[0001] The present invention relates to a method of generating data by which the optimal
number and placement of a plurality of energy beams, used to detect the presence of
an object within a space under surveillance, can be determined to define a sensor
system for detecting the presence of objects in that space.
[0002] Several technologies are known for use in detecting the presence of an object entering
a volume of space under surveillance. These energy beams may comprise, for example,
radio frequency energy (microwaves), sound waves (ultrasonics), or optical energy
(e.g., infrared waves). One application of such technology involves collision avoidance
systems used in on-the-road vehicles to detect the presence of an adjacent vehicle
or object which poses a risk of collision (see for example US-A-4 447 800). Each of
the technologies mentioned above possesses certain advantages and limitations, but
all of them present certain common problems in their implementation for a specific
application. For example, such collision avoidance systems are typically employed
to monitor a specific volume of space immediately adjacent the "host" vehicle to be
protected. Energy having unique characteristics, e.g. wavelength, modulation frequency,
etc., is projected from the host vehicle into the space, and reflections of this energy
toward the host vehicle are monitored to detect the presence of a vehicle or other
object presenting a risk of danger. However, cost, size and other constraints impose
practical limits on the amount of energy that can be projected into the monitored
space; therefore, it is necessary to project the energy in a limited number of energy
beams which normally cover only a portion of the volume being monitored.
[0003] Since only a limited number of energy beams may be employed in most collision avoidance
systems, it is therefore important to judiciously choose the number, size and placement
of the beams so as to maximize the likelihood of detection. This task is substantially
complicated by several factors. For example, the size, geometry and features of the
various vehicles which might enter the monitored zone vary widely, and therefore each
present unique reflective characteristics. Also, adjacent curbing, road features and
reflective road striping have the potential to reflect energy and therefore may result
in false detections. On the other hand, the monitored volume of space must be sufficiently
"covered" with beam energy so that smaller objects and vehicles, such as motorcycles
and pedestrians, may be reliably detected.
[0004] Accordingly, there is a need in the art for a method of determining the optimal number
and positions of a plurality of energy beams employed to detect the presence of an
object within a volume of space being monitored and particularly detection beams used
in collision avoidance systems for vehicles.
[0005] It is an object of the present invention to provide a method of generating data for
determining the optimal number and placement of a plurality of energy detection beams
employed to detect the presence of an object, such as a vehicle within a volume of
space under surveillance.
[0006] According to the invention, this is achieved by the features in the claim 1. Advantageous
further embodiments are described in the subclaims 2 through 9.
[0007] The method is preferably carried out using a plurality of sample beams of energy,
such as infrared optical energy. The source of the sample beams or the object under
surveillance is moved in each of a plurality of linear, parallel paths so that reflections
are sensed at a plurality of locations over the area under surveillance. For each
relative position between the beam source and the object, the beam source is rotated
about a substantially vertical axis to determine the reflections based on a plurality
of angles of incidence.
[0008] Similarly, the beam source is rotated about a substantially horizontal axis to each
of a plurality of positions to determine the reflectivity of features on the object
for each of the relative positions between the beam source and the object. The recorded
data is employed to produce a composite map of the locations in space where reflections
have been noted. The map of reflective features may then be used to determine the
optimal number and placement of a limited number of detection beams.
[0009] In the drawings, wherein like reference numerals are employed to designate identical
components and which are to be used in conjunction with the following description:
Figure 1 is a plan view of a host vehicle equipped with a detection module forming
part of a collision avoidance system and showing the approximate volume of space under
surveillance;
Figure 2 is a perspective view of the right side of the vehicle shown in Figure 1,
and more clearly depicting the number and relative placement of the detection beams
emanating from the detection module;
Figure 3 is a rear elevational view of the host vehicle shown in Figure 1, depicted
in operative relationship to an adjacent vehicle to be monitored;
Figure 4 is a diagrammatic, plan view used to explain the method of the present invention;
Figure 5 is a rear elevational view of a vehicle disposed within a volume of space
under surveillance which is of aid in explaining the method of the present invention;
Figure 6 is a front elevational view of apparatus employed to carry out the method
of the present invention;
Figure 7 is an elevational view of a portion of the side of a vehicle with a series
of the sampling beams trained thereon, successively lower positions of the sampling
beams being indicated in the phantom;
Figure 8 is a diagrammatic, plan view showing the impingement of the sampling beams
on the side of a vehicle;
Figures 9-11 are reflective feature maps for a first vehicle, respectively representing
the detection of reflections at various heights about the ground;
Figure 12 is a map forming a composite of the maps of Figures 9-11;
Figure 13-15 are reflective feature maps for another vehicle, respectively representing
the detection of reflections at various heights about the ground;
Figure 16 is a map forming a composite of the maps of Figures 13-15; and
Figure 17 is a diagrammatic, plan view showing the optimal number and placement of
a plurality of detection beams based on the reflective feature maps.
[0010] The present invention relates to a method of generating data for determining the
optimal number and placement of energy beams which are used to detect the presence
of an object within a zone to be monitored. One such application of object detection
requiring strategic placement of the energy beams is in the context of collision avoidance
systems for vehicles, where it is desired to determine the presence of another vehicle,
pedestrian or other object which is within a zone of danger relative to a protected
vehicle and poses a risk of collision therewith.
[0011] A typical collision avoidance system using multiple energy beams to detect adjacent
objects is depicted in Figures 1-3. A tractor-trailer type vehicle is depicted which
comprises a tractor or truck 24 that tows a long trailer 22. Large trucks of this
type are typically referred to as "Class 8" trucks, and because of their size and
configuration, the operator of such a vehicle normally has a relatively large blind
spot within which an adjacent vehicle may be concealed from his view, thus presenting
a severe hazard during lane-changing maneuvers, turns and the like. The collision
avoidance system includes a collision avoidance detector 20 mounted on each side of
the truck 54 and more particularly on the door 30 of the truck cab. The precise mounting
location of the detector 20 will vary depending upon the nature, size and configuration
of the truck or other "host" vehicle with which the detector 20 is used. In many applications,
such as the truck 24, it may be unnecessary to employ a detector 20 on both sides
thereof, and therefore only those energy beams 28 associated with the detector 20
on the right side of the truck 24 will be discussed herein.
[0012] The detector 20 emits a plurality of beams 28 of energy forwardly, laterally and
rearwardly into a volume of space 26 which comprises the zone to be monitored for
the presence of vehicles, pedestrians or other objects posing a risk of collision
with the truck 24. The energy beams 28 may comprise acoustical energy (e.g., ultrasonics),
radio frequency energy (e.g., microwaves), or optical energy (e.g., infrared light
waves). In the disclosed embodiment, nineteen of the beams 28 are employed to detect
objects within the monitored zone 26. The zone 26 under surveillance is generally
rectangular in plan view and is of a preselected height. The dimensions and geometry
of the monitored zone 26 are such that the volume of space monitored is above the
surface 26 of striping 32 on the road and extends laterally to a point which falls
short of curbs 34, signs (not shown) or other objects which are not intended to be
detected.
[0013] The beams 28 emanate from the detector 20 and impinge upon objects, such as an adjacent
vehicle 38 within the zone 26. A portion of the energy in the beam 28 is reflected
from surface features such as the trim piece 40 on the adjacent vehicle 38, a portion
of which energy is reflected in a beam 36 back to the detector 20. The spacing between,
location, direction, size and number of the beams 28 must be carefully selected in
accordance with a particular application to optimize system operation and to assure
that all objects of interest within the zone 26 may be reliably detected. In some
cases, it may be determined that certain of the beams 28, such as the lateral beam
28a and rearwardly projecting beams 28b, should extend between the normal monitoring
zone 26 in order to detect certain unique surface features of adjacent vehicles such
as trim components, license plates or the like. In any event, it is important to use
a relatively minimum number of the beams 28 to provide the required degree of detection
reliability, since the use of additional beams is unnecessarily costly and may not
significantly add to detection reliability. The present invention is therefore concerned
with generating data for determining the number and optimal placement, positioning
and length of the beams 28 so as to assure high detection reliability at minimum cost.
[0014] Attention is now directed to Figures 4-8 which depict an arrangement for carrying
out a novel method of generating data for determining the optimal position, placement,
length and number of the beams 28. First, an envelope shown in solid line and designated
by the numeral 56 in Figure 4 is determined, which defines the area in plan view where
it is desired to detect objects which might pose a risk of collision with the host
vehicle 24. The envelope 56 essentially possesses a configuration in plan view similar
or identical to the zone 26 shown in Figure 1. A source of sampling beam energy 42
is positioned at a point adjacent the detection envelope 56, essentially corresponding
to the point on the host vehicle 24 where the detection unit 20 would ordinarily be
mounted (see Figure 1). In one suitable embodiment, the sampling beam source 42 produces
six horizontally aligned beams 66 of energy, for example, optical energy of the infrared
wavelength. Four of such beams 66a-66d are depicted in Figure 7 as impinging on the
door of an adjacent vehicle 38. In the present embodiment, the beams 66 are of circular
cross-section and, as shown in Figure 8, impinge upon the side of the vehicle 38 as
contiguous or closely adjacent circular spots 110a-110f.
[0015] For purposes of carrying out the method of the present invention, the detection envelope
56 is divided by sector lines 58-62 into four sections respectively subtended by essentially
equal angles A-D. The sampling beam source 42 is shown in more detail in Figure 6.
Two sets of three horizontally aligned light-emitting diodes (LED) are respectively
mounted behind lenses 74, 76 on optical supports 70, 72. Two sets of three photodetectors
84 are likewise mounted behind lens 80, 82 which are disposed on the optical mounts
70, 72. Thus, each set of LEDs 78 are respectively associated with the photosensors
84 carried by the same optical mount 70, 72. The precise aiming of the LEDs 78 and
photosensors 84 may be controlled by any suitable means such as micrometer adjustments
86. The optical mounts 70, 72 are respectively secured to bases 88, which in turn
are independently pivotally mounted for rotation on pivot pins 90 about substantially
vertical axes on a common support assembly 94. The support assembly 94, in turn, is
mounted on a base 96 which may be rotated about a substantially vertical axis 106.
The base 96 is coupled by a joint 98 to a bearing assembly 100 which is rotatable
about a substantially horizontal axis 104. The bearing assembly 100 is in turn mounted
on a suitable support 102. It may thus be appreciated that the optical mounts 70,
72 may be rotated about their vertical axes to achieve alignment between the two sets
of respectively associated horizontal beams, and rotation about the horizontal and
vertical axes 104, 106 allows precise aiming of the horizontal bank 66 of six beams
to specific areas within the detection envelope 56. More particularly, it can be appreciated
that the bank of six horizontal beams may be pivoted about a vertical axis in the
direction of arrow 64 (Figure 4) to any of a plurality of indexing positions through
an angle which will be referred to herein as the "equatorial" angle. Likewise, it
may be appreciated that the bank of six beams 66 may be rotated about a horizontal
axis 104 in the direction of arrow 65 (Figure 5) to any of a plurality of second index
positions through angles which will be referred to herein as "azimuthal" angles.
[0016] After the beam source 42 is disposed in the proper position adjacent the envelope
56, it is rotated about a vertical axis to one of the sectors, such as sector D, at
a given azimuthal angle. For example, as shown in Figure 5, the first azimuthal angle
may correspond to the level indicated by the numeral 1, so that the beams effectively
illuminate upper portions of the vehicle 38.
[0017] With the beam source 42 positioned at the first combination of equatorial and azimuthal
angles, the vehicle 38 is moved along a first track 40 designated as track 1 to a
first position where a portion thereof, for example, is within sector D. With the
beam source 42 aimed at sector D, the LEDs 78 are pulsed to produce horizontal bank
of beams 66. Those of the beams 66 which are incident on the surface of the vehicle
38 result in illumination spots, such as those designated by the numerals 110a-110f
in Figure 8. Depending upon the geometry and nature of the surface features thusly
illuminated, a portion of the incident energy will be reflected back toward the beam
source 42 and is picked up by the photosensors 84. In other words, those particular
illuminated surface features on the vehicle 38 which are disposed at certain angles
relative to the beam source 42 reflect the incident beam at the proper angle back
toward the beam source 42 so that the beam source 42 effectively "sees" or detects
such reflective feature or surface area. The precise location in space of each such
reflection produced by a surface feature is recorded for each of the tracks 40 (1-7).
The precise points in space where such reflections occur can be determined using any
of various known techniques, including triangulation. Normally, for future use, the
reflection locations are recorded in the form of an x, y, z coordinate system, along
with the equatorial and azimuthal angles of the beam source 42.
[0018] After the first set of data is recorded in the manner just described, the beam source
42 is rotated about its vertical axis to view the next sector, which in this case
is sector C, while the vehicle 38 remains at its first incremental position in track
1. At this point, a second set of reflective data is taken, following which the beam
source 42 is successively moved to view sectors B and A where similar sets of reflection
data are recorded. After the beam source has been rotated through each of the sectors
A-D for a given azimuthal angle, the beam source 42 is rotated to a second azimuthal
angle so as to view, for example, that portion of the vehicle 38 at a lower elevation
designated by the numeral 2. The beam source 42 is then successively indexed to differing
equatorial angles to view sectors A-D for the second azimuthal angle, and the reflection
data is recorded for each combination of these equatorial and azimuthal angles. In
a similar manner, this same recording process is carried out for each of the additional
azimuthal angles, which correspond to elevations 3 and 4 in Figure 5, where the beam
source 42 is swung about its vertical axis to permit recording of reflection data
in each of the four sectors A-D. Following the recording of such data, the vehicle
38 is then moved forwardly in track 1 to a second incremental position, where a second
set of reflection data is recorded in the manner just described. It may be readily
appreciated that this second set of reflection data may very well be different than
the first set thereof since, due to the incremental movement of the vehicle 38, the
angle of incidence on the various reflective features of the vehicle 38 is slightly
changed. For example, as shown in Figure 8, the vehicle 38 is disposed at a particular
position of incremental movement where a particular surface feature designated by
the numeral 114 is coincidentally disposed at an angle substantially perpendicular
to rays 116 of the beam 66d. As a result, the rays 116 incident on surface feature
114 are reflected back toward the beam source 42 and are detected by the corresponding
photosensor 84 as a reflection. In contrast, it may be seen that the rays, e.g. 112,
of the other beams 66a, 66b, 66c, 66e, 66f are incident on surface features which
are inclined relative to the beam source 42 at an angle such that the incident light
energy is reflected in a direction which prevents detection thereof by the photosensors
84.
[0019] Figure 7 illustrates the alignment of the bank of beams 66 along a substantially
horizontal axis 108, four of such beams 66a-66d being shown incident on the door of
the vehicle 38. From this figure, it may be seen that beam 66d is incident on the
door handle 106 of the vehicle 38 which may possess surface areas of various angular
dispositions that may increase the likelihood that a portion of the energy in beam
66d is reflected back toward and is detected by the corresponding photosensor 84.
The successively lower elevational positions of the beam bank are designated by the
numerals 2, 3 and 4 in Figure 7, these elevational positions being determined by the
azimuthal angle of the beam source 42.
[0020] It may be readily appreciated that the reflection data determined in the manner described
above can likewise be recorded by other techniques and sequences of relative movement
between the beam source and the vehicle 38. For example, the vehicle 38 may remain
stationary, and the beam source 42 may instead be moved to successive positions in
a plurality of linear paths at successively greater lateral distances from the vehicle
38, and in this manner, a set of data would be produced which is identical to that
previously described. Indeed, it may be preferably to linearly move the beam source
42 to successive incremental positions, rather than the vehicle 38, since the beam
source 42 could easily be mounted on apparatus which can be more precisely indexed
and displaced in comparison to the vehicle 38. Likewise, the sequence of indexing
the beam source 42 to various azimuthal and equatorial angles could be altered. For
example, for a given incremental position of the vehicle 38, the beam source 42 might
be rotated to successive azimuthal positions for each selected equatorial position.
It is only necessary that there be the required relative movement between the beam
source and the vehicle 38 so as to determine the precise points in the envelope of
space 56 at which reflections are obtained from various surface features on the vehicle
38.
[0021] After a set of reflection data is obtained for a vehicle 38 of a given configuration,
the process is repeated to obtain a second set of data for a vehicle of a differing
configuration. This is necessary since the reflective features of vehicles differ
depending upon the physical geometry, size and choice of materials used in the vehicle.
It is known, however, that certain types of vehicles possess surface geometries which
are more difficult to detect than others. Accordingly, it is preferable to select
those vehicles having the surface features which are most difficult to detect for
use in generating reflection data which is subsequently used to determine the number
and displacement of sampling beams.
[0022] Having generated the necessary sets of data, such data can be plotted to effectively
provide a map of the points in the envelope space 56 at which "detections" may be
obtained for a given vehicle model. For example, Figures 9-12 are plots or "maps"
of detections for a 1988 Pontiac Fiero which is black in color. The ordinate depicts
the lateral distance from the beam source 42, which of course corresponds to the lateral
distance from the detector 20. Also, it can be appreciated that the vertical plots
are divided into seven tracks which correspond with the lateral, parallel tracks 40
shown in Figure 4. The abscissa is a plot of the distance from the beam source 42
(or detector 20) in a direction forward up to the leading edge of the envelope 56
(or zone 26) which is indicated as a vertical, dotted line. These plots are based
on a four-level gray scale, with the totally white spaces indicating no-detects and
the totally dark portions indicating four or more detects at any given x-y position.
Figures 9-11 respectively correspond to the data recorded for three different elevational
(azimuthal) positions, with Figure 9 being the lowest position, Figure 10 being at
a middle position, and Figure 11 being at an uppermost elevational position. It can
be seen in Figure 9 that the low beams fail to detect the vehicle at the upper left
region of the zone due to the fact that they are aimed under the rear bumper at long
ranges. It can also be seen that there is a strong area of response beyond the leading
edge of the zone (vertical dash line) due to the very high reflectivity of the rear
license plate of the vehicle.
[0023] Figure 10 shows that the middle height beams fail to detect the "test" vehicle in
some parts of the middle zone because they sometimes all fall on highly reflective
body panels at unfavorable angles of incidence. Again, there is a substantial response
forward of the leading edge of the zone due to the high reflectivity of the license
plate of the test vehicle.
[0024] Figure 11 demonstrates that the highest position of the beams are useful mainly for
detecting at the outer lateral boundaries, as well as at relatively close distances,
particularly near the beam source (or detection unit 20).
[0025] Figure 12 is a detection map which forms a composite of those shown in Figures 9-11,
showing the detection responses for all of the beams at all of the chosen azimuthal
elevations for the forwardmost sector of the envelope of volume 56. From Figure 12,
it was determined that a subset of only ten of the total number of thirty-six beams
that were used to generate the reflection data were needed to effectively cover the
forward quadrant and could do so with less undesired response resulting from the highly
reflective areas of the test vehicle forward of the leading edge of the zone being
monitored.
[0026] Figures 13-15 are similar to Figures 9-11 but depict the detection data for a 1988
Ford EXP which is black in color. Figure 13 shows that, compared with the Fiero, there
is less response at long ranges, due apparently to the relatively high position of
the license plate on the Ford EXP. All of the beams fall under the plate at long ranges.
Figure 14 shows that there is less response at the longer lateral distances compared
to the Fiero, most probably due to the absence of reflective trim or side reflectors
on the Ford EXP. Figure 15 shows that the higher beams used to generate the detection
data in this particular map are sufficiently high in elevation to detect the comparatively
high license plate of the Ford EXP forward of the leading edge of the detection zone.
Figure 16 is a map of the detection responses which is a composite of the maps of
Figures 13-15. From Figure 16, it can be concluded that the set of ten beams which
were effective for detecting Fiero are likewise very effective for detecting the Ford
EXP.
[0027] Using the recorded test data and detection maps such as those described above, the
final number, positioning and length of the sampling beams may be determined. A typical
set of such beams indicated by the numeral 28 are shown in Figure 17. Figure 17 depicts
the relative angles of the beams as well as their heights and lengths.
[0028] From the foregoing, it may be appreciated that the method of the present invention
not only provides for the reliable accomplishment of the object of the invention,
but does so in a particularly effective and economical manner. It is recognized, of
course, that those skilled in the art may make various modifications or additions
to the preferred embodiment chosen to illustrate the invention without departing from
the scope of the present contribution to the art. Accordingly, it is to be understood
that the protection sought and to be afforded hereby should be deemed to extend to
the subject matter claimed and all equivalents thereof fairly within the scope of
the invention.
1. A method of generating data to determine the optimal positions for a plurality of
energy beams directed into a volume of space under surveillance to detect the presence
of an object within that space, comprising the steps of:
(A) placing the object at a preselected position within the space;
(B) directing a plurality of sample beams of energy, which have a predetermined orientation,
from a source onto the object;
(C) detecting the sample beam energy reflected from points on the object by energy
detectors;
(D) recording the preselected position of the object, the predetermined orientation
of sample beams, and the detection status of the energy detectors;
(E) displacing and indexing the source of the sample beams relative to the object
about a vertical and horizontal axis to various equatorial and azimuthal angles, respectively;
and
(F) repeating steps (B) through (E) to produce spatial maps of the locations at which
the object is positioned when each of the energy detectors detect reflected sample
beam energy, wherein a lateral distance from the source is depicted as an ordinate
and a distance from the source in a direction forward up to a leading edge of an envelope
of the space is depicted as an abscissa, and the number of detects at any given x-y
position being indicated by different grey-scales.
2. The method of claim 1, wherein step (B) is performed by:
simultaneously training a group of said sample beams onto said object, and
angularly displacing said group of said sample beams about a reference axis to each
of a plurality of angular positions, and repeating steps (C) and (D) at each of said
angular positions.
3. The method of claim 1, wherein step (E) is performed by linearly displacing said source
of said sample beams relative to said object to each of a plurality of sampling positions,
there being a set of said sampling positions corresponding to each of said angular
positions of said object.
4. The method of claim 1, wherein step (E) is performed by linearly displacing said source
of said sample beams relative to said object along a first reference path.
5. The method of claim 4, wherein step (E) includes displacing said source of said sample
beams relative to said object in a direction transverse to said first reference path
to each of a plurality of transversely spaced apart locations, and linearly displacing
said source relative to said object along each of a plurality of reference paths extending
parallel to said first path, wherein said plurality of reference paths respectively
extend through said plurality of transversely spaced apart locations.
6. The method of claim 1, wherein step (E) is performed by angularly displacing said
source of said sample beams to each of a plurality of angular positions.
7. The method of claim 6, wherein said source is angularly displaced about a substantially
horizontal reference axis such that said sample beams are directed onto said object
at a plurality of different elevations respectively associated with said angular positions.
8. The method of claim 7, wherein step (E) further includes linearly displacing said
source relative to said object along a preselected path for each of said angular positions.
9. The method of claim 1, wherein steps (A) through (F) are repeated for a plurality
of objects.
1. Verfahren zum Erzeugen von Daten zum Bestimmen der optimalen Positionen für eine Mehrzahl
von Energiestrahlen, die in einen Überwachungsraum hinein gerichtet sind, um das Vorhandensein
eines Objektes innerhalb dieses Raumes zu erfassen, mit folgenden Schritten:
(A) Plazieren des Objektes in einer ausgewählten Position innerhalb des Raumes;
(B) Ausrichten einer Mehrzahl von Abtastenergiestrahlen, welche eine vorbestimmte
Orientierung haben, von einer Quelle zu dem Objekt hin;
(C) Erfassen der von Punkten des Objektes reflektierten Abtastenergiestrahlen mittels
Energieerfassungseinrichtungen;
(D) Aufzeichnen der ausgewählten Position des Objektes, der vorbestimmten Orientierung
der Abtaststrahlen und des Erfassungsstatus der Energieerfassungseinrichtungen;
(E) Versetzen und Indizieren der Quelle der Abtaststrahlen relativ zu dem Objekt um
eine vertikale und eine horizontale Achse um verschiedene Äquatorial- bzw. Azimutalwinkel;
und
(F) Wiederholen der Schritte (B) bis (E), um räumliche Karten der Positionen zu erzeugen,
in welchen das Objekt positioniert ist, wenn jeder der Energieerfassungseinrichtungen
reflektierte Abtastenergiestrahlen erfaßt, wobei ein seitlicher Abstand von der Quelle
als Ordinate dargestellt wird und ein Abstand von der Quelle in Richtung nach vorn
bis zu einem Führungsrand einer Hüllfläche des Raumes als Abszisse dargestellt wird,
und wobei die Anzahl der Erfassungen in einer gegebenen x-y-Position durch verschiedene
Grau-Skalen angezeigt wird.
2. Verfahren nach Anspruch 1, wobei der Schritt (B) durchgeführt wird durch:
gleichzeitiges Ausrichten einer Gruppe der Abtaststrahlen auf das Objekt zu, und
winkliges Versetzen der Gruppe der Abtaststrahlen um eine Bezugsachse in jeweils eine
Mehrzahl von winkligen Positionen, und Wiederholen der Schritte (C) und (D) in jeder
der winkligen Positionen.
3. Verfahren nach Anspruch 1, wobei der Schritt (E) durch lineares Versetzen der Quelle
der Abtaststrahlen relativ zu dem Objekt in jeweils eine Mehrzahl von Abtastpositionen
durchgeführt wird, wobei ein Satz der Abtastpositionen den jeweiligen winkligen Positionen
des Objektes zugeordnet wird.
4. Verfahren nach Anspruch 1, wobei der Schritt (E) durch lineares Versetzen der Quelle
der Abtaststrahlen relativ zu dem Objekt entlang einer ersten Bezugsbahn durchgeführt
wird.
5. Verfahren nach Anspruch 4, wobei der Schritt (E) das Versetzen der Quelle der Abtaststrahlen
relativ zu dem Objekt in Richtung quer zur ersten Bezugsbahn in jeweils eine Mehrzahl
von quer zueinander benachbarten Positionen, und das lineare Versetzen der Quelle
relativ zu dem Objekt entlang jeweils einer Mehrzahl von Bezugsbahnen aufweist, die
sich parallel zur ersten Bahn erstrecken, wobei sich die Mehrzahl von Bezugsbahnen
jeweils durch die Mehrzahl von quer zueinander benachbarten Positionen erstreckt.
6. Verfahren nach Anspruch 1, wobei der Schritt (E) durch winkliges Versetzen der Quelle
der Abtaststrahlen in jeweils eine Mehrzahl von winkligen Positionen durchgeführt
wird.
7. Verfahren nach Anspruch 6, wobei die Quelle um eine im wesentlichen horizontale Bezugsachse
derart winklig versetzt wird, daß die Abtaststrahlen auf das Objekt in eine Mehrzahl
von verschiedenen Höhenbereichen gerichtet werden, die jeweils den winkligen Positionen
zugeordnet sind.
8. Verfahren nach Anspruch 7, wobei der Schritt (E) ferner das lineare Versetzen der
Quelle relativ zu dem Objekt entlang einer ausgewählten Bahn für jede der winkligen
Positionen aufweist.
9. Verfahren nach Anspruch 1, wobei die Schritte (A) bis (F) für eine Mehrzahl von Objekten
wiederholt werden.
1. Procédé de production de données pour déterminer les positions optimales pour une
pluralité de faisceaux d'énergie dirigés dans un espace sous surveillance pour détecter
la présence d'un objet à l'intérieur de cet espace, comprenant les étapes consistant
à :
(A) placer l'objet dans une position prédéterminée à l'intérieur de l'espace;
(B) diriger une pluralité de faisceaux d'énergie échantillons, qui ont une orientation
prédéterminée, depuis une source en direction de l'objet;
(C) détecter l'énergie du faisceau échantillon réfléchie par des points situés sur
l'objet, au moyen des détecteurs d'énergie;
(D) enregistrer la position présélectionnée de l'objet, l'orientation prédéterminée
de faisceaux échantillons et l'état de détection des détecteurs d'énergie;
(E) déplacer et indexer la source des faisceaux échantillons par rapport à l'objet
autour d'un axe vertical et d'un axe horizontal respectivement sur différents angles
équatoriaux et azimutaux; et
(F) répéter les étapes (B) à (E) pour produire des cartes spatiales des emplacements,
au niveau desquels l'objet est positionné lorsque chacun des détecteurs d'énergie
détecte une énergie réfléchie d'un faisceau échantillon, une distance latérale par
rapport à la source étant représentée en tant qu'ordonnée et une distance par rapport
à la source en direction de l'avant jusqu'à un bord avant d'une enveloppe de l'espace
étant représentée en tant qu'abscisse, et le nombre de détections pour n'importe quelle
position x-y donnée étant indiqué par différentes échelles de gris.
2. Procédé selon la revendication 1, selon lequel l'étape (B) est exécutée par :
déplacement simultané d'un groupe desdits faisceaux échantillons sur ledit objet;
et
déplacement angulaire dudit groupe desdits faisceaux échantillons autour d'un axe
de référence vers chacune d'une pluralité de positions angulaires, et la répétition
des étapes (C) et (D) pour chacune desdites positions angulaires.
3. Procédé selon la revendication 1, selon lequel l'étape (E) est exécutée par déplacement
linéaire de ladite source et desdits moyens échantillons par rapport audit objet en
direction d'une pluralité de positions d'échantillonnage, et il est prévu un ensemble
de positions d'échantillonnage correspondant à chacune desdites positions angulaires
dudit objet.
4. Procédé selon la revendication 1, selon lequel l'étape (E) est exécutée par déplacement
linéaire de ladite source desdits faisceaux échantillons par rapport audit objet le
long d'un premier trajet de référence.
5. Procédé selon la revendication 4, selon lequel l'étape (E) inclut le déplacement de
ladite source desdits faisceaux échantillons par rapport audit objet dans une direction
transversale par rapport audit premier trajet de référence en direction de chacun
d'une pluralité d'emplacements espacés transversalement, et le déplacement linéaire
de ladite source par rapport audit objet le long de chacun d'une pluralité de trajets
de référence s'étendant parallèlement audit premier trajet, ladite pluralité de trajets
de référence passant respectivement par ladite pluralité d'emplacements espacés transversalement.
6. Procédé selon la revendication 1, selon lequel l'étape (E) est exécutée par déplacement
angulaire de ladite source et dudit faisceau échantillon vers chacune d'une pluralité
de positions angulaires.
7. Procédé selon la revendication 6, selon lequel ladite source est déplacée angulairement
autour d'un axe de référence sensiblement horizontal de sorte que lesdits faisceaux
échantillons sont dirigés vers ledit objet, sous une pluralité d'élévations différentes
associées respectivement auxdites positions angulaires.
8. Procédé selon la revendication 7, selon lequel l'étape (E) inclut en outre un déplacement
linéaire de ladite source par rapport audit objet le long d'un trajet présélectionné
pour chacune desdites positions angulaires.
9. Procédé selon la revendication 1, selon lequel lesdites étapes (A) à (F) sont répétées
pour une pluralité d'objets.