DC-part of the electromagnetic radiation is so high that the phase shifting part of the phase filter will be destroyed by it. For example in laser cutting, the DC level of the laser beam can be so high that a phase shifting dot positioned at the intersecting point of the DC part of the laser beam at the phase filter would evaporate. It is also possible to block the electromagnetic radiation (no transmittance) in the zero-order diffraction region, however, the DC energy of the radiation is then lost.</p>
<p id="p0041" num="0041">Below, an expression of the intensity of the synthesized intensity pattern as a function of the phasor values ϕ(<i>x,y</i>) of the phase mask, when the DC-part of the electromagnetic radiation is phase shifted, is deduced.<!-- EPO <DP n="13"> --></p>
<p id="p0042" num="0042">According to a preferred embodiment of the invention, the average value of the phasors is adjusted in order to control the range of intensity levels.</p>
<p id="p0043" num="0043">Instead of phase shifting the DC-part of the electromagnetic radiation, it is also possible to synthesise a prescribed intensity pattern by phase shifting other parts of the electromagnetic radiation by adapting the spatial phase filter to phase shift electromagnetic radiation incident upon one or more arbitrary regions of the phase filter and leaving the phase of the remaining part of the electromagnetic radiation unchanged and then superimposing the two parts of the electromagnetic radiation. The corresponding mathematics and the corresponding design procedures for the spatial phase mask and spatial phase filter will of course be more complicated than for the method described in the previous section.</p>
<p id="p0044" num="0044">A simple example of phase shifting a part of the electromagnetic radiation of a spatial frequency different from the zero frequency is provided by moving the DC-part of the electromagnetic radiation to another spatial frequency in the Fourier plane (identical to the plane of the spatial phase filter) utilizing an optical component with an appropriate carrier frequency (i.e. a grating or a prism) or, preferably, encoding the function of a grating or a prism into the spatial phase mask, and adapting the spatial phase filter to change the phase of the electromagnetic radiation at this spatial frequency and to leave the phase of the remaining part of the electromagnetic radiation unchanged.</p>
<p id="p0045" num="0045">According to another preferred embodiment of the invention, the phase mask is not positioned in the back focal plane of the lens but in the Fresnel region of the lens instead. In this case, the electromagnetic field at the phase filter will be given by a Fresnel transformation of the electromagnetic field at the spatial phase mask. This further complicates the mathematics and the design procedures, for example the term <maths id="math0012" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0012" file="imgb0012.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> in equation (7) has to be substituted by the value of the Fresnel transformation at the point (s) of phase changes of the phase filter. However, the Fresnel transformation may be calculated from a Fourier transformation by multiplication of the phasor values of the spatial phase mask by a quadratic phase factor followed by a Fourier transformation.</p>
<p id="p0046" num="0046">It is an important aspect of the present invention that each intensity level of the synthesized intensity pattern for each resolution element may be generated by at least two different phasor values of a resolution element of the spatial phase mask.<!-- EPO <DP n="14"> --></p>
<p id="p0047" num="0047">For example, when the spatial phase filter phase shifts the DC-part of the electromagnetic radiation, it will be shown later that, advantageously, the average <maths id="math0013" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0013" file="imgb0013.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> of the phasors of the resolution elements of the phase mask should be equal to ½ and the value of the phase shift θ should be equal to π. In this case, the intensity of the synthesized image pattern at the image <i>(x',y')</i> of the resolution element (<i>x,y</i>) will be given by:<maths id="math0014" num="(8)"><math display="block"><mrow><mtext>I(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><mtext>') = 2(1 - cosφ(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><mtext>'))</mtext></mrow></math><img id="ib0014" file="imgb0014.tif" wi="47" he="5" img-content="math" img-format="tif"/></maths></p>
<p id="p0048" num="0048">It is seen that complex conjugate phasors (values of φ of opposite sign) result in identical intensity levels I<i>(x',y').</i> It can be shown that for any value of the modulus of the average of the phasors |<maths id="math0015" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0015" file="imgb0015.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>|, two phasors exist that will generate identical intensity levels of the synthesized intensity pattern.</p>
<p id="p0049" num="0049">Further, if the spatial phase filter phase shifts parts of the electromagnetic radiation different from the DC-part, the phasor value that generates a specific intensity level will depend on the position of the resolution element in question, i.e. the phasor value and the position of the resolution element with that phasor value together define the intensity level at the image of the resolution element in the synthesized intensity pattern. Still, it is true that for each resolution element of the spatial phase mask, each intensity level of the synthesized intensity pattern may be represented by one of two different phasors of complementary phase values.</p>
<p id="p0050" num="0050">This freedom of being able to select, for each intensity level to be generated and for each resolution element of the spatial phase mask, one of two phasors is used to control the phase of the Fourier transform of the phasors at specific spatial frequencies by selection of phasors with appropriate phase values to ensure two intervals of biunique functional<!-- EPO <DP n="15"> --> dependence between phasor values and corresponding intensity values.</p>
<p id="p0051" num="0051">This freedom of choice of phasors may be utilized to select phasors of neighbouring resolution elements of the spatial phase mask with a maximum difference between them, thereby generating an electromagnetic radiation emitted from the phase mask with a maximum content of high spatial frequencies which will generate a good separation of the DC part of the electromagnetic radiation from its AC part. However, any other strategy of selecting between two possible phasor values of each resolution element may be chosen to generate a desired spatial frequency content of the electromagnetic radiation.</p>
<p id="p0052" num="0052">Preferably, the phase of the Fourier transform of the phasors at specific spatial frequencies is adjusted in order to control whether the relation between each phasor and the corresponding intensity level is a monotonic increasing or a monotonic decreasing function.</p>
<p id="p0053" num="0053">Below, a set of different methods are described that are provided according to the present invention for adjustment of the modulus of the Fourier transform of the phasors at specific spatial frequencies to attain a prescribed value. If convenient, the methods may be combined.</p>
<p id="p0054" num="0054">According to one of the methods, the individual phasors of the resolution elements of the phase mask are adjusted by a constant value until the desired value of the modulus of the Fourier transform of the phasors at specific spatial frequencies is attained while maintaining prescribed relative intensity levels between intensities of resolution elements of the intensity pattern, i.e. iteratively.</p>
<p id="p0055" num="0055">According to another method, the individual phasors of the resolution elements of the phase mask are adjusted utilizing histogram techniques known from image processing. A histogram<!-- EPO <DP n="16"> --> is a bar chart showing the number of resolution elements of the synthesized intensity pattern with a specific intensity value as a function of the intensity value. Any histogram technique, such as histogram equalization, adapting the histogram to a predetermined distribution, etc., may be used iteratively until the modulus of the Fourier transform of the phasors at specific spatial frequencies attain the prescribed value.</p>
<p id="p0056" num="0056">According to yet another method, the phasor pattern of the phase mask is spatially scaled in order to adjust the modulus of the Fourier transform of the phasors at specific spatial frequencies.</p>
<p id="p0057" num="0057">According to still another method, the modulus of the Fourier transform of the phasors at specific spatial frequencies is adjusted utilizing half tone coding techniques, such as raster techniques, area ratio modulation, spot diameter modulation, etc.</p>
<p id="p0058" num="0058">It is seen from the description above that the intensity levels may differ from one synthesized intensity pattern to the next as a consequence of the adjustments of the modulus of the Fourier transform of the phasors at specific spatial frequencies. Thus, it is preferred to control the power of the radiation source in dependence of the intensity range of the intensity pattern so that a sequence of different intensity patterns show uniform intensity levels.</p>
<p id="p0059" num="0059">According to a preferred embodiment of the invention, the shape of the phase filter is adapted to match the spatial frequency content of the phasors of the spatial phase mask, e.g. to optimize the desired separation of the part of the electromagnetic radiation to be phase filtered from the remaining part of the electromagnetic radiation.<!-- EPO <DP n="17"> --></p>
<p id="p0060" num="0060">It is within the scope of the present invention that the imaging system further comprises zooming means for variable scaling of the synthesized intensity pattern. The zooming of the imaging system may be dynamically controllable, e.g. in response to the scaling of the pattern of phasor values of the phase mask.</p>
<p id="p0061" num="0061">According to the present invention, the power of the radiation source may be controllable in response to the spatial scaling of the pattern in the phase mask and/or the zooming of the focusing system.</p>
<p id="p0062" num="0062">In order to provide a compact and integrated system according to the present invention, the optical function of a Fourier-transforming lens is encoded into the phasors of the spatial phase mask. The Fourier transforming lens may be refractively or diffractively encoded into the phase mask.</p>
<p id="p0063" num="0063">Similarly, the optical function of an output lens may be encoded into the phase filter either refractively or diffractively.</p>
<p id="p0064" num="0064">Further, a compensation may be encoded into the phasor values of the spatial phase mask so that part of the electromagnetic radiation modulated by the phase mask has a substantially flat intensity profile in the image plane. Without this compensation, part of the electromagnetic radiation modulated by the phase mask will have a flat profile with perturbations resulting from the phase filtering superpositioned upon it. This may cause "ringings" (oscillations) at the edges of the synthesized intensity pattern.</p>
<p id="p0065" num="0065">According to another preferred embodiment of the invention, the source of electromagnetic radiation comprises one or more light sources of different wavelengths corresponding to three different colours, such as red, green and blue, for generation of intensity patterns of arbitrary colours. Further, several independent systems each one illuminated by its own<!-- EPO <DP n="18"> --> wavelength can be combined into a single multi-wavelength system.</p>
<heading id="h0004">BRIEF DESCRIPTION OF THE DRAWINGS</heading>
<p id="p0066" num="0066">
<dl id="dl0001">
<dt>Fig. 1</dt><dd>shows a 4f optical system for phase contrast imaging,</dd>
<dt>Fig. 2</dt><dd>shows a 2f optical system for phase contrast imaging,</dd>
<dt>Fig. 3</dt><dd>shows a if optical system for phase contrast imaging,</dd>
<dt>Fig. 4</dt><dd>shows (A) off-axis read-out of reflective SLM and (B) on-axis read-out of reflective SLM.</dd>
<dt>Fig. 5</dt><dd>shows schematically an example of a prescribed intensity pattern in 1D.</dd>
<dt>Fig. 6</dt><dd>shows schematically the resulting phase encoding corresponding to Fig. 5.</dd>
</dl></p>
<heading id="h0005">DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS</heading>
<p id="p0067" num="0067">Fig. 1 shows a 4f phase contrast imaging system (1). A laser (2) emits a light beam which is expanded by a beam expander (3) into a plane light wave of uniform intensity and directs it towards a spatial phase mask (4). The light beam is transmitted through the spatial phase mask (4) and a Fourier transforming lens (5). The spatial phase mask is positioned in the front focal plane of the lens (5) and a spatial phase filter (6) is positioned in the back focal plane of the lens (5) that is also the front focal plane of a lens (7). The Fourier transforming lenses (5, 7) need not have identical focal lengths. Different focal lengths lead to a magnification ratio different from one. The phase filter (6) phase shifts the zero order diffraction part (8) of the light phase modulated by the spatial phase mask (4). The synthesized intensity pattern is generated in the back focal plane (9) of<!-- EPO <DP n="19"> --> the lens (7) and a dynamic focusing system (10) images the synthesized intensity pattern onto a focusing plane (11).</p>
<p id="p0068" num="0068">The optical system is controlled by a computer (12). The computer (12) comprises interface means for addressing each of the resolution elements of the phase filter (4) and transmitting a phasor value to the addressed resolution element. Further, the computer (12) comprises laser control means for controlling the power of the laser (2) and imaging control means for controlling the focusing and the image ratio of the dynamic focusing system (10). The computer (12) also comprises input means, such as a keyboard, a diskette drive, an optical disc drive, a network interface, a modem, etc, for receiving an image pattern to be synthesized by the system (1). From the received image pattern, the computer is adapted to calculate phasor values to be transmitted to the resolution elements of the phase mask, e.g. based on a histogram technique as described herein. Optionally, the phase shift of the phase filter (6) is adjustable and controllable by optional phase control means of the computer (12) which may be further adapted to adjust the phase shift, e.g. utilizing equation (18).</p>
<p id="p0069" num="0069">Fig. 2 shows a 2f phase contrast imaging system (20). A laser (21) emits a light beam which is expanded by a beam expander (22) into a plane light wave of uniform intensity and directs it towards a spatial phase mask (23) and a polarization beam splitter (24) and a quarter-wave plate (25). The polarization beam splitter (24) and the quarter-wave plate (25) allows beam-splitting of light of a specific linear polarization without the power loss associated with conventional beam-splitters due to splitting of the beam in both directions of transmission through the beam-splitter. After transmission through the polarization beam splitter (24) and the quarter-wave plate (25), the light beam is transmitted through a Fourier transforming lens (26) and is reflected from a spatial phase filter (27). The spatial phase mask (23) is positioned in the front focal plane of the lens (26) and the<!-- EPO <DP n="20"> --> spatial phase filter (27) is positioned in the back focal plane of the lens (26). The phase filter (27) phase shifts the zero order diffraction part (28) of the light that is phase encoded by the spatial phase mask (23). The synthesized intensity pattern is generated in the back focal plane (29) of the lens (26) and a dynamic focusing system (30) images the synthesized intensity pattern onto a focusing plane (31). As described for the system shown in Fig. 1, the system (20) is controlled by a computer (32).</p>
<p id="p0070" num="0070">Fig. 3 shows a 1f phase contrast imaging system (40). A laser (41) emits a light beam which is expanded by a beam expander (42) into a plane light wave of uniform intensity and directs it towards a spatial phase mask (43). The light beam is transmitted through the spatial phase mask (43) and an image forming lens (44). A phase filter (45) positioned in the back focal plane of the lens (44) phase shifts the zero order diffraction part of the light phase encoded by the spatial phase mask (43). The synthesized intensity pattern is generated in the image plane (46) of the lens (44) and a dynamic focusing system (47) images the synthesized intensity pattern onto a focusing plane (48). As described for the system shown in Fig. 1, the system (40) is controlled by a computer (49).</p>
<p id="p0071" num="0071">Fig. 4 shows details of (A) an off-axis read-out of a reflective phase mask (50) (or a spatial light modulator) and of (B) an on-axis read-out of a reflective phase mask (51) with a beam splitter (52). Both configurations (A, B) may be utilized in the systems shown in Figs. 1-3.<!-- EPO <DP n="21"> --></p>
<heading id="h0006">PHASE ENCODING FOR DC PHASE FILTERING</heading>
<p id="p0072" num="0072">In the following an example of encoding a spatial phase mask and a spatial phase filter will be given based on a system filtering in the DC-frequency range. The system chosen in this example is based on a 4-f lens configuration as shown in Fig. 1 and illuminated by electromagnetic radiation in the visible frequency domain, hereafter simply denoted as <i>light</i> radiation.</p>
<p id="p0073" num="0073">Assuming that the illuminating light is monochromatic and has a substantially flat amplitude profile we obtain the following spatial amplitude distribution emitted from the spatial phase mask:<maths id="math0016" num=""><img id="ib0016" file="imgb0016.tif" wi="132" he="19" img-content="math" img-format="tif"/></maths> where α(<i>x,y</i>) = exp(<i>i</i>φ(<i>x</i>, <i>y</i>)) represent the spatially encoded phasor values and Δ<i>x</i>Δ<i>y</i> is the area of the input phase modulating spatial light modulator.</p>
<p id="p0074" num="0074">It turns out to be convenient to separate α(<i>x,y</i>) into two terms describing a spatially invariant DC-value, <maths id="math0017" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0017" file="imgb0017.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>, and a spatially varying AC-contribution Δα(<i>x,y</i>). The DC-value can be found as:<maths id="math0018" num=""><img id="ib0018" file="imgb0018.tif" wi="121" he="15" img-content="math" img-format="tif"/></maths></p>
<p id="p0075" num="0075">Subsequently the AC-term is expressed by:<maths id="math0019" num=""><img id="ib0019" file="imgb0019.tif" wi="140" he="25" img-content="math" img-format="tif"/></maths><!-- EPO <DP n="22"> --></p>
<p id="p0076" num="0076">The separation of α(<i>x,y</i>) into a spatially invariant DC-term and a spatially varying AC-term is an important point and will be used throughout the remaining part of this example, especially in the description of the spatial filtering procedure.</p>
<p id="p0077" num="0077">The spatial filter utilized in this example is chosen as a circular phase contrast filter (different transverse shapes can also be used) centered around origo in the the spatial frequency domain, denoted by coordinates (<i>f</i><sub><i>x</i></sub>, <i>f</i><sub><i>y</i></sub>) :<maths id="math0020" num=""><img id="ib0020" file="imgb0020.tif" wi="119" he="19" img-content="math" img-format="tif"/></maths> where <maths id="math0021" num=""><math display="inline"><mrow><msub><mrow><mtext mathvariant="italic">f</mtext></mrow><mrow><mtext mathvariant="italic">r</mtext></mrow></msub><mtext> = </mtext><msqrt><msubsup><mrow><mtext mathvariant="italic">f</mtext></mrow><mrow><mtext mathvariant="italic">x</mtext></mrow><mrow><mtext mathvariant="italic">2</mtext></mrow></msubsup><msubsup><mrow><mtext mathvariant="italic"> + f</mtext></mrow><mrow><mtext mathvariant="italic">y</mtext></mrow><mrow><mtext mathvariant="italic">2</mtext></mrow></msubsup></msqrt></mrow></math><img id="ib0021" file="imgb0021.tif" wi="29" he="9" img-content="math" img-format="tif" inline="yes"/></maths> denotes radial spatial frequency and <i>Δf</i><sub><i>r</i></sub> describes the size of the circular (circ) phase filter.</p>
<p id="p0078" num="0078">In the spatial frequency domain (the filtering plane) the Fourier transformation (<img id="ib0022" file="imgb0022.tif" wi="4" he="4" img-content="character" img-format="tif" inline="yes"/>) of the spatially modulated light radiation from the spatial phase mask is present. The filtering operation on the Fourier transformed light radiation performed by the spatial phase contrast filter can be expressed as a simple point-by-point multiplication procedure. Subsequently the spatially filtered light is inverse Fourier transformed (<img id="ib0023" file="imgb0023.tif" wi="6" he="5" img-content="character" img-format="tif" inline="yes"/>) by the second Fourier lens (Fourier transformation and reflected output coordinates) and the resulting spatial amplitude distribution in the image plane (with coordinates (<i>x',y'</i>)) can accordingly be written as:<!-- EPO <DP n="23"> --><maths id="math0022" num=""><img id="ib0024" file="imgb0024.tif" wi="155" he="47" img-content="math" img-format="tif"/></maths></p>
<p id="p0079" num="0079">Within the illumination-region, (<i>x', y</i>') ∈ <img id="ib0025" file="imgb0025.tif" wi="5" he="5" img-content="character" img-format="tif" inline="yes"/>, outlined by<maths id="math0023" num=""><img id="ib0026" file="imgb0026.tif" wi="36" he="15" img-content="math" img-format="tif"/></maths> one obtains:<maths id="math0024" num=""><img id="ib0027" file="imgb0027.tif" wi="157" he="20" img-content="math" img-format="tif"/></maths></p>
<p id="p0080" num="0080">Requiring that |<i>o</i>(<i>x</i>'<sub><i>o</i></sub>,<i>y</i>'<sub><i>o</i></sub>)|<sup>2</sup> ≡ 0 corresponding to complete darkness as the lowest intensity level in regions (<i>x</i>'<sub><i>o</i></sub>,<i>y</i>'<sub><i>o</i></sub>) ∈ <img id="ib0028" file="imgb0028.tif" wi="6" he="4" img-content="character" img-format="tif" inline="yes"/> implies:<maths id="math0025" num=""><img id="ib0029" file="imgb0029.tif" wi="132" he="24" img-content="math" img-format="tif"/></maths> where the abbreviation φ<sub>o</sub> = φ(<i>x'</i><sub><i>o</i></sub>,<i>y'</i><sub><i>o</i></sub>) has been used.</p>
<p id="p0081" num="0081">The solutions to Eq. (15) are given by:<maths id="math0026" num=""><img id="ib0030" file="imgb0030.tif" wi="136" he="34" img-content="math" img-format="tif"/></maths></p>
<p id="p0082" num="0082">The requirement o &lt; |<maths id="math0027" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0031" file="imgb0031.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>|&lt; 1 implies that:<!-- EPO <DP n="24"> --><maths id="math0028" num=""><img id="ib0032" file="imgb0032.tif" wi="132" he="23" img-content="math" img-format="tif"/></maths> leading to<maths id="math0029" num=""><img id="ib0033" file="imgb0033.tif" wi="133" he="22" img-content="math" img-format="tif"/></maths> where the +sign is for θ-values in the interval:<maths id="math0030" num=""><img id="ib0034" file="imgb0034.tif" wi="117" he="18" img-content="math" img-format="tif"/></maths> and the -sign is for θ-values:<maths id="math0031" num=""><img id="ib0035" file="imgb0035.tif" wi="102" he="21" img-content="math" img-format="tif"/></maths></p>
<p id="p0083" num="0083">The corresponding interval for (φ<maths id="math0032" num=""><math display="inline"><mrow><mover accent="true"><mrow><msub><mrow><mtext>​</mtext></mrow><mrow><mtext>α</mtext></mrow></msub></mrow><mo>¯</mo></mover></mrow></math><img id="ib0036" file="imgb0036.tif" wi="2" he="3" img-content="math" img-format="tif" inline="yes"/></maths> - φ<sub>o</sub>) is:<maths id="math0033" num=""><img id="ib0037" file="imgb0037.tif" wi="115" he="19" img-content="math" img-format="tif"/></maths></p>
<p id="p0084" num="0084">Inserting the expression for |<maths id="math0034" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0038" file="imgb0038.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>|, one obtains the simple intensity expression:<maths id="math0035" num=""><img id="ib0039" file="imgb0039.tif" wi="143" he="19" img-content="math" img-format="tif"/></maths> where<maths id="math0036" num=""><img id="ib0040" file="imgb0040.tif" wi="142" he="17" img-content="math" img-format="tif"/></maths><!-- EPO <DP n="25"> --></p>
<p id="p0085" num="0085">The phase-only transformations imply that energy is conserved:<maths id="math0037" num=""><img id="ib0041" file="imgb0041.tif" wi="134" he="19" img-content="math" img-format="tif"/></maths></p>
<heading id="h0007"><i>A special case:</i></heading>
<p id="p0086" num="0086">The most convenient choice for <maths id="math0038" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0042" file="imgb0042.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> is: <maths id="math0039" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0043" file="imgb0043.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> = <maths id="math0040" num=""><math display="inline"><mrow><mfrac><mrow><mtext>1</mtext></mrow><mrow><mtext>2</mtext></mrow></mfrac></mrow></math><img id="ib0044" file="imgb0044.tif" wi="3" he="8" img-content="math" img-format="tif" inline="yes"/></maths> (implying that θ = π + <i>p</i><sub>even</sub>2π), so that the output intensity can be described as:<maths id="math0041" num="(25)"><math display="block"><mrow><mtext>|</mtext><mtext mathvariant="italic">o</mtext><mtext>(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><msup><mrow><mtext>')|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup><mtext> = 2[1 - cos(φ(</mtext><mtext mathvariant="italic">x</mtext><mtext>', </mtext><mtext mathvariant="italic">y</mtext><mtext>'))]</mtext></mrow></math><img id="ib0045" file="imgb0045.tif" wi="57" he="6" img-content="math" img-format="tif"/></maths></p>
<p id="p0087" num="0087">In this case the phase→intensity mapping is described by the intervals [0; π] → [0;4].</p>
<p id="p0088" num="0088">By setting <maths id="math0042" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0046" file="imgb0046.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> = <maths id="math0043" num=""><math display="inline"><mrow><mfrac><mrow><mtext>1</mtext></mrow><mrow><mtext>2</mtext></mrow></mfrac></mrow></math><img id="ib0047" file="imgb0047.tif" wi="3" he="8" img-content="math" img-format="tif" inline="yes"/></maths> one obtains the following requirement to the phase function φ(<i>x, y</i>) :<maths id="math0044" num=""><img id="ib0048" file="imgb0048.tif" wi="119" he="30" img-content="math" img-format="tif"/></maths></p>
<p id="p0089" num="0089">Inserting the expression for |<i>o</i>(<i>x</i>',<i>y</i>')|<sup>2</sup> in Eq. (24) yields:<maths id="math0045" num=""><img id="ib0049" file="imgb0049.tif" wi="121" he="16" img-content="math" img-format="tif"/></maths> in accordance with the first of the integral expressions in Eq. (26).<!-- EPO <DP n="26"> --></p>
<heading id="h0008"><i>Encoding procedure:</i></heading>
<p id="p0090" num="0090">
<ul id="ul0004" list-style="bullet">
<li>A given intensity distribution (image) |<i>o</i>(<i>x',y'</i>)|<sup>2</sup> is desired at the output side of the optical setup.</li>
<li>Pixellation of the image, that is generally represented in the greyscale range: [0; <i>gmax</i>], provides the relation:<maths id="math0046" num=""><img id="ib0050" file="imgb0050.tif" wi="140" he="13" img-content="math" img-format="tif"/></maths></li>
<li>The histogram for the desired image |<i>o</i>(<i>i</i>, <i>j</i>)|<sup>2</sup> is adjusted (adj) within the greyscale range [0; <i>gmax</i>], so that the previous point is fulfilled: <maths id="math0047" num=""><math display="block"><mrow><mtext>|</mtext><mtext mathvariant="italic">o</mtext><mtext>(</mtext><mtext mathvariant="italic">i</mtext><mtext>, </mtext><mtext mathvariant="italic">j</mtext><msup><mrow><mtext>)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup><mtext> → |</mtext><mtext mathvariant="italic">o</mtext><mtext>(</mtext><mtext mathvariant="italic">i</mtext><mtext>, </mtext><mtext mathvariant="italic">j</mtext><msup><mrow><mtext>)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup><msub><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">adj</mtext></mrow></msub><mtext>.</mtext></mrow></math><img id="ib0051" file="imgb0051.tif" wi="44" he="7" img-content="math" img-format="tif"/></maths></li>
<li>The phase values can now be calculated as:<maths id="math0048" num=""><img id="ib0052" file="imgb0052.tif" wi="77" he="22" img-content="math" img-format="tif"/></maths></li>
<li>As before pixellation provides the relation:<maths id="math0049" num=""><img id="ib0053" file="imgb0053.tif" wi="52" he="13" img-content="math" img-format="tif"/></maths></li>
<li>The previous point can now be fulfilled by complex conjugating half the input pixels having the same phase value in the phase histogram.</li>
<li>The phase conjugate phase flipping provides a valuable tool (an extra degree of freedom) for manipulating the spatial frequency content in order to optimize the<!-- EPO <DP n="27"> --> separation of low and high frequency terms at the filter plane.</li>
<li>The scheme is robust to constant phase errors across the input spatial phase modulator, since Eq. (22) is a function of the difference: φ<maths id="math0050" num=""><math display="inline"><mrow><mover accent="true"><mrow><msub><mrow><mtext>​</mtext></mrow><mrow><mtext>α</mtext></mrow></msub></mrow><mo>¯</mo></mover></mrow></math><img id="ib0054" file="imgb0054.tif" wi="2" he="3" img-content="math" img-format="tif" inline="yes"/></maths> - φ(<i>i</i>, <i>j</i>), only. Furthermore, small variations in the individual pixel phase values do not introduce any detrimental effects because the average value <maths id="math0051" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0055" file="imgb0055.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>, is a result of a very large phasor sum.</li>
<li>If the desired intensity distribution is too small to include all energy, that is, the histogram is scaled to maximum and the left hand side of Eq. (24) is still smaller than the right hand side, then the input phase object can be scaled until Eq. (24) is fulfilled. In order to obtain a scale invariant output intensity level a dynamic focusing system is needed. Similarly, intensity invariance can be obtained by controlling the radiated power from the light source. Alternatively, one can ignore the residual background illumination and obtain intensity levels with a gain factor of 9<sup>-</sup> (background constant equal to 1<sup>-</sup>) for narrow generally shaped line structures (e.g. Eq. (14)).</li>
</ul></p>
<heading id="h0009"><i>Example 1:</i></heading>
<p id="p0091" num="0091">A very simple example illustrating the individual steps in the above procedure will be given below. To simplify the example it will be considered in one dimension only. The starting point for encoding the spatial phase mask in this example is based on the following parameters:<!-- EPO <DP n="28"> --><maths id="math0052" num=""><img id="ib0056" file="imgb0056.tif" wi="109" he="29" img-content="math" img-format="tif"/></maths></p>
<p id="p0092" num="0092">Consider the pixellated 3-step function shown in Fig. 5 to be synthesized in the image plane as an intensity distribution. From the above choices of parameters one obtains the simple relation between phase values in the spatial phase mask and the image intensity values:<maths id="math0053" num="(29)"><math display="block"><mrow><mtext>|</mtext><mtext mathvariant="italic">o</mtext><mtext>(</mtext><mtext mathvariant="italic">i</mtext><msup><mrow><mtext>)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup><mtext> = 2[1 - cos(φ(</mtext><mtext mathvariant="italic">i</mtext><mtext>))]</mtext></mrow></math><img id="ib0057" file="imgb0057.tif" wi="45" he="6" img-content="math" img-format="tif"/></maths></p>
<p id="p0093" num="0093">To proceed from here it necessary to calculate the accumulated intensity<maths id="math0054" num=""><img id="ib0058" file="imgb0058.tif" wi="19" he="11" img-content="math" img-format="tif"/></maths> in the image to be synthesized. The accumulated intensity is easily calculated from an image histogram where the x-axis represents greylevel value and the y-axis represents the amount of pixels in the image at a given greylevel value. By use of a histogram<maths id="math0055" num=""><img id="ib0059" file="imgb0059.tif" wi="19" he="12" img-content="math" img-format="tif"/></maths> is simply found as the weighted sum of all greylevel values (x-axis) multiplied by their pixel counting (y-axis). This describes, so to speak, the "weight" of the image. In this simple example histogram calculations are not needed since we only have 3 greylevels with well-defined separations.</p>
<p id="p0094" num="0094">The value for the accumulated intensity has to obey the equality:<maths id="math0056" num=""><img id="ib0060" file="imgb0060.tif" wi="142" he="22" img-content="math" img-format="tif"/></maths></p>
<p id="p0095" num="0095">From Fig. 5 we obtain:<!-- EPO <DP n="29"> --><maths id="math0057" num=""><img id="ib0061" file="imgb0061.tif" wi="156" he="21" img-content="math" img-format="tif"/></maths></p>
<p id="p0096" num="0096">So that the value for max can be estimated to be:<maths id="math0058" num="(32)"><math display="block"><mrow><mtext mathvariant="italic">max</mtext><mtext> = </mtext><mfrac><mrow><mtext>7</mtext></mrow><mrow><mtext>4</mtext></mrow></mfrac></mrow></math><img id="ib0062" file="imgb0062.tif" wi="17" he="10" img-content="math" img-format="tif"/></maths></p>
<p id="p0097" num="0097">The corresponding adjusted intensity levels, |<i>o</i>(<i>i</i>)|<sup>2</sup><sub><i>adj</i></sub>, are therefore: 7/4, 7/8 and 0. These values can now be utilized to calculate the phase values of the spatial phase mask from the relation:<maths id="math0059" num=""><img id="ib0063" file="imgb0063.tif" wi="137" he="26" img-content="math" img-format="tif"/></maths> where from we obtain the three phase values: 1.45 rad. 0.97 rad. and 0 rad.<br/>
The last step needed in order to encode the spatial phase mask is that the following equality is fulfilled:<maths id="math0060" num=""><img id="ib0064" file="imgb0064.tif" wi="104" he="20" img-content="math" img-format="tif"/></maths></p>
<p id="p0098" num="0098">Since we have the choice to use complex conjugate phasor values (two phasors giving the same intensity level) many approaches can be taken from here. A simple approach is to flip every second phasor with its complex conjugate value as shown in Fig. 6. The final phase values used in the phase mask are accordingly: ± 1.45 rad. ± 0.97 rad. and 0 rad.<!-- EPO <DP n="30"> --></p>
<p id="p0099" num="0099">As the last step we can check whether the criteria: <maths id="math0061" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0065" file="imgb0065.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> = 1 / 2, is actually fulfilled with the chosen phasor encoding:<maths id="math0062" num="(35)"><math display="block"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><mtext> = </mtext><mfrac><mrow><mtext>1</mtext></mrow><mrow><mtext>14</mtext></mrow></mfrac><mtext> (4 exp(</mtext><mtext mathvariant="italic">i</mtext><mtext>0) + 2 exp(</mtext><mtext mathvariant="italic">i</mtext><mtext>0.97) + 3 exp(</mtext><mtext mathvariant="italic">i</mtext><mtext>1.45) + 2 exp(-</mtext><mtext mathvariant="italic">i</mtext><mtext>0.97) + 3 exp(-</mtext><mtext mathvariant="italic">i</mtext><mtext>1.45)) ≡ 1 / 2</mtext></mrow></math><img id="ib0066" file="imgb0066.tif" wi="168" he="10" img-content="math" img-format="tif"/></maths><!-- EPO <DP n="31"> --></p>
<heading id="h0010">GENERAL PHASE CORRECTION PROCEDURE INTEGRATED WITH THE PHASE ENCODING</heading>
<p id="p0100" num="0100">In Eq. (14) we obtained an analytic relation between the phase values in the spatial phase mask and the resulting intensity distribution, within the region (<i>x</i>', <i>y</i>') ∈ <img id="ib0067" file="imgb0067.tif" wi="5" he="5" img-content="character" img-format="tif" inline="yes"/> :<maths id="math0063" num=""><img id="ib0068" file="imgb0068.tif" wi="158" he="20" img-content="math" img-format="tif"/></maths></p>
<p id="p0101" num="0101">The analysis leading to the above relation was based on the assumption that |<maths id="math0064" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0069" file="imgb0069.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| is a constant value within the <img id="ib0070" file="imgb0070.tif" wi="5" he="5" img-content="character" img-format="tif" inline="yes"/>-domain. In other words, the following approximation was applied:<maths id="math0065" num=""><img id="ib0071" file="imgb0071.tif" wi="130" he="16" img-content="math" img-format="tif"/></maths></p>
<p id="p0102" num="0102">However, for certain spatial filter parameters the lefthand side of this expression will not be a space invariant constant value throughout the whole <img id="ib0072" file="imgb0072.tif" wi="6" he="4" img-content="character" img-format="tif" inline="yes"/>-domain but will instead manifest slowly variations/oscillations. This will introduce small errors in the final superposition between the phase filtered DC-value and the direct propagated AC-signal. In order to circumvent this problem a technique is needed that can counteract the distortions by use of phase-only encoding in the components already present in the system. In what follows a procedure for integrating predistortion that counteracts the above mentioned distortions will be described that is purely based on modifying the phasor values in the spatial phase mask at the input side of the system. The method can also counteract other types of distortions inherent in a practical implementation of the<!-- EPO <DP n="32"> --> system. Furthermore, the method can be applied in systems filtering at other spatial frequencies than DC.</p>
<heading id="h0011"><i>Procedure:</i></heading>
<p id="p0103" num="0103">When encoding the input phase function it is helpful to have a reverse equation, expressing the input phase distribution as a function of an adjusted (electronic) image grey-level distribution, <i>I</i><sub><i>sim</i></sub><i>,</i> addressing the input spatial light modulator:<maths id="math0066" num=""><img id="ib0073" file="imgb0073.tif" wi="160" he="25" img-content="math" img-format="tif"/></maths> where it has been taken into account that <maths id="math0067" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0074" file="imgb0074.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>(<i>x</i>', <i>y</i>') is not considered as a constant but manifests a smooth oscillating behaviour within the optical image domain. The maximum value of <i>I</i><sub><i>sim</i></sub> is denoted <i>gmax.</i></p>
<p id="p0104" num="0104">Now, one can derive a formula for the grey-level correction, <i>ΔI</i><sub><i>sim</i></sub>(<i>x'</i>,y<i>'</i>), that one needs to apply in order to encode a phase function that compensates for the spatial variation of the average phase value <maths id="math0068" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0075" file="imgb0075.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>(<i>x</i>', <i>y</i>'):<maths id="math0069" num=""><img id="ib0076" file="imgb0076.tif" wi="161" he="36" img-content="math" img-format="tif"/></maths> where the second relation has been derived from the first by setting <maths id="math0070" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0077" file="imgb0077.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> = 1 / 2 and θ = <i>π.</i></p>
<p id="p0105" num="0105">By inserting the second relation in the first expression one gets:<!-- EPO <DP n="33"> --><maths id="math0071" num=""><img id="ib0078" file="imgb0078.tif" wi="155" he="32" img-content="math" img-format="tif"/></maths></p>
<p id="p0106" num="0106">This formula is however not directly useful because it is related to the histogram adjusted grey-level distribution denoted by <i>I</i><sub><i>sim</i></sub>.</p>
<p id="p0107" num="0107">One needs a formula that relates the above correction term to the original input grey-level distribution <i>I</i>(<i>x,y</i>) that has not been modified by histogram adjustments. This is important since the effect of the grey-level corrections also have to be incorporated in the procedure of histogram adjustments.</p>
<p id="p0108" num="0108">The histogram scaling gives:<maths id="math0072" num="(41)"><math display="block"><mrow><mtext mathvariant="italic">I</mtext><mtext>(</mtext><mtext mathvariant="italic">x</mtext><mtext>, </mtext><mtext mathvariant="italic">y</mtext><mtext>) = </mtext><mfrac><mrow><msub><mrow><mtext mathvariant="italic">I</mtext></mrow><mrow><mtext>max</mtext></mrow></msub></mrow><mrow><msub><mrow><mtext mathvariant="italic">I</mtext></mrow><mrow><mtext mathvariant="italic">slm</mtext><mtext>,max</mtext></mrow></msub></mrow></mfrac><mtext> </mtext><msub><mrow><mtext mathvariant="italic">I</mtext></mrow><mrow><mtext mathvariant="italic">slm</mtext></mrow></msub><mtext>(</mtext><mtext mathvariant="italic">x</mtext><mtext>, </mtext><mtext mathvariant="italic">y</mtext><mtext>)</mtext></mrow></math><img id="ib0079" file="imgb0079.tif" wi="51" he="12" img-content="math" img-format="tif"/></maths> where <i>I</i><sub>max</sub> and <i>I</i><sub>slm,max</sub> are the maximum grey-level values occurring in the original and the adjusted electronic grey-level distributions respectively.</p>
<p id="p0109" num="0109">Similarly, one can apply this relation to the intensity correction term <i>ΔI</i><sub><i>sim</i></sub> and obtain:<maths id="math0073" num=""><img id="ib0080" file="imgb0080.tif" wi="149" he="23" img-content="math" img-format="tif"/></maths> resulting in:<!-- EPO <DP n="34"> --><maths id="math0074" num=""><img id="ib0081" file="imgb0081.tif" wi="149" he="21" img-content="math" img-format="tif"/></maths></p>
<p id="p0110" num="0110">In order to have enough dynamic range in grey-levels for the correction term one can derive an inequality from the above relation by using the fact that <img id="ib0082" file="imgb0082.tif" wi="7" he="6" img-content="character" img-format="tif" inline="yes"/> ≤ gmax:<maths id="math0075" num=""><img id="ib0083" file="imgb0083.tif" wi="137" he="22" img-content="math" img-format="tif"/></maths> or<maths id="math0076" num=""><img id="ib0084" file="imgb0084.tif" wi="117" he="31" img-content="math" img-format="tif"/></maths></p>
<p id="p0111" num="0111">Since the first term is the dominating term in the expression for the intensity correction it will in practice be sufficient just to have the much simpler corrections:<maths id="math0077" num=""><img id="ib0085" file="imgb0085.tif" wi="102" he="31" img-content="math" img-format="tif"/></maths><!-- EPO <DP n="35"> --></p>
<heading id="h0012">PROPOSED APPLICATIONS:</heading>
<p id="p0112" num="0112">
<ul id="ul0005" list-style="bullet">
<li>Laser machining, marking, branding, trimming, hardening, scribing, labeling, welding and cutting on two- and three-dimensional surfaces especially by use of CO<sub>2</sub> and Nd:YAG laser based systems. The main advantage is that energy is not absorbed in the system (thereby preventing damage of the optical hardware) and this nonabsorbed energy is instead utilized to increase the intensity level of the desired light distribution in the image plane. High power can be delivered to selected regions on a work piece simultanously.</li>
<li>Efficient and dynamic spot-array generators based on phase contrast imaging. In order to provide bias or holding beams for arrays of optoelectronic elements, such as bistable elements, photonic switches and smart pixels.</li>
<li>Generation of structured light (lossless) for machine vision applications. E.g. periodic and skew periodic mesh grid illumination that can be updated in parallel.</li>
<li>Photolithographic applications (laser 3D direct writing in parallel without the need for sequential scanning). E.g. high power laser direct writing of waveguides in Ge-doped silica.</li>
<li>Spatial light intensity modulation in general by use of pure phase modulation (radiation focusators).</li>
<li>Laser beam shaping (dynamic).<!-- EPO <DP n="36"> --></li>
<li>Highly efficient parallel image projection without the need for a laser scanning device.</li>
<li>Dynamic Infrared Scene Projection (DIRSP).</li>
<li>Exposure device for grating and mask production.</li>
<li>LIDAR applications.</li>
<li>Laserprinting in parallel.</li>
<li>Lasershow applications.</li>
<li>Atmosphere research.</li>
</ul></p>
</description><!-- EPO <DP n="37"> -->
<claims id="claims01" lang="en">
<claim id="c-en-01-0001" num="0001">
<claim-text>A phase contrast imaging method of synthesizing an intensity pattern I(x',y') of an image, comprising the steps of
<claim-text>pixellating the intensity pattern I(x',y') in accordance with the disposition of resolution elements (x, y) of a spatial phase mask (4, 23, 43) having<br/>
   a plurality of individual resolution elements (x,y), each resolution element (x,y) modulating the phase of electromagnetic radiation incident upon it with a predetermined phasor value e<sup>iϕ(x,y)</sup>,</claim-text>
<claim-text>radiating electromagnetic radiation towards the spatial phase mask (4, 23, 43),</claim-text>
<claim-text>Fourier or Fresnel transforming the modulated electromagnetic radiation,</claim-text>
<claim-text>phase shifting in a region of spatial frequencies comprising DC in the Fourier or Fresnel plane, the modulated electromagnetic radiation by a predetermined phase shift value θ in relation to the remaining part of the electromagnetic radiation, and</claim-text>
<claim-text>forming the intensity pattern by Fourier or Fresnel transforming, respectively, the phase shifted Fourier or Fresnel transformed modulated electromagnetic radiation, whereby each resolution element (x,y) of the phase mask (4, 23, 43) is imaged on a corresponding resolution element (x',y') of the image,</claim-text>
<claim-text>calculating the phasor values e<sup>iϕ(x,y)</sup> of the phase mask (4, 23, 43) and the phase shift value θ in accordance with<maths id="math0078" num=""><math display="block"><mrow><msup><mrow><mtext>I(x',y') = |e</mtext></mrow><mrow><mtext>iϕ(x',y')</mtext></mrow></msup><mtext> + </mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><msup><mrow><mtext>(e</mtext></mrow><mrow><mtext>iθ</mtext></mrow></msup><msup><mrow><mtext>-1) |</mtext></mrow><mrow><mtext>2</mtext></mrow></msup></mrow></math><img id="ib0086" file="imgb0086.tif" wi="54" he="6" img-content="math" img-format="tif"/></maths></claim-text>
<claim-text>for selected phase shift values θ, <maths id="math0079" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0087" file="imgb0087.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> being the average of the phasors e<sup>iϕ(x,y)</sup> of the resolution elements of the phase mask (4, 23, 43),<!-- EPO <DP n="38"> --></claim-text>
<claim-text>selecting, for each resolution element, one of two phasor values which represent a particular grey level, and</claim-text>
<claim-text>supplying the selected phasor values e<sup>iϕ(x,y)</sup> to the resolution elements (x, y) of the spatial phase mask (4, 23, 43).</claim-text></claim-text></claim>
<claim id="c-en-01-0002" num="0002">
<claim-text>A method according to claim 1, wherein the step of calculating the phasor values comprises
<claim-text>setting the synthesized intensity of at least one resolution element (x<sub>0</sub>', y<sub>0</sub>') of the intensity pattern to zero, and</claim-text>
<claim-text>calculating the phasor values e<sup>iϕ(x,y)</sup> of the phase mask (4, 23, 43) in accordance with<maths id="math0080" num=""><math display="block"><mrow><mtext>|</mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><mtext>| = </mtext><mfrac><mrow><mtext>1</mtext></mrow><mrow><mtext>2|sin</mtext><mfrac><mrow><mtext>θ</mtext></mrow><mrow><mtext>2</mtext></mrow></mfrac><mtext>|</mtext></mrow></mfrac><mtext>,</mtext></mrow></math><img id="ib0088" file="imgb0088.tif" wi="26" he="13" img-content="math" img-format="tif"/></maths> <u>and</u><maths id="math0081" num=""><math display="block"><mrow><mtext mathvariant="italic">I(x',y') = 2[1_+</mtext><mtext>sin</mtext><mtext mathvariant="italic">(ϕ</mtext><mover accent="true"><mrow><msub><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">α</mtext></mrow></msub></mrow><mo>¯</mo></mover><mtext mathvariant="italic">-φ(x',y')+</mtext><mfrac><mrow><mtext>θ</mtext></mrow><mrow><mtext>2</mtext></mrow></mfrac><mtext mathvariant="italic">)]</mtext></mrow></math><img id="ib0089" file="imgb0089.tif" wi="63" he="10" img-content="math" img-format="tif"/></maths> for selected phase shift values θ, φ<maths id="math0082" num=""><math display="inline"><mrow><mover accent="true"><mrow><msub><mrow><mtext>​</mtext></mrow><mrow><mtext>α</mtext></mrow></msub></mrow><mo>¯</mo></mover></mrow></math><img id="ib0090" file="imgb0090.tif" wi="2" he="3" img-content="math" img-format="tif" inline="yes"/></maths> being the phase of <maths id="math0083" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0091" file="imgb0091.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>.</claim-text></claim-text></claim>
<claim id="c-en-01-0003" num="0003">
<claim-text>A method according to claim 2, further comprising the step of selecting the phase shift θ = π, selecting |<maths id="math0084" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0092" file="imgb0092.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>|1=½, and calculating the phasor values e<sup>jϕ(x,y)</sup> of the phase mask (4, 23, 43) in accordance with<maths id="math0085" num=""><math display="block"><mrow><mtext mathvariant="italic">I(x',y') = 2[1-cos(φ(x',y'))],</mtext></mrow></math><img id="ib0093" file="imgb0093.tif" wi="48" he="5" img-content="math" img-format="tif"/></maths> <u>and</u><maths id="math0086" num=""><img id="ib0094" file="imgb0094.tif" wi="54" he="16" img-content="math" img-format="tif"/></maths></claim-text></claim>
<claim id="c-en-01-0004" num="0004">
<claim-text>A method according to any of the preceding claims, further comprising the steps of
<claim-text>moving the DC-part of the electromagnetic radiation to a second part of the Fourier or Fresnel plane, and<!-- EPO <DP n="39"> --></claim-text>
<claim-text>phase shifting the Fourier or Fresnel transformed modulated electromagnetic radiation at the second part of the Fourier or Fresnel plane by θ in relation to the remaining part of the electromagnetic radiation.</claim-text></claim-text></claim>
<claim id="c-en-01-0005" num="0005">
<claim-text>A method according to claim 4, wherein the step of moving the DC-part of the electromagnetic radiation comprises utilization of an optical component, such as a grating, a prism, etc, with an appropriate carrier frequency.</claim-text></claim>
<claim id="c-en-01-0006" num="0006">
<claim-text>A method according to claim 4, wherein the step of moving the DC-part of the electromagnetic radiation comprises encoding the function of an optical component, such as a grating, a prism, etc, with an appropriate carrier frequency, into the spatial phase mask (4, 23, 43).</claim-text></claim>
<claim id="c-en-01-0007" num="0007">
<claim-text>A method according to any of the preceding claims, further comprising the step of adjusting the modulus of the Fourier transform of the phasors e<sup>iϕ(x,y)</sup> at specific spatial frequencies in order to control the range of intensity levels of the synthesized intensity pattern.</claim-text></claim>
<claim id="c-en-01-0008" num="0008">
<claim-text>A method according to claim 7, wherein the step of adjusting the modulus of the Fourier transform of the phasors e<sup>iϕ(x,y)</sup> at specific spatial frequencies comprises at least one of the following measures:
<claim-text>a) adjusting the individual phasors e<sup>iϕ(x,y)</sup> of the resolution elements of the phase mask (4, 23, 43). maintaining prescribed relative intensity levels between intensities of resolution elements of the intensity pattern,</claim-text>
<claim-text>b) adjusting the individual phasors e<sup>iϕ(x,y)</sup> of the resolution elements of the phase mask (4, 23, 43) by histogram techniques,</claim-text>
<claim-text>c) spatially scaling the phasor e<sup>iϕ(x,y)</sup> pattern of the phase mask (4, 23, 43), and</claim-text>
<claim-text>d) utilizing half tone coding techniques.</claim-text><!-- EPO <DP n="40"> --></claim-text></claim>
<claim id="c-en-01-0009" num="0009">
<claim-text>A method according to any of the preceding claims, further comprising the step of controlling power of the electromagnetic radiation in response to the intensity range of the intensity pattern.</claim-text></claim>
<claim id="c-en-01-0010" num="0010">
<claim-text>A method according to any of the preceding claims, wherein each phasor e<sup>iϕ(x,y)</sup> of the phase mask (4, 23, 43) is selected from a set of two determined phasors with complementary phasor values e<sup>iϕ1(x,y)</sup> and e<sup>iϕ2(x,y)</sup> in such a way that a specific spatial frequency distribution of the intensity of the electromagnetic radiation in the Fourier or Fresnel plane is attained.</claim-text></claim>
<claim id="c-en-01-0011" num="0011">
<claim-text>A method according to claim 10, wherein the phase ϕ(x,y) of phasors e<sup>iϕ(x,y)</sup> of adjacent resolution elements alternates between the two possible complementary phasor values e<sup>iϕ1(x,y)</sup> and e<sup>iϕ2(x,y)</sup>.</claim-text></claim>
<claim id="c-en-01-0012" num="0012">
<claim-text>A method according to claim 10 or 11, wherein the phasors e<sup>iϕ1(x,y)</sup> and e<sup>iϕ2(x,y)</sup> are complex conjugated.</claim-text></claim>
<claim id="c-en-01-0013" num="0013">
<claim-text>A method according to any of the preceding claims, further comprising the step of phase shifting at selected spatial frequencies constituting a region that is shaped to match the spatial frequency content of the phasors e<sup>iϕ(x,y)</sup> of the spatial phase mask (4, 23, 43).</claim-text></claim>
<claim id="c-en-01-0014" num="0014">
<claim-text>A method according to any of the preceding claims, wherein modulus of the average value |<maths id="math0087" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0095" file="imgb0095.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| of the phasors e<sup>iϕ(x,y)</sup> ranges from 0.1 to 0.9.</claim-text></claim>
<claim id="c-en-01-0015" num="0015">
<claim-text>A method according to claim 14, wherein modulus of the average value |<maths id="math0088" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0096" file="imgb0096.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| of the phasors e<sup>iϕ(x,y)</sup> ranges from 0.25 to 0.75.</claim-text></claim>
<claim id="c-en-01-0016" num="0016">
<claim-text>A method according to claim 14 or 15, wherein modules of the average value |<maths id="math0089" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0097" file="imgb0097.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| of the phasors e<sup>iϕ(x,y)</sup> ranges from 0.4 to 0.6.</claim-text></claim>
<claim id="c-en-01-0017" num="0017">
<claim-text>A method according to any of claims 14-16, wherein modulus of the average value |<maths id="math0090" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0098" file="imgb0098.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| of the phasors e<sup>iϕ(x,y)</sup> is approximately 0.5.<!-- EPO <DP n="41"> --></claim-text></claim>
<claim id="c-en-01-0018" num="0018">
<claim-text>A method according to any of the preceding claims wherein the phase shift θ ranges from π/4 to 7π/4.</claim-text></claim>
<claim id="c-en-01-0019" num="0019">
<claim-text>A method according to any of the preceding claims, wherein the phase shift θ ranges from π/2 to 3π/2.</claim-text></claim>
<claim id="c-en-01-0020" num="0020">
<claim-text>A method according to any of the preceding claims, wherein the phase shift θ ranges from 3π/4 to 5π/4.</claim-text></claim>
<claim id="c-en-01-0021" num="0021">
<claim-text>A method according to any of the preceding claims, wherein the phase shift θ is approximately π.</claim-text></claim>
<claim id="c-en-01-0022" num="0022">
<claim-text>A method according to any of the preceding claims, further comprising the step of zooming the image for scaling of the intensity pattern.</claim-text></claim>
<claim id="c-en-01-0023" num="0023">
<claim-text>A method according to claim 22, wherein zooming of the image is dynamically controllable.</claim-text></claim>
<claim id="c-en-01-0024" num="0024">
<claim-text>A method according to claim 22 or 23, wherein zooming of the image is controllable in dependence of the scaling of the phase mask (4, 23, 43).</claim-text></claim>
<claim id="c-en-01-0025" num="0025">
<claim-text>A method according to any of claims 22-24, further comprising the step of controlling power of the electromagnetic radiation in response to the spatial scaling of the pattern in the phase mask (4, 23, 43) and/or the zooming of the image.</claim-text></claim>
<claim id="c-en-01-0026" num="0026">
<claim-text>A method according to any of the preceding claims, wherein the step of phase shifting comprises utilisation of a spatial light modulator.</claim-text></claim>
<claim id="c-en-01-0027" num="0027">
<claim-text>A method according to any of the preceding claims, further comprising the step of encoding the optical function of a Fourier-transforming lens into the phasors e<sup>iϕ(x,y)</sup> of the phase mask (4, 23, 43).</claim-text></claim>
<claim id="c-en-01-0028" num="0028">
<claim-text>A method according to any of the preceding claims, further comprising the step of encoding the optical function of an output lens into the phase filter (6, 27, 45).<!-- EPO <DP n="42"> --></claim-text></claim>
<claim id="c-en-01-0029" num="0029">
<claim-text>A method according to any of the preceding claims, wherein the step of radiating electromagnetic radiation comprises radiation of electromagnetic radiation of different wavelengths corresponding to three different colours, such as red, green and blue, for generation of intensity patterns of arbitrary colours.</claim-text></claim>
<claim id="c-en-01-0030" num="0030">
<claim-text>A phase contrast imaging system (1) for synthesising an intensity pattern I(x',y') of an image, comprising
<claim-text>a source (2, 21, 41) of electromagnetic radiation for emission of electromagnetic radiation,</claim-text>
<claim-text>a spatial phase mask (4, 23, 43) for phase modulation of electromagnetic radiation and having<br/>
   a plurality of individual resolution elements (x,y), each resolution element (x,y) modulating the phase of electromagnetic radiation incident upon it with a predetermined phasor value e<sup>iϕ(x,y)</sup>, each resolution element (x,y) being individually addressable and adapted to receive a signal controlling the predetermined phasor value e<sup>iϕ(x,y)</sup>, and each resolution element (x,y) being positioned on a propagation axis of the electromagnetic radiation,</claim-text>
<claim-text>means (5, 26, 44) for Fourier or Fresnel transforming the phase modulated electromagnetic radiation positioned on a propagation axis of the phase modulated radiation,</claim-text>
<claim-text>a spatial phase filter (6, 27, 45) for phase shifting in a region of spatial frequencies comprising DC in the Fourier or Fresnel plane, the transformed electromagnetic radiation by a predetermined phase shift value θ in relation to the remaining part of the transformed electromagnetic radiation,</claim-text>
<claim-text>means (7, 10, 26, 30, 44, 47) for forming the intensity pattern by Fourier or Fresnel transforming, respectively, the phase shifted Fourier or Fresnel transformed modulated electromagnetic radiation, whereby each resolution element (x,y) of the phase mask (4, 23, 43) is imaged on a corresponding resolution element (x',y') of the image,<!-- EPO <DP n="43"> --></claim-text>
<claim-text>interface means for addressing each of the resolution elements (x,y) of the phase mask (4,23,43) and for transmitting signals controlling the phasor value e<sup>iϕ(x,y)</sup> of each addressed resolution element, said phasor values e<sup>iϕ(x,y)</sup> substantially fulfilling that<maths id="math0091" num=""><math display="block"><mrow><msup><mrow><mtext>I(x',y') = |e</mtext></mrow><mrow><mtext>iϕ(x',y')</mtext></mrow></msup><mtext> + </mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><msup><mrow><mtext>(e</mtext></mrow><mrow><mtext>iθ</mtext></mrow></msup><msup><mrow><mtext>-1)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup></mrow></math><img id="ib0099" file="imgb0099.tif" wi="52" he="6" img-content="math" img-format="tif"/></maths></claim-text>
<claim-text>for the predetermined phase shift values θ, <maths id="math0092" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0100" file="imgb0100.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> being the average of the phasors e<sup>iϕ(x,y)</sup> of the resolution elements of the phase mask (4, 23, 43),</claim-text></claim-text></claim>
<claim id="c-en-01-0031" num="0031">
<claim-text>A system (1) according to claim 30, further comprising
<claim-text>means for pixellation of the intensity pattern I(x',y') in accordance with the elements (x, y) of the spatial phase mask (4, 23, 43),</claim-text>
<claim-text>means for calculating the phasor values e<sup>iϕ(x,y)</sup> of the phase mask (4, 23, 43) and the phase shift value θ in accordance with equation<maths id="math0093" num=""><math display="block"><mrow><msup><mrow><mtext>I(x',y') = |e</mtext></mrow><mrow><mtext>iϕ(x',y')</mtext></mrow></msup><msup><mrow><mtext> + (e</mtext></mrow><mrow><mtext>iθ</mtext></mrow></msup><msup><mrow><mtext>-1)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup><mtext>,</mtext></mrow></math><img id="ib0101" file="imgb0101.tif" wi="51" he="6" img-content="math" img-format="tif"/></maths></claim-text>
<claim-text>means for selecting, for each resolution element, one of two phasor values which represent a particular grey level, and</claim-text>
<claim-text>wherein the interface means comprises means for supplying the calculated phasor values e<sup>iϕ(x,y)</sup> to the elements (x, y) of the phase mask (4, 23, 43).</claim-text></claim-text></claim>
<claim id="c-en-01-0032" num="0032">
<claim-text>A system (1) according to claim 30, wherein the intensity is zero for at least one resolution element (x<sub>0</sub>', y<sub>0</sub>') of the intensity pattern, and wherein the phasor values e<sup>iϕ(x,y)</sup> of the phase mask (4, 23, 43) substantially fulfil that<maths id="math0094" num=""><math display="block"><mrow><mtext>|</mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><mtext>| = </mtext><mfrac><mrow><mtext>1</mtext></mrow><mrow><mtext>2|sin</mtext><mfrac><mrow><mtext>θ</mtext></mrow><mrow><mtext>2</mtext></mrow></mfrac><mtext>|</mtext></mrow></mfrac></mrow></math><img id="ib0102" file="imgb0102.tif" wi="25" he="13" img-content="math" img-format="tif"/></maths> and<maths id="math0095" num=""><math display="block"><mrow><mtext mathvariant="italic">I(x',y')</mtext><mtext> = </mtext><mtext mathvariant="italic">2[1_</mtext><mtext>+sin</mtext><mtext mathvariant="italic">(φ</mtext><mover accent="true"><mrow><msub><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">α</mtext></mrow></msub></mrow><mo>¯</mo></mover><mtext mathvariant="italic"> - φ(x', y')</mtext><mtext> +</mtext><mfrac><mrow><mtext>θ</mtext></mrow><mrow><mtext>2</mtext></mrow></mfrac><mtext mathvariant="italic">)]</mtext></mrow></math><img id="ib0103" file="imgb0103.tif" wi="70" he="10" img-content="math" img-format="tif"/></maths><!-- EPO <DP n="44"> --> for selected phase shift values θ, φ<maths id="math0096" num=""><math display="inline"><mrow><mover accent="true"><mrow><msub><mrow><mtext>​</mtext></mrow><mrow><mtext>α</mtext></mrow></msub></mrow><mo>¯</mo></mover></mrow></math><img id="ib0104" file="imgb0104.tif" wi="2" he="3" img-content="math" img-format="tif" inline="yes"/></maths> being the phase of <maths id="math0097" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0105" file="imgb0105.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>.</claim-text></claim>
<claim id="c-en-01-0033" num="0033">
<claim-text>A system (1) according to claim 31, wherein the means for calculating the phasor values is adapted to calculate the phasor values e<sup>iϕ(x,y)</sup> of the phase mask (4, 23, 43) in accordance with<maths id="math0098" num=""><math display="block"><mrow><mtext>|</mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><mtext>| = </mtext><mfrac><mrow><mtext>1</mtext></mrow><mrow><mtext>2|sin</mtext><mfrac><mrow><mtext>θ</mtext></mrow><mrow><mtext>2</mtext></mrow></mfrac><mtext>|</mtext></mrow></mfrac></mrow></math><img id="ib0106" file="imgb0106.tif" wi="25" he="13" img-content="math" img-format="tif"/></maths> <u>and</u><maths id="math0099" num=""><math display="block"><mrow><mtext mathvariant="italic">I(x',y')</mtext><mtext>=</mtext><mtext mathvariant="italic">2[1_</mtext><mtext>+sin</mtext><mtext mathvariant="italic">(φ</mtext><mover accent="true"><mrow><msub><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">α</mtext></mrow></msub></mrow><mo>¯</mo></mover><mtext mathvariant="italic">-φ(x',y')</mtext><mtext>+</mtext><mfrac><mrow><mtext>θ</mtext></mrow><mrow><mtext>2</mtext></mrow></mfrac><mtext mathvariant="italic">)]</mtext></mrow></math><img id="ib0107" file="imgb0107.tif" wi="61" he="10" img-content="math" img-format="tif"/></maths> for selected phase shift values θ, φ<maths id="math0100" num=""><math display="inline"><mrow><mover accent="true"><mrow><msub><mrow><mtext>​</mtext></mrow><mrow><mtext>α</mtext></mrow></msub></mrow><mo>¯</mo></mover></mrow></math><img id="ib0108" file="imgb0108.tif" wi="2" he="3" img-content="math" img-format="tif" inline="yes"/></maths> being the phase of <maths id="math0101" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0109" file="imgb0109.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>.</claim-text></claim>
<claim id="c-en-01-0034" num="0034">
<claim-text>A system (1) according to claim 32, wherein the phase shift θ is substantially equal to π and is substantially equal to ½, and the phases ϕ(x,y) substantially fulfil that<maths id="math0102" num=""><math display="block"><mrow><mtext mathvariant="italic">I(x',y')</mtext><mtext>=</mtext><mtext mathvariant="italic">2[1</mtext><mtext>-</mtext><mtext mathvariant="italic">cos(φ(x',y'))]</mtext></mrow></math><img id="ib0110" file="imgb0110.tif" wi="47" he="5" img-content="math" img-format="tif"/></maths> <u>and</u><maths id="math0103" num=""><img id="ib0111" file="imgb0111.tif" wi="52" he="13" img-content="math" img-format="tif"/></maths></claim-text></claim>
<claim id="c-en-01-0035" num="0035">
<claim-text>A system (1) according to claim 33, wherein the means for calculating the phasor values is adapted to calculate the phasor values e<sup>iϕ(x,y)</sup> of the phase mask (4, 23, 43) in accordance with<maths id="math0104" num=""><math display="block"><mrow><mtext mathvariant="italic">I(x', y') = 2[1</mtext><mtext>-cos</mtext><mtext mathvariant="italic">(</mtext><mtext>φ</mtext><mtext mathvariant="italic">(x'</mtext><mtext>, </mtext><mtext mathvariant="italic">y'))]</mtext></mrow></math><img id="ib0112" file="imgb0112.tif" wi="53" he="5" img-content="math" img-format="tif"/></maths> <u>and</u><maths id="math0105" num=""><img id="ib0113" file="imgb0113.tif" wi="62" he="12" img-content="math" img-format="tif"/></maths></claim-text></claim>
<claim id="c-en-01-0036" num="0036">
<claim-text>A system (1) according to any of claims 30-35, further comprising
<claim-text>means for moving the region of spatial frequencies comprising DC to a second part of the Fourier or Fresnel plane, and wherein<!-- EPO <DP n="45"> --></claim-text>
<claim-text>the phase filter (6, 27, 45) is positioned at the second part of the Fourier or Fresnel plane for phase shifting of the transformed modulated electromagnetic radiation at the second part of the Fourier or Fresnel plane by θ in relation to the remaining part of the electromagnetic radiation.</claim-text></claim-text></claim>
<claim id="c-en-01-0037" num="0037">
<claim-text>A system (1) according to claim 36, wherein the means for moving the region of spatial frequencies comprising DC to a second part of the Fourier or Fresnel plane comprises an optical component, such as a grating, a prism, etc, with an appropriate carrier frequency.</claim-text></claim>
<claim id="c-en-01-0038" num="0038">
<claim-text>A system (1) according to claim 36, wherein the means for moving the region of spatial frequencies comprising DC to a second part of the Fourier or Fresnel plane comprises the phase mask (4, 23, 43) in which the function of an optical component, such as a grating, a prism, etc, with an appropriate carrier frequency, has been encoded.</claim-text></claim>
<claim id="c-en-01-0039" num="0039">
<claim-text>A system (1) according to any of claims 30-38, wherein the modulus of the Fourier transform of the phasors e<sup>iϕ(x,y)</sup> at specific spatial frequencies have been adjusted to keep the intensity levels of the synthesised intensity pattern within a desired range.</claim-text></claim>
<claim id="c-en-01-0040" num="0040">
<claim-text>A system (1) according to claim 39, wherein the modulus of the Fourier transform of the phasors e<sup>iϕ(x,y)</sup> at specific spatial frequencies have been adjusted according to at least one of the following measures:
<claim-text>a) adjusting the individual phasors e<sup>iϕ(x,y)</sup> of the resolution elements of the phase mask (4, 23, 43) maintaining prescribed relative intensity levels between intensities of resolution elements of the intensity pattern,</claim-text>
<claim-text>b) adjusting the individual phasors e<sup>iϕ(x,y)</sup> of the resolution elements of the phase mask (4, 23, 43) by histogram techniques,</claim-text>
<claim-text>c) spatially scaling the phasor e<sup>iϕ(x,y)</sup> pattern of the phase mask (4, 23, 43), and</claim-text>
<claim-text>d) utilizing half tone coding techniques.</claim-text><!-- EPO <DP n="46"> --></claim-text></claim>
<claim id="c-en-01-0041" num="0041">
<claim-text>A system (1) according to any of claims 30-40, further comprising means for controlling power of the electromagnetic radiation in response to the intensity range of the intensity pattern.</claim-text></claim>
<claim id="c-en-01-0042" num="0042">
<claim-text>A system (1) according to any of claims 30-41, wherein each phasor e<sup>jϕ(x,y)</sup> of the phase mask (4, 23, 43) is substantially equal to a selected phasor that has been selected from a set of two phasors with complementary phase values e<sup>iϕ1(x,y)</sup> and e<sup>iϕ2(x,y)</sup> in such a way that a specific spatial frequency distribution of the intensity of the electromagnetic radiation in the Fourier or Fresnel plane is attained.</claim-text></claim>
<claim id="c-en-01-0043" num="0043">
<claim-text>A system (1) according to claim 42, wherein the phase <sup>ϕ(x,y)</sup> of phasors e<sup>iϕ(x,y)</sup> of adjacent resolution elements alternates between the two possible complementary phasor values e<sup>iϕ1(x,y)</sup> and e<sup>iϕ2(x,y)</sup>.</claim-text></claim>
<claim id="c-en-01-0044" num="0044">
<claim-text>A system (1) according to any of claims 30-43, wherein the phase filter (6, 27, 45) is shaped to match the spatial frequency content of the phasors e<sup>iϕ(x,y)</sup> of the spatial phase mask (4, 23, 43).</claim-text></claim>
<claim id="c-en-01-0045" num="0045">
<claim-text>A system (1) according to any of claims 30-44, wherein modulus of the average value |<maths id="math0106" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0114" file="imgb0114.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| of the phasors e<sup>iϕ(x,y)</sup> ranges from 0.1 to 0.9.</claim-text></claim>
<claim id="c-en-01-0046" num="0046">
<claim-text>A system (1) according to claim 45, wherein modulus of the average value |<maths id="math0107" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0115" file="imgb0115.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| of the phasors e<sup>iϕ(x,y)</sup> ranges from 0.25 to 0.75.</claim-text></claim>
<claim id="c-en-01-0047" num="0047">
<claim-text>A system (1) according to claim 45 or 46, wherein modulus of the average value |<maths id="math0108" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0116" file="imgb0116.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| of the phasors e<sup>iϕ(x,y)</sup> ranges from 0.4 to 0.6.</claim-text></claim>
<claim id="c-en-01-0048" num="0048">
<claim-text>A system (1) according to any of claims 45-47, wherein modulus of the average value |<maths id="math0109" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0117" file="imgb0117.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| of the phasors e<sup>iϕ(x,y)</sup> is approximately 0.5.</claim-text></claim>
<claim id="c-en-01-0049" num="0049">
<claim-text>A system (1) according to any of claims 45-48, wherein the phase shift θ ranges from π/4 to 7π/4.<!-- EPO <DP n="47"> --></claim-text></claim>
<claim id="c-en-01-0050" num="0050">
<claim-text>A system (1) according to any of claims 45-49, wherein the phase shift θ ranges from π/2 to 3π/2.</claim-text></claim>
<claim id="c-en-01-0051" num="0051">
<claim-text>A system (1) according to any of claims 45-50, wherein the phase shift θ ranges from 3π/4 to 5π/4.</claim-text></claim>
<claim id="c-en-01-0052" num="0052">
<claim-text>A system (1) according to any of claims 30-51, wherein the phase shift θ is approximately π.</claim-text></claim>
<claim id="c-en-01-0053" num="0053">
<claim-text>A system (1) according to any of claims 30-52, further comprising zooming means (10, 30, 47) for scaling of the intensity pattern.</claim-text></claim>
<claim id="c-en-01-0054" num="0054">
<claim-text>A system (1) according to any of claims 30-53, wherein the phase filter (6, 27, 45) comprises a spatial light modulator.</claim-text></claim>
<claim id="c-en-01-0055" num="0055">
<claim-text>A system (1) according to any of claims 30-54, wherein the phase mask (4, 23, 43) is adapted to perform the optical function of a Fourier-transforming lens by appropriate encoding of the phasors e<sup>iϕ(x,y)</sup> of the phase mask (4, 23, 43).</claim-text></claim>
<claim id="c-en-01-0056" num="0056">
<claim-text>A system (1) according to any of claims 30-55, wherein the spatial phase filter (6, 27, 45) is adapted to perform the optical function of an output lens by appropriate encoding of the phase filter (6, 27, 45).</claim-text></claim>
<claim id="c-en-01-0057" num="0057">
<claim-text>A system (1) according to any of claims 30-56, wherein the source (2, 21, 41) of electromagnetic radiation is adapted to radiate electromagnetic radiation of different wavelengths corresponding to three different colours, such as red, green and blue, for generation of intensity patterns of arbitrary colours.</claim-text></claim>
<claim id="c-en-01-0058" num="0058">
<claim-text>A system (1) according to any of claims 30-57, further comprising a first and a second Fourier transforming lens (5, 7), the spatial phase mask (4, 23, 43) being positioned in the front focal plane of the first lens (5), the spatial phase filter (6, 27, 45) being positioned at the back focal plane of the first lens (5), and the second lens (7) being positioned so that its front focal plane is positioned at the position of the back focal plane of the first lens (5).<!-- EPO <DP n="48"> --></claim-text></claim>
<claim id="c-en-01-0059" num="0059">
<claim-text>A system (1) according to any of claims 30-58, further comprising one Fourier transforming lens (44), the spatial phase filter (45) being positioned at the back focal plane of the lens (44).</claim-text></claim>
<claim id="c-en-01-0060" num="0060">
<claim-text>A system (1) according to any of claims 30-59, further comprising one imaging lens, the spatial phase filter (6, 27, 45) being positioned in the back focal plane of the lens.</claim-text></claim>
<claim id="c-en-01-0061" num="0061">
<claim-text>A system (1) according to any of claims 30-60, further comprising a polarising beam splitter (24) and a quarter wave plate (25) and/or a phase filter (27) reflecting electromagnetic radiation incident upon it.</claim-text></claim>
<claim id="c-en-01-0062" num="0062">
<claim-text>A system (1) according to any of claims 30-61, wherein the spatial phase filter (6, 27, 45) changes the phase of the radiation in the region of spatial frequencies comprising DC and leaves the phase of the remaining part of the radiation unchanged.</claim-text></claim>
<claim id="c-en-01-0063" num="0063">
<claim-text>A system (1) according to any of claims 30-61, wherein the spatial phase filter (6, 27, 45) do not change the phase of the radiation in the region of spatial frequencies comprising DC and changes the phase of the remaining part of the radiation.</claim-text></claim>
<claim id="c-en-01-0064" num="0064">
<claim-text>A system (1) according to any of claims 30-61, wherein the spatial phase filter (6, 27, 45) blocks the radiation at the region of spatial frequencies comprising DC and leaves the remaining part of the radiation unchanged.</claim-text></claim>
<claim id="c-en-01-0065" num="0065">
<claim-text>A system (1) according to any of claims 30-64, wherein the source (2, 21, 41) of electromagnetic radiation is a Laser (2, 21, 41).</claim-text></claim>
<claim id="c-en-01-0066" num="0066">
<claim-text>A system (1) according to any of claims 30-65, subject to the proviso that if θ = π, the phase mask (4, 23, 43) is not divided into a matrix of rows and columns of resolution elements of the same size and shape, every fourth resolution element having the phasor value e<sup>iπ</sup> and being distributed periodically and regularly across the area of the phase mask in such a way that every second row and every second column do not contain a resolution element with the phasor value e<sup>iπ</sup>, the remaining resolution elements having the phasor value e<sup>i0</sup>.<!-- EPO <DP n="49"> --></claim-text></claim>
<claim id="c-en-01-0067" num="0067">
<claim-text>A system (1) according to any of claims 30-65, subject to the proviso that if θ = π/2, the phase mask (4, 23, 43) is not divided into a matrix of rows or columns of the same size and shape, every second row or column having the phasor value e<sup>iπ/2</sup> and being interlaced with the remaining rows or columns having the phasor value e<sup>i0</sup>.</claim-text></claim>
</claims><!-- EPO <DP n="50"> -->
<claims id="claims02" lang="de">
<claim id="c-de-01-0001" num="0001">
<claim-text>Verfahren zur Phasenkontrastbildgebung, bei dem von einem Bild ein Intensitätsmuster I (x', y') erzeugt wird, wobei das Verfahren zur Phasenkontrastbildgebung folgende Schritte aufweist:
<claim-text>Unterteilen des Intensitätsmusters I (x', y') in Pixel in Abhängigkeit von der Anordnung von Auflösungselementen (x, y) einer räumlichen Phasenmaske (4, 23, 43), die<br/>
   eine Vielzahl von einzelnen Auflösungselementen (x, y) aufweist, wobei jedes Auflösungselement (x, y) die Phase einer auf es fallenden elektromagnetischen Strahlung mit einem vorbestimmten Zeigerwert e<sup>iϕ(x,y)</sup> moduliert,</claim-text>
<claim-text>Ausstrahlen von elektromagnetischer Strahlung zu der räumlichen Phasenmaske (4, 23, 43),</claim-text>
<claim-text>Fouriertransformation oder Fresneltransformation der modulierten elektromagnetischen Strahlung,</claim-text>
<claim-text>Phasenverschiebung der modulierten elektromagnetischen Strahlung um einen vorbestimmten Phasenverschiebungswert θ im Verhältnis zu dem verbleibenden Teil der elektromagnetischen Strahlung in einem Bereich der räumlichen Frequenzen, der einen DC-Anteil aufweist, in der Fourierebene oder Fresnelebene, und</claim-text>
<claim-text>Bilden des Intensitätsmusters durch Fouriertransformation bzw. Fresneltransformation der phasenverschobenen und fourier- oder fresneltransformierten modulierten elektromagnetischen<!-- EPO <DP n="51"> --> Strahlung, wobei jedes Auflösungselement (x, y) der Phasenmaske (4, 23, 43) auf ein entsprechendes Auflösungselement (x', y') des Bildes abgebildet wird,</claim-text>
<claim-text>Berechnung der Zeigerwerte e<sup>iϕ(x,y)</sup> der Phasenmaske (4, 23, 43) und des Phasenverschiebungswertes θ gemäß<maths id="math0110" num=""><math display="block"><mrow><mtext>|(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><mtext>')=|</mtext><msup><mrow><mtext mathvariant="italic">e</mtext></mrow><mrow><mtext mathvariant="italic">i</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>ϕ(</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">x</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>',</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">y</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>')</mtext></mrow></msup><mtext> + </mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><mtext>(</mtext><msup><mrow><mtext mathvariant="italic">e</mtext></mrow><mrow><mtext mathvariant="italic">i</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>θ</mtext></mrow></msup><msup><mrow><mtext>-1)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup></mrow></math><img id="ib0118" file="imgb0118.tif" wi="49" he="6" img-content="math" img-format="tif"/></maths></claim-text>
<claim-text>für ausgewählte Phasenverschiebungswerte θ, wobei <maths id="math0111" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0119" file="imgb0119.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> das Mittel der Zeiger e<sup>iϕ(x,y)</sup> der Auflösungselemente der Phasenmaske (4, 23, 43) ist,</claim-text>
<claim-text>Auswählen von einem oder zwei Zeigerwerten, die eine bestimmte Graustufe darstellen, für jedes Auflösungselement, und</claim-text>
<claim-text>Speisen der Auflösungselemente (x, y) der räumlichen Phasenmaske (4, 23, 43) mit den ausgewählten Zeigerwerten e<sup>iϕ(x,y)</sup>.</claim-text></claim-text></claim>
<claim id="c-de-01-0002" num="0002">
<claim-text>Verfahren nach Anspruch 1, wobei der Schritt der Berechnung der Zeigerwerte aufweist
<claim-text>Setzen der erzeugten Intensität von wenigstens einem Auflösungselement (x<sub>0</sub>', y<sub>0</sub>') des Intensitätsmusters zu Null, und</claim-text>
<claim-text>Berechnung der Zeigerwerte e<sup>iϕ(x,y)</sup> der Phasenmaske (4, 23, 43) gemäß<maths id="math0112" num=""><math display="block"><mrow><mtext>|</mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><mtext>| = </mtext><mfrac><mrow><mtext>1</mtext></mrow><mrow><mtext>2</mtext><mfenced open="|" close="|"><mrow><mtext>sin</mtext><mfrac><mrow><mtext>θ</mtext></mrow><mrow><mtext>2</mtext></mrow></mfrac></mrow></mfenced></mrow></mfrac><mtext>,</mtext></mrow></math><img id="ib0120" file="imgb0120.tif" wi="28" he="13" img-content="math" img-format="tif"/></maths> und<!-- EPO <DP n="52"> --><maths id="math0113" num=""><math display="block"><mrow><mtext mathvariant="italic">I</mtext><mtext>(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><mtext>') = 2[1_+ sin(φ</mtext><mover accent="true"><mrow><msub><mrow><mtext>​</mtext></mrow><mrow><mtext>α</mtext></mrow></msub></mrow><mo>¯</mo></mover><mtext> - φ(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><mtext>') + </mtext><mfrac><mrow><mtext>θ</mtext></mrow><mrow><mtext>2</mtext></mrow></mfrac><mtext>)]</mtext></mrow></math><img id="ib0121" file="imgb0121.tif" wi="71" he="10" img-content="math" img-format="tif"/></maths></claim-text>
<claim-text>für ausgewählte Phasenverschiebungswerte θ, wobei φ<maths id="math0114" num=""><math display="inline"><mrow><mover accent="true"><mrow><msub><mrow><mtext>​</mtext></mrow><mrow><mtext>α</mtext></mrow></msub></mrow><mo>¯</mo></mover></mrow></math><img id="ib0122" file="imgb0122.tif" wi="2" he="3" img-content="math" img-format="tif" inline="yes"/></maths> die Phase von <maths id="math0115" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0123" file="imgb0123.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> ist.</claim-text></claim-text></claim>
<claim id="c-de-01-0003" num="0003">
<claim-text>Vertahren nach Anspruch 1, das weiterhin aufweist den Schritt
<claim-text>Auswählen des Phasenverschiebungswertes θ=π, Auswählen von |<maths id="math0116" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0124" file="imgb0124.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| 1 = ½ und Berechnen der Zeigerwerte e<sup>iϕ(x,y)</sup> der Phasenmaske (4, 23, 43) gemäß<maths id="math0117" num=""><math display="block"><mrow><mtext mathvariant="italic">I</mtext><mtext>(</mtext><mtext mathvariant="italic">x</mtext><mtext>', </mtext><mtext mathvariant="italic">y</mtext><mtext>') = 2[1 - cos(φ(</mtext><mtext mathvariant="italic">x</mtext><mtext>', </mtext><mtext mathvariant="italic">y</mtext><mtext>'))],</mtext></mrow></math><img id="ib0125" file="imgb0125.tif" wi="56" he="5" img-content="math" img-format="tif"/></maths> und<maths id="math0118" num=""><img id="ib0126" file="imgb0126.tif" wi="54" he="18" img-content="math" img-format="tif"/></maths></claim-text></claim-text></claim>
<claim id="c-de-01-0004" num="0004">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, das weiterhin aufweist den Schritt
<claim-text>Übertragen des DC-Anteils der elektromagnetischen Strahlung zu einem zweiten Teil der Fourier- oder Fesnelebene, und</claim-text>
<claim-text>Phasenverschieben der fourier- oder fresneltransformierten modulierten elektromagnetischen Strahlung bei dem zweiten Teil der Fourier- oder Fresnelebene um θ im Verhältnis zu dem verbleibenden Teils der elektromagnetischen Strahlung.</claim-text></claim-text></claim>
<claim id="c-de-01-0005" num="0005">
<claim-text>Verfahren nach Anspruch 4, wobei der Schritt der Übertragung des DC-Anteils der elektromagnetischen Strahlung die<!-- EPO <DP n="53"> --> Verwendung einer optischen Komponente mit einer geeigneten Trägerfrequenz umfasst, wie beispielsweise ein Gitter, ein Prisma etc.</claim-text></claim>
<claim id="c-de-01-0006" num="0006">
<claim-text>Ein Verfahren nach Anspruch 4, wobei der Schritt der Übertragung des DC-Anteils der elektromagnetischen Strahlung das Encodieren der Funktion einer optischen Komponente, wie beispielsweise ein Gitter, ein Prisma etc., mit einer geeigneten Trägerfrequenz in die räumliche Phasenmaske (4, 23, 43) umfasst.</claim-text></claim>
<claim id="c-de-01-0007" num="0007">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, das weiterhin aufweist den Schritt einer Einstellung des Moduls der Fouriertransformation der Zeiger e<sup>iφ(x,y)</sup> bei spezifischen räumlichen Frequenzen, um den Bereich der Intensitätsstufen des erzeugten Intensitätsmusters zu steuern.</claim-text></claim>
<claim id="c-de-01-0008" num="0008">
<claim-text>Ein Verfahren nach Anspruch 7, wobei der Schritt der Einstellung des Moduls der Fouriertransformation der Zeiger e<sup>iϕ(x,y)</sup> bei spezifischen räumlichen Frequenzen wenigstens eine der folgenden Maßnahmen umfasst:
<claim-text>a) Einstellung der einzelnen Zeiger e<sup>iϕ(x,y)</sup> der Auflösungselemente der Phasenmaske (4, 23, 43), wobei vorgeschriebenen relative Intensitätsstufen zwischen den Intensitäten der Auflösungselemente des Intensitätsmusters beibehalten werden,</claim-text>
<claim-text>b) Einstellung der individuellen Zeiger e<sup>iϕ(x,y)</sup> der Auflösungselemente der Phasenmaske (4, 23, 43) mittels Histogrammtechniken,</claim-text>
<claim-text>c) räumliche Skalierung des Musters der Zeiger e<sup>iϕ(x,y)</sup> der Phasenmaske (4, 23, 43), und<!-- EPO <DP n="54"> --></claim-text>
<claim-text>d) Verwendung von Grautoncodiertechniken.</claim-text></claim-text></claim>
<claim id="c-de-01-0009" num="0009">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, das weiterhin den Schritt einer Steuerung der Leistung der elektromagnetischen Strahlung in Abhängigkeit des Intensitätsbereichs des Intensitätsmusters umfasst.</claim-text></claim>
<claim id="c-de-01-0010" num="0010">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, wobei jeder Zeiger e<sup>iϕ(x,y)</sup> der Phasenmaske (4, 23, 43) aus einer Menge von zwei vorbestimmten Zeigern mit komplementären Zeigerwerten e<sup>iϕ1(x,y)</sup> und e<sup>iϕ2(x,y)</sup> derart ausgewählt wird, dass eine spezifische Verteilung der räumlichen Frequenz der Intensität der elektromagnetischen Strahlung in der Fourier oder Fresnelebene erreicht wird.</claim-text></claim>
<claim id="c-de-01-0011" num="0011">
<claim-text>Verfahren nach Anspruch 10, wobei die Phase ϕ (x, y) der Zeiger e<sup>iϕ(x,y)</sup> von benachbarten Auflösungselementen zwischen den zwei möglichen komolementären Zeigerwerten e<sup>iϕ1(x,y)</sup> und e<sup>iϕ2(x,y)</sup> wechselt.</claim-text></claim>
<claim id="c-de-01-0012" num="0012">
<claim-text>Verfahren nach Anspruch 10 oder 11, wobei die Zeiger e<sup>iϕ1(x,y)</sup> und e<sup>iϕ2(x,y)</sup> komplexkonjugiert sind.</claim-text></claim>
<claim id="c-de-01-0013" num="0013">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, das weiterhin aufweist den Schritt einer Phasenverschiebung bei ausgewählten räumlichen Frequenzen, die einen Bereich bilden, der in Übereinstimmung mit dem Inhalt der räumlichen Frequenz des Zeigers e<sup>iϕ(x,y)</sup> der räumlichen Phasenmaske (4, 23, 43) ausgestaltet ist, umfasst.<!-- EPO <DP n="55"> --></claim-text></claim>
<claim id="c-de-01-0014" num="0014">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, bei dem der Modul des Mittelwerts |<maths id="math0119" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0127" file="imgb0127.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| der Zeiger e<sup>iϕ(x,y)</sup> sich in einem Bereich zwischen 0,1 und 0,9 befindet.</claim-text></claim>
<claim id="c-de-01-0015" num="0015">
<claim-text>Verfahren nach Anspruch 14, bei dem der Modul des Mittelwertes |<maths id="math0120" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0128" file="imgb0128.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| der Zeiger e<sup>iϕ(x,y)</sup> sich in einem Bereich zwischen 0,25 und 0,75 befindet.</claim-text></claim>
<claim id="c-de-01-0016" num="0016">
<claim-text>Verfahren nach Anspruch 14 oder 15, bei dem sich der Modul des Mittelwerts |<maths id="math0121" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0129" file="imgb0129.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| der Zeiger e<sup>iϕ(x,y)</sup> sich in einem Bereich zwischen 0,4 und 0,6 befindet.</claim-text></claim>
<claim id="c-de-01-0017" num="0017">
<claim-text>Verfahren nach einem der Ansprüche 14 bis 16, dem der Modul des Mittelwerts |<maths id="math0122" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0130" file="imgb0130.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| der Zeiger e<sup>iϕ(x,y)</sup> ungefähr 0,5 ist.</claim-text></claim>
<claim id="c-de-01-0018" num="0018">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, bei dem die Phasenverschiebung θ sich in einem Bereich zwischen π/4 und π/4 befindet.</claim-text></claim>
<claim id="c-de-01-0019" num="0019">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, bei dem die Phasenverschiebung θ sich in einem Bereich zwischen π/2 und 3π/2 befindet.</claim-text></claim>
<claim id="c-de-01-0020" num="0020">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, bei dem die Phasenverschiebung θ sich in einem Bereich zwischen 3π/4 und 5π/4 befindet.</claim-text></claim>
<claim id="c-de-01-0021" num="0021">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, bei dem die Phasenverschiebung θ ungefähr π ist.<!-- EPO <DP n="56"> --></claim-text></claim>
<claim id="c-de-01-0022" num="0022">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, das weiterhin den Schritt eines zoomens des Bildes zur Skalierung des Intensitätsmusters umfasst.</claim-text></claim>
<claim id="c-de-01-0023" num="0023">
<claim-text>Verfahren nach Anspruch 22, bei dem das Zoomen des Bildes dynamisch steuerbar ist.</claim-text></claim>
<claim id="c-de-01-0024" num="0024">
<claim-text>Verfahren nach Anspruch 22 oder 23, bei dem das Zoomen des Bildes in Abhängigkeit der Skalierung der Phasenmaske (4, 23, 43) steuerbar ist.</claim-text></claim>
<claim id="c-de-01-0025" num="0025">
<claim-text>Verfahren nach einem der Ansprüche 22 bis 24, das weiterhin den Schritt der Steuerung der Leistung der elektromagnetischen Strahlung in Abhängigkeit der räumlichen Skalierung des Musters in der Phasenmaske (4, 23, 43) und/oder des Zoomens des Bildes umfasst.</claim-text></claim>
<claim id="c-de-01-0026" num="0026">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, bei dem der Schritt der Phasenverschiebung die Verwendung eines räumlichen Lichtmodulators umfasst.</claim-text></claim>
<claim id="c-de-01-0027" num="0027">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, das weiterhin den Schritt einer Encodierung der optischen Funktion von einer Fouriertransformationslinse in den Zeiger e<sup>iϕ(x,y)</sup> der Phasenmaske (4, 23, 43) umfasst.</claim-text></claim>
<claim id="c-de-01-0028" num="0028">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, das weiterhin den Schritt des Encodierens der optischen Funktion einer Austrittslinse in den Phasenfilter (6, 27, 45) umfasst.</claim-text></claim>
<claim id="c-de-01-0029" num="0029">
<claim-text>Verfahren nach einem der vorhergehenden Ansprüche, bei dem der Schritt des Aussendens der elektromagnetischen Strahlung das Aussenden von elektromagnetischer Strahlung verschiedener Wellenlängen entsprechend drei verschiedener Farben,<!-- EPO <DP n="57"> --> wie beispielsweise Rot, Grün und Blau, umfasst, um Intensitätsmuster beliebiger Farben zu erzeugen.</claim-text></claim>
<claim id="c-de-01-0030" num="0030">
<claim-text>Ein Phasenkontrastbildgebungssystem (1) zur Erzeugung eines Intensitätsmusters I (x', y') eines Bildes, mit
<claim-text>einer Quelle (2, 21, 41) von elektromagnetischer Strahlung zum Aussenden von elektromagnetischer Strahlung,</claim-text>
<claim-text>eine räumliche Phasenmaske (4, 23, 43) zur Phasenmodulation von elektromagnetischer Strahlung und mit<br/>
   einer Vielzahl von einzelnen Auflösungselementen (x, y), wobei jedes Auflösungselement (x, y) die Phase der auf es fallenden elektromagnetischen Strahlung mit einem vorbestimmten Zeigerwert e<sup>iϕ(x,y)</sup> moduliert, jedes Auflösungselement (x, y) individuell adressierbar und zum Empfangen eines Signals zur Steuerung des vorbestimmten Zeigerwerts e<sup>iϕ(x,y)</sup> eingerichtet ist und jedes Auflösungselement (x, y) auf einer Ausbreitungsachse der elektromagnetischen Strahlung angeordnet ist,</claim-text>
<claim-text>Mittel (5, 26, 44) zur Fourier- oder Fesneltransformation der phasenmodulierten elektromagnetischen Strahlung, die auf einer Ausbreitungsachse der phasenmodulierten Strahlung angeordnet sind,</claim-text>
<claim-text>ein räumliches Phasenfilter (6, 27, 45) zur Phasenverschiebung der transformierten elektromagnetischen Strahlung um einen vorbestimmten Phasenverschiebungswert θ im Verhältnis zu dem verbleibenden Teil der transformierten elektromagnetischen Strahlung in einem Bereich der räumlichen Frequenzen, die einen DC-Anteil aufweisen, in der Fourier- oder Fresnelebene,<!-- EPO <DP n="58"> --></claim-text>
<claim-text>Mittel (7, 10, 26, 30, 44, 47) zum Bilden des Intensitätsmusters durch Fourier- bzw. Fresneltransformation der phasenverschobenen fourier- oder fresneltransformierten modulierten elektromagnetischen Strahlung, wobei jedes Auflösungselement (x, y) der Phasenmaske (4, 23, 43) auf ein entsprechendes Auflösungselement (x', y') des Bildes abgebildet wird,</claim-text>
<claim-text>Schnittstellenmitteln zum Adressieren von jedem der Auflösungselemente (x, y) der Phasenmaske (4, 23, 43) und zur Übertragung von Signalen, die den Zeigerwert e<sup>iϕ(x,y)</sup> von jedem adressierten Auflösungselement steuern, wobei die Zeigerwerte e<sup>iϕ(x,y)</sup> im Wesentlichen die Bedingung<maths id="math0123" num=""><math display="block"><mrow><mtext mathvariant="italic">I</mtext><mtext>(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><mtext>')=|</mtext><msup><mrow><mtext mathvariant="italic">e</mtext></mrow><mrow><mtext mathvariant="italic">i</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>ϕ(</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">x</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>',</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">y</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>')</mtext></mrow></msup><mtext> + </mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><mtext>(</mtext><msup><mrow><mtext mathvariant="italic">e</mtext></mrow><mrow><mtext mathvariant="italic">i</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>ϕ(</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">x</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>',</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">y</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>')</mtext></mrow></msup><msup><mrow><mtext> -1)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup></mrow></math><img id="ib0131" file="imgb0131.tif" wi="62" he="6" img-content="math" img-format="tif"/></maths></claim-text>
<claim-text>für die vorbestimmten Phasenverschiebungswerte θ erfüllen, wobei <maths id="math0124" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0132" file="imgb0132.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> das Mittel der Zeiger e<sup>iϕ(x,y)</sup> der Auflösungselemente der Phasenmaske (4, 23, 43) ist.</claim-text></claim-text></claim>
<claim id="c-de-01-0031" num="0031">
<claim-text>Ein System (1) nach Anspruch 30, das weiterhin aufweist:
<claim-text>Mittel zur Unterteilung in Pixel des Intensitätsmusters I (x', y') in Übereinstimmung mit den Elementen (x, y) der räumlichen Phasenmaske (4, 23, 43),</claim-text>
<claim-text>Mittel zum Berechnen der Zeigerwerte e<sup>iϕ(x,y)</sup> der Phasenmaske (4, 23, 43) und des Phasenverschiebungswertes θ gemäß der Gleichung<maths id="math0125" num=""><math display="block"><mrow><mtext mathvariant="italic">I</mtext><mtext>(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><mtext>')=|</mtext><msup><mrow><mtext mathvariant="italic">e</mtext></mrow><mrow><mtext mathvariant="italic">i</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>ϕ(</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">x</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>',</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">y</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>')</mtext></mrow></msup><mtext> + (</mtext><msup><mrow><mtext mathvariant="italic">e</mtext></mrow><mrow><mtext>iϕ(</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">x</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>',</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext mathvariant="italic">y</mtext></mrow></msup><msup><mrow><mtext>​</mtext></mrow><mrow><mtext>')</mtext></mrow></msup><msup><mrow><mtext> - 1)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup></mrow></math><img id="ib0133" file="imgb0133.tif" wi="62" he="6" img-content="math" img-format="tif"/></maths><!-- EPO <DP n="59"> --></claim-text>
<claim-text>Mittel zum Auswählen von einem von zwei Zeigerwerten, die eine bestimmte Graustufe darstellen, für jedes Auflösungselement, und</claim-text> wobei die Schnittstellenmittel Mittel zum Speisen der Elemente (x, y) der Phasenmaske (4, 23, 43) mit den berechneten Zeigerwerten e<sup>iϕ(x,y)</sup> aufweist.</claim-text></claim>
<claim id="c-de-01-0032" num="0032">
<claim-text>Ein System (1) nach Anspruch 30, wobei die Intensität wenigstens eines Auflösungselements (x<sub>0</sub>', y<sub>0</sub>') des Intensitätsmusters Null ist, und wobei die Zeigerwerte e<sup>iϕ(x,y)</sup> der Phasenmaske (4, 23, 43) im Wesentlichen die Bedingungen<maths id="math0126" num=""><math display="block"><mrow><mtext>|</mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><mtext>| = </mtext><mfrac><mrow><mtext>1</mtext></mrow><mrow><mtext>2</mtext><mfenced open="|" close="|"><mrow><mtext>sin</mtext><mfrac><mrow><mtext>θ</mtext></mrow><mrow><mtext>2</mtext></mrow></mfrac></mrow></mfenced></mrow></mfrac></mrow></math><img id="ib0134" file="imgb0134.tif" wi="27" he="13" img-content="math" img-format="tif"/></maths> und<maths id="math0127" num=""><math display="block"><mrow><mtext mathvariant="italic">I</mtext><mtext>(</mtext><mtext mathvariant="italic">x</mtext><mtext>', </mtext><mtext mathvariant="italic">y</mtext><mtext>')=2[1_+sin(φ</mtext><mover accent="true"><mrow><msub><mrow><mtext>​</mtext></mrow><mrow><mtext>α</mtext></mrow></msub></mrow><mo>¯</mo></mover><mtext>-φ(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><mtext>')+</mtext><mfrac><mrow><mtext>θ</mtext></mrow><mrow><mtext>2</mtext></mrow></mfrac><mtext>)]</mtext></mrow></math><img id="ib0135" file="imgb0135.tif" wi="58" he="10" img-content="math" img-format="tif"/></maths> für ausgewählte Phasenverschiebungswerte θ erfüllen, wobei φ<maths id="math0128" num=""><math display="inline"><mrow><mover accent="true"><mrow><msub><mrow><mtext>​</mtext></mrow><mrow><mtext>α</mtext></mrow></msub></mrow><mo>¯</mo></mover></mrow></math><img id="ib0136" file="imgb0136.tif" wi="2" he="3" img-content="math" img-format="tif" inline="yes"/></maths> die Phase von <maths id="math0129" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0137" file="imgb0137.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> ist.</claim-text></claim>
<claim id="c-de-01-0033" num="0033">
<claim-text>Ein System (1) nach Anspruch 31, wobei die Mittel zur Berechnung der Zeitwerte derart eingerichtet sind, dass sie die Zeigerwerte e<sup>iϕ(x,y)</sup> der Phasenmaske (4, 23, 43) gemäß<maths id="math0130" num=""><math display="block"><mrow><mtext>|</mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><mtext>| = </mtext><mfrac><mrow><mtext>1</mtext></mrow><mrow><mtext>2</mtext><mfenced open="|" close="|"><mrow><mtext>sin</mtext><mfrac><mrow><mtext>θ</mtext></mrow><mrow><mtext>2</mtext></mrow></mfrac></mrow></mfenced></mrow></mfrac></mrow></math><img id="ib0138" file="imgb0138.tif" wi="27" he="13" img-content="math" img-format="tif"/></maths> und<!-- EPO <DP n="60"> --><maths id="math0131" num=""><math display="block"><mrow><mtext mathvariant="italic">I</mtext><mtext>(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><mtext>') = 2[1_+sin(φ</mtext><mover accent="true"><mrow><msub><mrow><mtext>​</mtext></mrow><mrow><mtext>α</mtext></mrow></msub></mrow><mo>¯</mo></mover><mtext>-φ(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><mtext>')+</mtext><mfrac><mrow><mtext>θ</mtext></mrow><mrow><mtext>2</mtext></mrow></mfrac><mtext>)]</mtext></mrow></math><img id="ib0139" file="imgb0139.tif" wi="60" he="10" img-content="math" img-format="tif"/></maths> für ausgewählte Phasenverschiebungswerte θ berechnen, wobei φ<maths id="math0132" num=""><math display="inline"><mrow><mover accent="true"><mrow><msub><mrow><mtext>​</mtext></mrow><mrow><mtext>α</mtext></mrow></msub></mrow><mo>¯</mo></mover></mrow></math><img id="ib0140" file="imgb0140.tif" wi="2" he="3" img-content="math" img-format="tif" inline="yes"/></maths> die Phase von <maths id="math0133" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0141" file="imgb0141.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> ist.</claim-text></claim>
<claim id="c-de-01-0034" num="0034">
<claim-text>Ein System (1) nach Anspruch 32, wobei die Phasenverschiebung θ im Wesentlichen gleich π und im Wesentlichen gleich ½ ist, und die Phasen ϕ(x, y) im Wesentlichen die Bedingungen<maths id="math0134" num=""><math display="block"><mrow><mtext mathvariant="italic">I</mtext><mtext>(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><mtext>') = 2[1-cos(φ(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><mtext>'))]</mtext></mrow></math><img id="ib0142" file="imgb0142.tif" wi="47" he="5" img-content="math" img-format="tif"/></maths> und<maths id="math0135" num=""><img id="ib0143" file="imgb0143.tif" wi="52" he="14" img-content="math" img-format="tif"/></maths> erfüllen.</claim-text></claim>
<claim id="c-de-01-0035" num="0035">
<claim-text>Ein System (1) nach Anspruch 33, wobei die Mittel zur Berechnung der Zeigerwerte so eingerichtet sind, dass sie die Zeigerwerte e<sup>iϕ(x,y)</sup> der Phasenmaske (4, 23, 43) gemäß<maths id="math0136" num=""><math display="block"><mrow><mtext mathvariant="italic">I</mtext><mtext>(</mtext><mtext mathvariant="italic">x',y'</mtext><mtext>) = 2[1-cos(φ(</mtext><mtext mathvariant="italic">x</mtext><mtext>',</mtext><mtext mathvariant="italic">y</mtext><mtext>'))]</mtext></mrow></math><img id="ib0144" file="imgb0144.tif" wi="47" he="5" img-content="math" img-format="tif"/></maths> und<maths id="math0137" num=""><img id="ib0145" file="imgb0145.tif" wi="51" he="17" img-content="math" img-format="tif"/></maths> berechnen.<!-- EPO <DP n="61"> --></claim-text></claim>
<claim id="c-de-01-0036" num="0036">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 35, das weiterhin aufweist.
<claim-text>Mittel zur Übertragung des Bereichs der räumlichen Frequenzen, die einen DC-Anteil aufweisen, zu einem zweiten Teil der Fourier- oder Fresnelebene, wobei</claim-text>
<claim-text>das Phasenfilter (6, 27, 45) bei dem zweiten Teil der Fourier- oder Fresnelebene angeordnet ist, um die transformierte modulierte elektromagnetische Strahlung nach dem zweiten Teil der Fourier- oder Fresnelebene um θ in Bezug auf den verbleibenden Teil der elektromagnetischen Strahlung zu verschieben.</claim-text></claim-text></claim>
<claim id="c-de-01-0037" num="0037">
<claim-text>Ein System (1) nach Anspruch 36, bei dem die Mittel zum Übertragen des Bereichs der räumlichen Frequenzen, die einen DC-Anteil aufweisen, zu einem zweiten Teil der Fourier- oder Fresnelebene eine optische Komponente aufweisen, wie beispielsweise ein Gitter, ein Prisma etc., mit einer geeigneten Trägerfrequenz.</claim-text></claim>
<claim id="c-de-01-0038" num="0038">
<claim-text>Ein System (1) nach Anspruch 36, bei dem die Mittel zum Übertragen des Bereichs der räumlichen Frequenzen, die einen DC-Anteil aufweisen, zu einem zweiten Teil der Fourier- oder Fresnelebene die Phasenmaske (4, 23, 43) umfassen, in die die Punktion einer optischen Komponente, wie beispielsweise ein Gitter, ein Prisma etc., mit einer geeigneten Trägerfrequenz encodiert worden ist.</claim-text></claim>
<claim id="c-de-01-0039" num="0039">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 38, bei dem der Modul der Fouriertransformation der Zeiger e<sup>iϕ(x,y)</sup> bei spezifischen räumlichen Frequenzen so eingestellt ist, dass die Intensitätsstufen der zusammengesetzten Intensitätsmuster innerhalb eines gewünschten Bereichs liegen.<!-- EPO <DP n="62"> --></claim-text></claim>
<claim id="c-de-01-0040" num="0040">
<claim-text>Ein System (1) nach Anspruch 39, bei dem der Modul der Fouriertransformation der Zeiger e<sup>iϕ(x,y)</sup> bei spezifischen räumlichen Frequenzen gemäß wenigstens einer der folgenden Maßnahmen eingestellt ist:
<claim-text>a) Einstellen der einzelnen Zeiger e<sup>iϕ(x,y)</sup> der Auflösungselemente der Phasenmaske (4, 23, 43), wobei vorgeschriebene relative Intensitätsstufen zwischen den Intensitäten der Auflösungselemente des Intensitätsmusters eingehalten werden,</claim-text>
<claim-text>b) Einstellen der einzelnen Zeiger e<sup>iϕ(x,y)</sup> der Auflösungselemente der Phasenmaske (4, 23, 43) durch Histogrammtechniken,</claim-text>
<claim-text>c) räumliche Skalierung der Muster der Zeiger e<sup>iϕ(x,y)</sup> der Phasenmaske (4, 23, 43), und</claim-text>
<claim-text>d) Verwendung von Grautoncodierungstechniken.</claim-text></claim-text></claim>
<claim id="c-de-01-0041" num="0041">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 40, das weiterhin Mittel zur Steuerung der Leistung der elektromagnetischen Strahlung in Abhängigkeit des Intensitätsbereichs des Intensitätsmusters aufweist.</claim-text></claim>
<claim id="c-de-01-0042" num="0042">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 41, bei dem jeder Zeiger e<sup>iϕ(x,y)</sup> der Phasenmaske (4, 23, 43) im Wesentlichen gleich einem ausgewählten Zeiger ist, der aus einer Menge von zwei Zeigern mit komplementären, Phasenwerten e<sup>iϕ1(x,y)</sup> und e<sup>iϕ2(x,y)</sup> in der Weise ausgewählt worden ist, dass eine spezifische Verteilung der räumlichen Frequenzen der Intensität der elektromagnetischen Strahlung in der Fourieroder Fresnelebene erreicht wird.<!-- EPO <DP n="63"> --></claim-text></claim>
<claim id="c-de-01-0043" num="0043">
<claim-text>Ein System (1) nach Anspruch 42, bei dem die Phase ϕ(x,y) der Zeiger e<sup>iϕ(x,y)</sup> von benachbarten Auflösungselementen zwischen den zwei möglichen komplementären Zeigerwerten e<sup>iϕ1(x,y)</sup> und e<sup>iϕ2(x,y)</sup> wechselt.</claim-text></claim>
<claim id="c-de-01-0044" num="0044">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 43, bei dem der Phasenfilter (6, 27, 45) so gestaltet ist, dass er mit dem räumlichen Frequenzinhalt der Zeiger e<sup>iϕ(x,y)</sup> der räumlichen Phasenmaske (4, 23, 43) übereinstimmt.</claim-text></claim>
<claim id="c-de-01-0045" num="0045">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 44, bei dem der Modul des Mittelwerts |<maths id="math0138" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0146" file="imgb0146.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| der Zeiger e<sup>iϕ(x,y)</sup> sich in einem Bereich zwischen 0,1 und 0,9 befindet.</claim-text></claim>
<claim id="c-de-01-0046" num="0046">
<claim-text>Ein System (1) nach Anspruch 45, bei dem der Modul des Mittelwerts |<maths id="math0139" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0147" file="imgb0147.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| der Zeiger e<sup>iϕ(x,y)</sup> sich in einem Bereich zwischen 0,25 und 0,75 befindet.</claim-text></claim>
<claim id="c-de-01-0047" num="0047">
<claim-text>Ein System (1) nach Anspruch 45 oder 46, bei dem der Modul des Mittelwerts |<maths id="math0140" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0148" file="imgb0148.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| der Zeiger e<sup>iϕ(x,y)</sup> sich in einem Bereich zwischen 0,4 und 0,6 befindet.</claim-text></claim>
<claim id="c-de-01-0048" num="0048">
<claim-text>Ein System (1) nach einem der Ansprüche 45 bis 47, bei dem der Modul des Mittelwerts |<maths id="math0141" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0149" file="imgb0149.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| der Zeiger e<sup>iϕ(x,y)</sup> ungefähr 0,5 ist.</claim-text></claim>
<claim id="c-de-01-0049" num="0049">
<claim-text>Ein System (1) nach einem der Ansprüche 45 bis 48, bei dem die Phasenverschiebung θ sich in einem Bereich zwischen π/4 und 7π/4 befindet.<!-- EPO <DP n="64"> --></claim-text></claim>
<claim id="c-de-01-0050" num="0050">
<claim-text>Ein System (1) nach einem der Ansprüche 45 bis 49, bei dem die Phasenverschiebung θ sich in einem Bereich zwischen π/2 und 3π/2 befindet.</claim-text></claim>
<claim id="c-de-01-0051" num="0051">
<claim-text>Ein System (1) nach einem der Ansprüche 45 bis 50, bei dem die Phasenverschiebung θ sich in einem Bereich zwischen 3π/4 und 5π/4 betindet.</claim-text></claim>
<claim id="c-de-01-0052" num="0052">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 51, bei dem die Phasenverschiebung θ ungefähr π ist.</claim-text></claim>
<claim id="c-de-01-0053" num="0053">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 52, das weiterhin Mittel (10, 30, 47) zum Zoomen aufweist, um das Intensitätsmuster zu skalieren.</claim-text></claim>
<claim id="c-de-01-0054" num="0054">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 53, bei dem das Phasenfilter (6, 27, 45) einen räumlichen Lichtmodulator umfasst.</claim-text></claim>
<claim id="c-de-01-0055" num="0055">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 54, bei dem die Phasenmaske (4, 23, 43) so eingerichtet ist, dass sie die optische Funktion einer Fouriertransformationslinse durch geeignete Encodierung der Zeiger e<sup>iϕ(x,y)</sup> der Phasenmaske (4, 23, 43) ausführt.</claim-text></claim>
<claim id="c-de-01-0056" num="0056">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 55, bei dem das räumliche Phasenfilter (6, 27, 45) so eingerichtet ist, dass es die optische Funktion einer Austrittslinse durch geeignete Encodierung des Phasenfilters (6, 27, 45) ausführt.</claim-text></claim>
<claim id="c-de-01-0057" num="0057">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 56, bei dem die Quelle (2, 21, 41) der elektromagnetischen Strahlung zur Erzeugung von Intensitätsmustern beliebiger Farben so eingerichtet ist, dass sie elektromagnetische Strahlung verschiedener<!-- EPO <DP n="65"> --> Wellenlängen ausstrahlt, die drei verschiedenen Farben, wie beispielsweise Rot, Grün und Blau, entsprechen.</claim-text></claim>
<claim id="c-de-01-0058" num="0058">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 57, das weiterhin eine erste und eine zweite Fouriertransformationslinse (5, 7) aufweist, wobei die räumliche Phasenmaske (4, 23, 43) in der vorderen Fokusebene der ersten Linse (5), das räumliche Phasenfilter (6, 27, 45) in der hinteren Fokusebene der ersten Linse (5), und die zweite Linse (7) so angeordnet ist, dass ihre vordere Fokusebene an dem Ort der hinteren Fokusebene der ersten Linse (5) angeordnet ist.</claim-text></claim>
<claim id="c-de-01-0059" num="0059">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 58, das weiterhin eine Fouriertransformationslinse (44) aufweist, wobei das räumliche Phasenfilter (45) in der hinteren Fokusebene der Linse (44) angeordnet ist.</claim-text></claim>
<claim id="c-de-01-0060" num="0060">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 59, das weiterhin eine Abbildungslinse aufweist, wobei das räumliche Phasenfilter (6, 27, 45) in der hinteren Fokusebene der Linse angeordnet ist.</claim-text></claim>
<claim id="c-de-01-0061" num="0061">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 60, das weiterhin einen polarisierenden Strahlteiler (24) und eine Viertelwellenplatte (25) und/oder ein Phasenfilter (27) aufweist, das auf es treffende elektromagnetische Strahlung reflektiert.</claim-text></claim>
<claim id="c-de-01-0062" num="0062">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 61, bei dem das räumliche Phasenfilter (6, 27, 45) die Phase der Strahlung in dem Bereich der räumlichen Frequenzen, die einen DC-Anteil aufweisen, verändert und die Phase in dem verbleibenden Teil der Strahlung unverändert lässt.<!-- EPO <DP n="66"> --></claim-text></claim>
<claim id="c-de-01-0063" num="0063">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 61, bei dem das räumliche Phasenfilter (6, 27, 45) die Phase der Strahlung in dem Bereich von räumlichen Frequenzen, die einen DC-Anteil aufweisen, nicht verändert und die Phase in dem verbleibenden Teil der Strahlung verändert.</claim-text></claim>
<claim id="c-de-01-0064" num="0064">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 61, bei dem das räumliche Phasenfilter (6, 27, 45) die Strahlung bei dem Bereich von räumlichen Frequenzen, die einen DC-Anteil aufweisen, abblockt und den verbleibenden Teil der Strahlung unverändert belässt.</claim-text></claim>
<claim id="c-de-01-0065" num="0065">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 64, bei dem die Quelle (2, 21, 41) der elektromagnetischen Strahlung ein Laser (2, 21, 41) ist.</claim-text></claim>
<claim id="c-de-01-0066" num="0066">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 65, bei dem unter der Bedingung, dass θ = π, die Phasenmaske (4, 23, 43) nicht in eine Matrix von Reihen und Spalten von Auflösungselementen der gleichen Größe und Gestalt aufgeteilt wird, jedes vierte Auflösungselement den Zeigerwert e<sup>iπ</sup> aufweist und periodisch und gleichförmig über die Fläche der Phasenmaske derart verteilt ist, dass jede zweite Reihe und jede zweite Spalte nicht ein Auflösungselement mit dem Zeigerwert e<sup>iπ</sup> enthält, wobei die übrigen Auflösungselemente den Zeigerwert e<sup>i0</sup> aufweisen.</claim-text></claim>
<claim id="c-de-01-0067" num="0067">
<claim-text>Ein System (1) nach einem der Ansprüche 30 bis 65, bei dem unter der Voraussetzung, dass θ = π/2, die Phasenmaske (4, 23, 43) nicht in eine Matrix von Reihen und Spalten der gleichen Größe und Gestalt unterteilt ist, wobei jede zweite Reihe oder Spalte den Zeigerwert e<sup>iπ/2</sup> aufweist und sich mit<!-- EPO <DP n="67"> --> en übrigen Reihen oder Spalten abwechseln, die den Zeigerwert e<sup>i0</sup> aufweisen.</claim-text></claim>
</claims><!-- EPO <DP n="68"> -->
<claims id="claims03" lang="fr">
<claim id="c-fr-01-0001" num="0001">
<claim-text>Méthode d'imagerie à contraste de phase pour la synthèse d'une figure d'intensité I(x',y') d'une image, comprenant les étapes consistant à :
<claim-text>pixéliser la figure d'intensité I(x',y') suivant la disposition d'éléments de résolution (x,y) d'un masque de phase spatial (4, 23, 43) disposant</claim-text>
<claim-text>d'une pluralité d'éléments de résolution individuels (x,y), chaque élément de résolution (x,y) modulant la phase d'une radiation électromagnétique incidente avec une valeur prédéterminée de phaseur e<sup>iϕ(x,y)</sup> ;</claim-text>
<claim-text>émettre une radiation électromagnétique vers le masque de phase spatial (4, 23, 43) ;</claim-text>
<claim-text>appliquer une transformation de Fourier ou de Fresnel à la radiation électromagnétique modulée ;</claim-text>
<claim-text>déphaser, dans une région de fréquences spatiales comprenant DC dans le plan de Fourier ou de Fresnel, la radiation électromagnétique modulée d'une valeur de déphasage prédéterminée θ par rapport à la partie restante de la radiation électromagnétique, et</claim-text>
<claim-text>former la figure d'intensité par transformation de Fourier ou de Fresnel, respectivement, la radiation électromagnétique modulée déphasée par transformation de Fourier ou de Fresnel, moyennant quoi, chaque élément de résolution (x,y) du masque de phase (4, 23, 43) est imagé sur un élément de résolution correspondant (x',y') de l'image ;<!-- EPO <DP n="69"> --></claim-text>
<claim-text>calculer les valeurs de phaseur e<sup>iϕ(x,y)</sup> du masque de phase (4, 23, 43) ainsi que la valeur de déphasage θ conformément à<maths id="math0142" num=""><math display="block"><mrow><msup><mrow><mtext>I(x',y') = |e</mtext></mrow><mrow><mtext>iϕ(x',y')</mtext></mrow></msup><mtext> + </mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><msup><mrow><mtext> (e</mtext></mrow><mrow><mtext>iθ</mtext></mrow></msup><msup><mrow><mtext> - 1)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup></mrow></math><img id="ib0150" file="imgb0150.tif" wi="59" he="6" img-content="math" img-format="tif"/></maths></claim-text>
<claim-text>pour des valeurs de déphasage sélectionnées θ, <maths id="math0143" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0151" file="imgb0151.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> étant la moyenne des phaseurs e<sup>iϕ(x,y)</sup> des éléments de résolution du masque de phase (4, 23, 43) ;</claim-text>
<claim-text>sélectionner, pour chaque élément de résolution, une ou deux valeurs de phaseur, qui représentent un niveau de gris particulier ; et</claim-text>
<claim-text>appliquer les valeurs sélectionnées de phaseur e<sup>iϕ(x,y)</sup> aux éléments de résolution (x,y) du masque de phase spatial (4, 23, 43).</claim-text></claim-text></claim>
<claim id="c-fr-01-0002" num="0002">
<claim-text>Méthode selon la revendication 1, dans laquelle l'étape consistant à calculer les valeurs de phaseur comprend les étapes consistant à :
<claim-text>fixer l'intensité synthétisée, d'au moins un élément de résolution (x<sub>0</sub>',y<sub>0</sub>') de la figure d'intensité, à zéro ; et</claim-text>
<claim-text>calculer les valeurs de phaseur e<sup>iϕ(x,y)</sup> du masque de phase (4, 23, 43) conformément à<maths id="math0144" num=""><math display="block"><mrow><mtext>|</mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><mtext>| = 1/[2|sin θ/2|]</mtext></mrow></math><img id="ib0152" file="imgb0152.tif" wi="33" he="5" img-content="math" img-format="tif"/></maths>    et<maths id="math0145" num=""><img id="ib0153" file="imgb0153.tif" wi="72" he="8" img-content="math" img-format="tif"/></maths></claim-text>
<claim-text>pour des valeurs de déphasage sélectionnées θ, Φ<maths id="math0146" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0154" file="imgb0154.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> étant la phase de <maths id="math0147" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0155" file="imgb0155.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>.</claim-text></claim-text></claim>
<claim id="c-fr-01-0003" num="0003">
<claim-text>Méthode selon la revendication 2, comprenant en outre l'étape consistant à sélectionner le déphasage θ=π, à sélectionner |<img id="ib0156" file="imgb0156.tif" wi="2" he="4" img-content="character" img-format="tif" inline="yes"/>|1=1/2 et à calculer les valeurs de phaseur e<sup>iϕ(x',y)</sup> du masque de phase (4, 23, 43) conformément à<maths id="math0148" num=""><math display="block"><mrow><mtext>I(x',y') = 2[1 - cos(Φ(x',y'))]</mtext></mrow></math><img id="ib0157" file="imgb0157.tif" wi="51" he="5" img-content="math" img-format="tif"/></maths>    et<maths id="math0149" num=""><img id="ib0158" file="imgb0158.tif" wi="57" he="14" img-content="math" img-format="tif"/></maths></claim-text></claim>
<claim id="c-fr-01-0004" num="0004">
<claim-text>Méthode selon l'une quelconque des revendications précédentes, comprenant en outre les étapes consistant à déplacer la partie DC de la radiation électromagnétique vers une seconde partie du plan de Fourier ou de Fresnel, et<!-- EPO <DP n="70"> -->
<claim-text>à déphaser de θ la radiation électromagnétique modulée par transformation de Fourier ou de Fresnel au niveau de la seconde partie du plan de Fourier ou de Fresnel par rapport à la partie restante de la radiation électromagnétique.</claim-text></claim-text></claim>
<claim id="c-fr-01-0005" num="0005">
<claim-text>Méthode selon la revendication 4, dans laquelle l'étape consistant à déplacer la partie DC de la radiation électromagnétique comprend l'utilisation d'un composant optique, tel qu'un réseau, un prisme, etc., avec une fréquence de porteuse appropriée.</claim-text></claim>
<claim id="c-fr-01-0006" num="0006">
<claim-text>Méthode selon la revendication 4, dans laquelle l'étape consistant à déplacer la partie DC de la radiation électromagnétique comprend le codage de la fonction d'un composant optique, tel qu'un réseau, un prisme, etc., avec une fréquence de porteuse appropriée, dans le masque de phase spatial (4, 23, 43).</claim-text></claim>
<claim id="c-fr-01-0007" num="0007">
<claim-text>Méthode selon l'une quelconque des revendications précédentes, comprenant en outre l'étape consistant à ajuster le module de la transformation de Fourier des phaseurs e<sup>iϕ(x,y)</sup> à des fréquences spatiales spécifiques de façon à contrôler la plage de niveaux d'intensité de la figure d'intensité synthétisée.</claim-text></claim>
<claim id="c-fr-01-0008" num="0008">
<claim-text>Méthode selon la revendication 7, dans laquelle l'étape consistant à ajuster le module de la transformation de Fourier des phaseurs e<sup>iϕ(x,y)</sup> à des fréquences spatiales spécifiques comprend au moins une des mesures suivantes :
<claim-text>a) ajuster les phaseurs individuels e<sup>iϕ(x,y)</sup> des éléments de résolution du masque de phase (4, 23, 43) en maintenant les niveaux d'intensité relative prescrits entre les intensités des éléments de résolution de la figure d'intensité ;</claim-text>
<claim-text>b) ajuster les phaseurs individuels e<sup>iϕ(x,y)</sup> des éléments de résolution du masque de phase (4, 23, 43) par des techniques d'histogramme ;</claim-text>
<claim-text>c) mettre à l'échelle, dans l'espace, la figure de phaseur e<sup>iϕ(x,y)</sup> du masque de phase (4, 23, 43) ; et</claim-text>
<claim-text>d) utiliser des techniques de codage en demi-ton.</claim-text></claim-text></claim>
<claim id="c-fr-01-0009" num="0009">
<claim-text>Méthode selon l'une quelconque des revendications précédentes comprenant en outre l'étape consistant à contrôler la puissance de la radiation électromagnétique en réponse à la plage d'intensité de la figure d'intensité.<!-- EPO <DP n="71"> --></claim-text></claim>
<claim id="c-fr-01-0010" num="0010">
<claim-text>Méthode selon l'une quelconque des revendications précédentes, dans laquelle chaque phaseur e<sup>iϕ(x,y)</sup> du masque de phase (4, 23, 43) est sélectionné à partir d'un jeu de deux phaseurs déterminés aux valeurs de phaseur complémentaires e<sup>iϕ1(x,y)</sup> et e<sup>iϕ2(x,y)</sup>, de telle manière qu'une distribution de fréquence spatiale spécifique de l'intensité de la radiation électromagnétique dans le plan de Fourier ou de Fresnel soit atteinte.</claim-text></claim>
<claim id="c-fr-01-0011" num="0011">
<claim-text>Méthode selon la revendication 10, dans laquelle la phase ϕ(x,y) de phaseurs e<sup>iϕ(x,y)</sup> d'éléments de résolution adjacents alterne entre les deux valeurs complémentaires de phaseur e<sup>iϕ1(x,y)</sup> et e<sup>iϕ2(x,y)</sup>.</claim-text></claim>
<claim id="c-fr-01-0012" num="0012">
<claim-text>Méthode selon les revendications 10 ou 11, dans laquelle les phaseurs e<sup>iϕ1(x,y)</sup> et e<sup>iϕ2(x,y)</sup> sont des complexes conjugués.</claim-text></claim>
<claim id="c-fr-01-0013" num="0013">
<claim-text>Méthode selon l'une quelconque des revendications précédentes, comprenant en outre l'étape consistant à déphaser, à des fréquences spatiales sélectionnées constituant une région qui est formée pour correspondre au contenu dé fréquence spatiale des phaseurs e<sup>iϕ(x,y)</sup> du masque de phase spatial (4, 23, 43).</claim-text></claim>
<claim id="c-fr-01-0014" num="0014">
<claim-text>Méthode selon l'une quelconque des revendications précédentes, dans laquelle le module de la valeur moyenne |<maths id="math0150" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0159" file="imgb0159.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| des phaseurs e<sup>iϕ(x,y)</sup> est compris entre 0,1 et 0,9.</claim-text></claim>
<claim id="c-fr-01-0015" num="0015">
<claim-text>Méthode selon la revendication 14, dans laquelle le module de la valeur moyenne |<maths id="math0151" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0160" file="imgb0160.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| des phaseurs e<sup>iϕ(x,y)</sup> est compris entre 0,25 et 0,75.</claim-text></claim>
<claim id="c-fr-01-0016" num="0016">
<claim-text>Méthode selon les revendications 14 ou 15, dans laquelle le module de la valeur moyenne |<maths id="math0152" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0161" file="imgb0161.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| des phaseurs e<sup>iϕ(x,y)</sup> est compris entre 0,4 et 0,6.</claim-text></claim>
<claim id="c-fr-01-0017" num="0017">
<claim-text>Méthode selon l'une quelconque des revendications 14 à 16, dans laquelle le module de la valeur moyenne |<maths id="math0153" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0162" file="imgb0162.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| des phaseurs e<sup>iϕ(x,y)</sup> est environ égal à 0,5.</claim-text></claim>
<claim id="c-fr-01-0018" num="0018">
<claim-text>Méthode selon l'une quelconque des revendications précédentes dans laquelle le déphasage θ est compris entre Π/4 et 7Π/4.</claim-text></claim>
<claim id="c-fr-01-0019" num="0019">
<claim-text>Méthode selon l'une quelconque des revendications précédentes dans laquelle le déphasage θ est compris entre Π/2 et 3Π/2.<!-- EPO <DP n="72"> --></claim-text></claim>
<claim id="c-fr-01-0020" num="0020">
<claim-text>Méthode selon l'une quelconque des revendications précédentes dans laquelle le déphasage θ est compris entre 3Π/4 et 5Π/4.</claim-text></claim>
<claim id="c-fr-01-0021" num="0021">
<claim-text>Méthode selon l'une quelconque des revendications précédentes dans laquelle le déphasage θ est environ égal à Π.</claim-text></claim>
<claim id="c-fr-01-0022" num="0022">
<claim-text>Méthode selon l'une quelconque des revendications précédentes, comprenant en outre l'étape consistant à agrandir l'image pour mettre à l'échelle la figure d'intensité.</claim-text></claim>
<claim id="c-fr-01-0023" num="0023">
<claim-text>Méthode selon la revendication 22, dans laquelle l'agrandissement de l'image est contrôlable dynamiquement.</claim-text></claim>
<claim id="c-fr-01-0024" num="0024">
<claim-text>Méthode selon les revendications 22 ou 23, dans laquelle l'agrandissement de l'image est contrôlable relativement à la mise à l'échelle du masque de phase (4, 23, 43).</claim-text></claim>
<claim id="c-fr-01-0025" num="0025">
<claim-text>Méthode selon l'une quelconque des revendications 22 à 24, comprenant en outre l'étape consistant à contrôler la puissance de la radiation électromagnétique en réponse à la mise à l'échelle spatiale de la figure d'intensité dans le masque de phase (4, 23, 43) et/ou à l'agrandissement de l'image.</claim-text></claim>
<claim id="c-fr-01-0026" num="0026">
<claim-text>Méthode selon l'une quelconque des revendications précédentes, dans laquelle l'étape de déphasage comprend l'utilisation d'un modulateur spatial de lumière.</claim-text></claim>
<claim id="c-fr-01-0027" num="0027">
<claim-text>Méthode selon l'une quelconque des revendications précédentes, comprenant en outre l'étape consistant à coder la fonction optique d'une lentille de transformation de Fourier en les phaseurs e<sup>iϕ(x,y)</sup> du masque de phase (4, 23, 43).</claim-text></claim>
<claim id="c-fr-01-0028" num="0028">
<claim-text>Méthode selon l'une quelconque des revendications précédentes, comprenant en outre l'étape consistant à coder la fonction optique d'une lentille de sortie en le filtre de phase (6, 27, 45).</claim-text></claim>
<claim id="c-fr-01-0029" num="0029">
<claim-text>Méthode selon l'une quelconque des revendications précédentes, dans laquelle l'étape d'émission d'une radiation électromagnétique comprend l'émission d'une radiation électromagnétique de différentes longueurs d'onde correspondant à trois couleurs différentes, telles que rouge, vert et bleu, pour la génération de figures d'intensité de couleurs arbitraires.<!-- EPO <DP n="73"> --></claim-text></claim>
<claim id="c-fr-01-0030" num="0030">
<claim-text>Système d'imagerie à contraste de phase (1) pour synthétiser une figure d'intensité I(x',y') d'une image comprenant :
<claim-text>une source (2, 21, 41) de radiation électromagnétique pour l'émission d'une radiation électromagnétique ;</claim-text>
<claim-text>un masque de phase spatial (4, 23, 43) pour la modulation de phase d'une radiation électromagnétique et possédant :
<claim-text>une pluralité d'éléments de résolution individuels (x,y), chaque élément de résolution (x,y) modulant la phase d'une radiation électromagnétique incidente avec une valeur de phaseur prédéterminée e<sup>iϕ(x,y)</sup>, chaque élément de résolution (x,y) étant individuellement adressable et adapté pour recevoir un signal contrôlant la valeur de phaseur e<sup>iϕ(x,y)</sup> prédéterminée, et chaque élément de résolution (x,y) étant positionné sur un axe de propagation de la radiation électromagnétique.</claim-text>
<claim-text>un dispositif (5, 26, 44) pour appliquer une transformation de Fourier ou de Fresnel à la radiation électromagnétique à phase modulée positionnée sur un axe de propagation de la radiation à phase modulée ;</claim-text>
<claim-text>un filtre de phase spatial (6, 27, 45) pour déphaser, dans une région de fréquences spatiales comprenant DC dans le plan de Fourier ou de Fresnel, la radiation électromagnétique transformée d'une valeur de déphasage prédéterminée θ relativement à la partie restante de la radiation électromagnétique transformée ;</claim-text>
<claim-text>un dispositif (7, 10, 26, 30, 44, 47) pour former la figure d'intensité par transformation de Fourier ou de Fresnel, respectivement, la radiation électromagnétique modulée déphasée par transformation de Fourier ou de Fresnel, moyennant quoi, chaque élément de résolution (x,y) du masque de phase (4, 23, 43) est imagé sur un élément de résolution correspondant (x',y') de l'image ;</claim-text>
<claim-text>un dispositif d'interface pour adresser chacun des éléments de résolution (x,y) du masque de phase (4, 23, 43) et pour transmettre des signaux contrôlant la valeur de phaseur e<sup>iϕ(x,y)</sup> de chaque élément de résolution adressé, lesdites valeurs de phaseur e<sup>iϕ(x,y)</sup> satisfaisant à l'équation<maths id="math0154" num=""><math display="block"><mrow><msup><mrow><mtext>I(x',y') = |e</mtext></mrow><mrow><mtext>iϕ(x',y')</mtext></mrow></msup><mtext> + </mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><msup><mrow><mtext> (e</mtext></mrow><mrow><mtext>iθ</mtext></mrow></msup><msup><mrow><mtext> - 1)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup></mrow></math><img id="ib0163" file="imgb0163.tif" wi="59" he="6" img-content="math" img-format="tif"/></maths><!-- EPO <DP n="74"> --></claim-text>
<claim-text>pour des valeurs de déphasage prédéterminées θ. <maths id="math0155" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0164" file="imgb0164.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> étant la moyenne des phaseurs e<sup>iϕ(x,y)</sup> des éléments de résolution du masque de phase (4, 23, 43).</claim-text></claim-text></claim-text></claim>
<claim id="c-fr-01-0031" num="0031">
<claim-text>Système (1) selon la revendication 30, comprenant en outre :
<claim-text>un dispositif pour la pixélisation de la figure d'intensité I(x',y') suivant les éléments (x,y) du masque de phase spatial (4, 23, 43) ;</claim-text>
<claim-text>un dispositif pour calculer les valeurs de phaseur e<sup>iϕ(x,y)</sup> du masque de phase (4, 23, 43) ainsi que la valeur de déphasage θ conformément à l'équation<maths id="math0156" num=""><math display="block"><mrow><msup><mrow><mtext>I(x',y') = |e</mtext></mrow><mrow><mtext>iϕ(x',y')</mtext></mrow></msup><mtext> + </mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><msup><mrow><mtext>(e</mtext></mrow><mrow><mtext>iθ</mtext></mrow></msup><msup><mrow><mtext> - 1)|</mtext></mrow><mrow><mtext>2</mtext></mrow></msup><mtext> ;</mtext></mrow></math><img id="ib0165" file="imgb0165.tif" wi="60" he="6" img-content="math" img-format="tif"/></maths></claim-text>
<claim-text>un dispositif pour sélectionner, pour chaque élément de résolution, une ou deux valeurs de phaseur qui représentent un niveau de gris particulier ; et</claim-text>
<claim-text>dans lequel le dispositif d'interface comprend un dispositif pour appliquer les valeurs calculées de phaseur e<sup>iϕ(x,y)</sup> aux éléments (x,y) du masque de phase (4, 23, 43).</claim-text></claim-text></claim>
<claim id="c-fr-01-0032" num="0032">
<claim-text>Système (1) selon la revendication 30, dans lequel l'intensité est égale à zéro pour au moins un élément de résolution (x<sub>0</sub>',y<sub>0</sub>') de la figure d'intensité, et dans lequel les valeurs de phaseur e<sup>iϕ(x,y)</sup> du masque de phase (4, 23, 43) satisfont aux équations<maths id="math0157" num=""><math display="block"><mrow><mtext>|</mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><mtext>| = 1/[2|sin θ/2|]</mtext></mrow></math><img id="ib0166" file="imgb0166.tif" wi="33" he="5" img-content="math" img-format="tif"/></maths>    et<maths id="math0158" num=""><math display="block"><mrow><mtext>I(x',y') = 2[1 + sin(Φ</mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><mtext> - Φ(x',y') + θ/2)]</mtext></mrow></math><img id="ib0167" file="imgb0167.tif" wi="74" he="5" img-content="math" img-format="tif"/></maths>    pour des valeurs de déphasage sélectionnées θ. Φ<maths id="math0159" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0168" file="imgb0168.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> étant la phase de <maths id="math0160" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0169" file="imgb0169.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>.</claim-text></claim>
<claim id="c-fr-01-0033" num="0033">
<claim-text>Système (1) selon la revendication 31, dans lequel le dispositif pour calculer les valeurs de phaseur est adapté pour calculer les valeurs de phaseur e<sup>iϕ(x,y)</sup> du masque de phase (4, 23, 43) en accord avec les équations<maths id="math0161" num=""><math display="block"><mrow><mtext>|</mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><mtext>| = 1/[2|sin θ/2|]</mtext></mrow></math><img id="ib0170" file="imgb0170.tif" wi="33" he="5" img-content="math" img-format="tif"/></maths>    et<maths id="math0162" num=""><math display="block"><mrow><mtext>I(x',y') = 2[1 + sin(Φ</mtext><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover><mtext> - Φ(x',y') + θ/2)]</mtext></mrow></math><img id="ib0171" file="imgb0171.tif" wi="74" he="5" img-content="math" img-format="tif"/></maths>    pour des valeurs de déphasage sélectionnées θ. Φ<maths id="math0163" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0172" file="imgb0172.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths> étant la phase de <maths id="math0164" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0173" file="imgb0173.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>.<!-- EPO <DP n="75"> --></claim-text></claim>
<claim id="c-fr-01-0034" num="0034">
<claim-text>Système (1) selon la revendication 32, dans lequel le déphasage θ est pratiquement égal à π, |<maths id="math0165" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0174" file="imgb0174.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>|1 égal à ½ et les phases ϕ(x,y) satisfont aux équations<maths id="math0166" num=""><math display="block"><mrow><mtext>I(x',y') = 2[1 - cos(Φ(x',y'))]</mtext></mrow></math><img id="ib0175" file="imgb0175.tif" wi="51" he="5" img-content="math" img-format="tif"/></maths>    et<maths id="math0167" num=""><img id="ib0176" file="imgb0176.tif" wi="46" he="12" img-content="math" img-format="tif"/></maths></claim-text></claim>
<claim id="c-fr-01-0035" num="0035">
<claim-text>Système (1) selon la revendication 33, dans lequel le dispositif pour calculer les valeurs de phaseur est adapté pour calculer les valeurs de phaseur e<sup>iϕ(x,y)</sup> du masque de phase (4, 23, 43) en accord avec les équations<maths id="math0168" num=""><math display="block"><mrow><mtext>I(x',y') = 2[1 - cos(Φ(x',y'))]</mtext></mrow></math><img id="ib0177" file="imgb0177.tif" wi="51" he="5" img-content="math" img-format="tif"/></maths>    et<maths id="math0169" num=""><img id="ib0178" file="imgb0178.tif" wi="44" he="13" img-content="math" img-format="tif"/></maths></claim-text></claim>
<claim id="c-fr-01-0036" num="0036">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 35, comprenant en outre<br/>
   un dispositif pour déplacer la région de fréquences spatiales comprenant DC vers une seconde partie du plan de Fourier ou de Fresnel, et dans lequel le filtre de phase (6, 27, 45) est positionné au niveau de la seconde partie du plan de Fourier ou de Fresnel pour déphaser la ràdiation électromagnétique modulée transformée au niveau de la seconde partie du plan de Fourier ou de Fresnel d'un angle θ relativement à la partie restante de la radiation électromagnétique.</claim-text></claim>
<claim id="c-fr-01-0037" num="0037">
<claim-text>Système (1) selon la revendication 36, dans lequel le dispositif pour déplacer la région de fréquences spatiales comprenant DC vers une seconde partie du plan de Fourier ou de Fresnel comprend un composant optique, tel qu'un réseau, un prisme, etc., avec une fréquence de porteuse appropriée.</claim-text></claim>
<claim id="c-fr-01-0038" num="0038">
<claim-text>Système (1) selon la revendication 36, dans lequel le dispositif pour déplacer la région de fréquences spatiales comprenant DC vers une seconde partie du plan de Fourier ou de Fresnel comprend le masque de phase (4, 23, 43) dans lequel la fonction d'un composant optique, tel qu'un réseau, un prisme, etc., avec une fréquence de porteuse appropriée, a été codée.<!-- EPO <DP n="76"> --></claim-text></claim>
<claim id="c-fr-01-0039" num="0039">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 38, dans lequel les modules de la transformation de Fourier des phaseurs e<sup>iϕ(x,y)</sup> à des fréquences spatiales spécifiques ont été ajustés de façon à maintenir les niveaux d'intensité de la figure d'intensité synthétisée dans un intervalle désiré.</claim-text></claim>
<claim id="c-fr-01-0040" num="0040">
<claim-text>Système (1) selon la revendication 39, dans lequel les modules de la transformation de Fourier des phaseurs e<sup>iϕ(x,y)</sup> à des fréquences spatiales spécifiques ont été ajustés suivant au moins une des mesures suivantes :
<claim-text>a) ajuster les phaseurs individuels e<sup>iϕ(x,y)</sup> des éléments de résolution du masque de phase (4, 23, 43) en maintenant les niveaux d'intensité relative prescrits entre les intensités des éléments de résolution de la figure d'intensité ;</claim-text>
<claim-text>b) ajuster les phaseurs individuels e<sup>iϕ(x,y)</sup> des éléments de résolution du masque de phase (4, 23, 43) par des techniques d'histogramme ;</claim-text>
<claim-text>c) mettre à l'échelle, dans l'espace, la figure de phaseur e<sup>iϕ(x,y)</sup> du masque de phase (4, 23, 43) ; et</claim-text>
<claim-text>d) utiliser des techniques de codage en demi-ton.</claim-text></claim-text></claim>
<claim id="c-fr-01-0041" num="0041">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 40, comprenant en outre un dispositif pour contrôler la puissance de la radiation électromagnétique en réponse à la plage d'intensité de la figure d'intensité.</claim-text></claim>
<claim id="c-fr-01-0042" num="0042">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 41, dans lequel chaque phaseur e<sup>iϕ(x,y)</sup> du masque de phase (4, 23, 43) est pratiquement égal à un phaseur sélectionné qui a été sélectionné à partir d'un jeu de deux phaseurs aux valeurs de phases complémentaires e<sup>iϕ1(x,y)</sup> et e<sup>iϕ2(x,y)</sup>, de telle manière qu'une distribution de fréquence spatiale spécifique de l'intensité de la radiation électromagnétique dans le plan de Fourier ou de Fresnel soit atteinte.</claim-text></claim>
<claim id="c-fr-01-0043" num="0043">
<claim-text>Système (1) selon la revendication 42, dans lequel la phase ϕ(x,y) des phaseurs e<sup>iϕ(x,y)</sup> d'éléments de résolution adjacents alterne entre les deux valeurs complémentaires de phaseur e<sup>iϕ1(x,y)</sup> et e<sup>iϕ2(x,y)</sup>.</claim-text></claim>
<claim id="c-fr-01-0044" num="0044">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 43, dans lequel le filtre de phase (6, 27, 45) est formé pour correspondre au contenu de fréquence spatiale des phaseurs e<sup>iϕ(x,y)</sup> du masque de phase spatial (4, 23, 43).<!-- EPO <DP n="77"> --></claim-text></claim>
<claim id="c-fr-01-0045" num="0045">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 44, dans lequel le module de la valeur moyenne |<maths id="math0170" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0179" file="imgb0179.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| des phaseurs e<sup>iϕ(</sup><sup><i>x,y</i></sup><sup>)</sup> est compris entre 0,1 et 0,9.</claim-text></claim>
<claim id="c-fr-01-0046" num="0046">
<claim-text>Système (1) selon la revendication 45, dans lequel le module de la valeur moyenne |<maths id="math0171" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0180" file="imgb0180.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| des phaseurs e<sup>iϕ(x,y)</sup> est compris entre 0,25 et 0,75.</claim-text></claim>
<claim id="c-fr-01-0047" num="0047">
<claim-text>Système (1) selon les revendications 45 ou 46, dans lequel le module de la valeur moyenne |<maths id="math0172" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0181" file="imgb0181.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| des phaseurs e<sup>iϕ(x,y)</sup> est compris entre 0,4 et 0,6.</claim-text></claim>
<claim id="c-fr-01-0048" num="0048">
<claim-text>Système (1) selon l'une quelconqué des revendications 45 à 47, dans lequel le module de la valeur moyenne |<maths id="math0173" num=""><math display="inline"><mrow><mover accent="true"><mrow><mtext>α</mtext></mrow><mo>¯</mo></mover></mrow></math><img id="ib0182" file="imgb0182.tif" wi="2" he="4" img-content="math" img-format="tif" inline="yes"/></maths>| des phaseurs e<sup>iϕ(x,y)</sup> est environ égal à 0,5.</claim-text></claim>
<claim id="c-fr-01-0049" num="0049">
<claim-text>Système (1) selon l'une quelconque des revendications 45 à 48, dans lequel le déphasage θ est compris entre Π/4 et 7Π/4.</claim-text></claim>
<claim id="c-fr-01-0050" num="0050">
<claim-text>Système (1) selon l'une quelconque des revendications 45 à 49, dans lequel le déphasage θ est compris entre Π/2 et 3Π/2.</claim-text></claim>
<claim id="c-fr-01-0051" num="0051">
<claim-text>Système (1) selon l'une quelconque des revendications 45 à 50, dans lequel le déphasage θ est compris entre 3Π/4 et 5Π/4.</claim-text></claim>
<claim id="c-fr-01-0052" num="0052">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 51, dans lequel le déphasage θ est environ égal à Π.</claim-text></claim>
<claim id="c-fr-01-0053" num="0053">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 52, comprenant en outre un dispositif d'agrandissement (10, 30, 47) pour mettre à l'échelle la figure d'intensité.</claim-text></claim>
<claim id="c-fr-01-0054" num="0054">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 53, dans lequel le filtre de phase (6, 27, 45) comprend un modulateur spatial de lumière.</claim-text></claim>
<claim id="c-fr-01-0055" num="0055">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 54, dans lequel le masque de phase (4, 23, 43) est adapté pour effectuer la fonction optique d'une lentille de transformation de Fourier par codage approprié des phaseurs e<sup>iϕ(x,y)</sup> du masque de phase (4, 23, 43).<!-- EPO <DP n="78"> --></claim-text></claim>
<claim id="c-fr-01-0056" num="0056">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 55, dans lequel le filtre de phase spatial (6, 27, 45) est adapté pour effectuer la fonction optique d'une lentille de sortie par codage approprié du filtre de phase (6, 27, 45).</claim-text></claim>
<claim id="c-fr-01-0057" num="0057">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 56, dans lequel la source de radiation électromagnétique (2, 21, 41) est adaptée pour émettre une radiation électromagnétique de différentes longueurs d'onde correspondant à trois couleurs différentes, telles que rouge, vert et bleu, pour la génération de figures d'intensité de couleurs arbitraires.</claim-text></claim>
<claim id="c-fr-01-0058" num="0058">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 57, comprenant en outre une première et une seconde lentilles de transformation de Fourier (5, 7), le masque de phase spatial (4, 23, 43) étant positionné dans le plan focal objet de la première lentille (5), le filtre de phase spatial (6, 27, 45) étant positionné dans le plan focal image de la première lentille (5), et la seconde lentille (7) étant positionnée de façon à ce que son plan focal objet soit positionné au niveau du plan focal image de la première lentille (5).</claim-text></claim>
<claim id="c-fr-01-0059" num="0059">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 58, comprenant en outre une lentille de transformation de Fourier (44), le filtre de phase spatial (45) étant positionné au niveau du plan focal image de la lentille (44).</claim-text></claim>
<claim id="c-fr-01-0060" num="0060">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 59, comprenant en outre une lentille d'imagerie, le filtre de phase spatial (6, 27, 45) étant positionné au niveau du plan focal image de la lentille.</claim-text></claim>
<claim id="c-fr-01-0061" num="0061">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 60, comprenant en outre une lame séparatrice de polarisation (24) et une lame quart d'onde (25) et/ou un filtre de phase (27) réfléchissant la radiation électromagnétique incidente sur celui-ci.</claim-text></claim>
<claim id="c-fr-01-0062" num="0062">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 61, dans lequel le filtre de phase spatial (6, 27, 45) modifie la phase de la radiation dans la région des fréquences spatiales comprenant DC et laisse inchangée la phase de la partie restante de la radiation.<!-- EPO <DP n="79"> --></claim-text></claim>
<claim id="c-fr-01-0063" num="0063">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 61, dans lequel le filtre de phase spatial (6, 27, 45) ne modifie pas la phase de la radiation dans la région des fréquences spatiales comprenant DC et modifie la phase de la partie restante de la radiation.</claim-text></claim>
<claim id="c-fr-01-0064" num="0064">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 61, dans lequel le filtre de phase spatial (6, 27, 45) bloque la radiation dans la région des fréquences spatiales comprenant DC et laisse inchangée la partie restante de la radiation.</claim-text></claim>
<claim id="c-fr-01-0065" num="0065">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 64, dans lequel la source (2, 21, 41) de radiation électromagnétique est un laser (2, 21, 41).</claim-text></claim>
<claim id="c-fr-01-0066" num="0066">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 65, soumis à la condition établissant que si θ=Π, le masque de phase (4, 23, 43) n'est pas divisé en une matrice de lignes et de colonnes d'éléments de résolution de même taille et même forme, chaque quatrième élément de résolution ayant la valeur de phaseur e<sup>iΠ</sup> et étant distribué périodiquement et régulièrement à travers la région du masque de phase, de telle façon que chaque seconde ligne et chaque seconde colonne ne contiennent pas d'élément de résolution ayant la valeur de phaseur e<sup>iΠ</sup>, les éléments de résolution restants ayant la valeur de phaseur e<sup>io</sup>.</claim-text></claim>
<claim id="c-fr-01-0067" num="0067">
<claim-text>Système (1) selon l'une quelconque des revendications 30 à 65, soumis à la condition établissant que si θ=Π/2, le masque de phase (4, 23, 43) n'est pas divisé en une matrice de lignes ou de colonnes de même taille et même forme, chaque seconde ligne et colonne ayant la valeur de phaseur e<sup>iΠ/2</sup> et étant interfacée avec les lignes ou colonnes restantes ayant la valeur de phaseur e<sup>io</sup>.</claim-text></claim>
</claims><!-- EPO <DP n="80"> -->
<drawings id="draw" lang="en">
<figure id="f0001" num=""><img id="if0001" file="imgf0001.tif" wi="159" he="236" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="81"> -->
<figure id="f0002" num=""><img id="if0002" file="imgf0002.tif" wi="178" he="186" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="82"> -->
<figure id="f0003" num=""><img id="if0003" file="imgf0003.tif" wi="161" he="247" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="83"> -->
<figure id="f0004" num=""><img id="if0004" file="imgf0004.tif" wi="155" he="240" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="84"> -->
<figure id="f0005" num=""><img id="if0005" file="imgf0005.tif" wi="167" he="200" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="85"> -->
<figure id="f0006" num=""><img id="if0006" file="imgf0006.tif" wi="162" he="202" img-content="drawing" img-format="tif"/></figure>
</drawings>
</ep-patent-document>
