FIELD OF INVENTION
[0001] The present invention relates to a detecting system for a string instrument, in general,
and in particular to a detecting system and a method for detecting and transmitting
data representing played strings on a fretboard of a string instrument.
BACKGROUND
[0002] There are known several string instruments provided with a detecting system for detecting
the note played.
US4635518 discloses an electronic stringed musical instrument having an electrically insulating
fingerboard is disclosed. The fingerboard is provided with a number of segmented frets
attached across its upper surface at desired points along its length. Each of the
frets includes a number of electrically conducting fret segments each of which are
electrically insulated from one another. Any number of strings may be provided on
the instrument each string is disposed adjacent to and associated with a single fret
segment of each of the segmented frets. A top octave generator and octave dividers
are utilized to selectively provide a fret segment of one of the frets with an electrical
signal of at least one known referencing frequency. The strings are attached to the
instrument in a spaced relationship with respect to the fret segments. Displacing
a string to contact one of the fret segments completes an electrical circuit having
at least one frequency equal to a frequency of the signal provided to that fret segment.
Displacing the same string to contact a different fret segment completes a different
electrical circuit having at least one different frequency. Simultaneously depressing
a plurality of the strings simultaneously completes a number of electrical circuits
each capable of producing a number of different frequencies. The amplitude output
of the instrument is dependent upon the voltage applied to each of the strings and
is controlled by hand operated transducers.
[0003] US2012017748 discloses a digital musical instrument including a fretboard and one or more strings
extended over the fretboard. The instrument further includes an electric circuit for
generating digital signals based on positions associated with contacts of the strings
on the fretboard and a transceiver for transmitting the digital signals to a processing
device that generates musical notation based on the digital signals.A similar approach
is disclosed in
US3902395, wherein an array of electrical conductive fingerpads are inserted in the fretboard
of a stringed instrument and serve as an electric contact with each of the strings.
A circuitry comprising gating circuitry, time-division multiplexing circuitry, and
converters provide electrical signals representing musical notes.
US8454418 discloses a game controller having one or more strings is described for a computer
gaming application. A plurality of frets can be disposed on a fingerboard and underlying
the strings. The frets may include electrically conductive zones that can be electrically
insulated from each other, and each zone corresponds to a different string. A polyphonic
pickup having a plurality of wire-wound coils coupled to corresponding magnetic returns
can be included, and can be adapted to detect striking of at least one of the strings
by a user of the game controller. Output signals may be sent from the controller to
the gaming application indicative of fingering of the game controller and the time
at which the strings of the game controller are struck. Multimode apparatus are also
described. A stringed apparatus may be used as both a game controller and an instrument.
[0004] WO2013109657 discloses an electronic stringed instrument practice device can be configured to
perform one or more of the following:
detect when finger positions and/or string to fret contact on a finger or fret board
forms an appropriate musical note or musical chord, visually indicate appropriate
positions on a finger or fret board for forming a musical note or musical chord, and
detect when strings have been selected (e.g., strummed). The electronic stringed instrument
practice device can emit sound in the form of musical notes and chords. The electronic
stringed instrument practice device can include communication modules for communicating
with other computing devices, including mobile phones and tablets. The electronic
stringed instrument practice device can interact with applications on other computing
devices to further assist users in learning how to play a stringed musical instrument.
[0005] US2013247744 discloses a stringed instrument is equipped with an electrical conductor electrically
connected to the frets mounted in the fretboard of said stringed instrument. Said
stringed instrument is also equipped with a power source, light emitting members in
electrical contact with the strings of the instrument (in one embodiment light emitting
diodes) and electrical conductors electrically connecting together the components
of the invention. By means of pressing down anyone of the strings capable of transmitting
electric current against anyone of the frets capable of transmitting electric current
connected to the electrical circuit comprised of said electrical components, said
circuit closes and the light emitting member(s) associated with the string that is
pressed down against the fret is lit.
[0006] JP2009271484 discloses a sensing means for sensing contact/non-contact is constituted by making
a string and a fret in an electricity conductive state, and predetermined light is
generated by a performance means interlocking with the sensing means, in a performance
device for the string instrument.
SUMMARY OF INVENTION
[0007] There is provided in accordance with an aspect of the invention a fretboard of a
string instrument in combination with a detecting system, the fretboard having a plurality
of conductive frets disposed at various locations along its length and at least one
conductive string extending over and spaced apart from the frets along the length
of the fretboard. The detecting system includes a conductor disposed along the length
of the fretboard coupled to each of the frets; an inverter having a first terminal
coupled to the conductor and a second terminal coupled to the at least one conductive
string and being configured to logically invert a signal transmitted therethrough
such that when the at least one conductive string is pressed against one of the frets
allowing thereby a signal to be transmitted therethrough, the signal is sequentially
inverted between two logical states at a frequency dependent on the distance between
the inverter and the fret; a frequency detector for measuring the frequency; and a
controller for determining the location of the fret along the fretboard in accordance
with the frequency.
[0008] The fretboard can include a plurality of conductive strings.
[0009] The conductor can include two conductors disposed with respect to each one of the
plurality of conductive strings such that the average of the distance thereof from
each of the plurality of conductive strings is equal for all of the plurality of conductive
strings.
[0010] The conductive string can be configured to vibrate producing thereby a musical sound.
The conductive string can include a conductive material wound over of a nonconductive
core. The conductive string and the plurality of conductive frets can be configured
to allow transmitting therethrough a low voltage current such that is not affected
by a user's finger. Each one of the plurality of conductive strings can be configured
to receive a signal from the inverter.
[0011] The inverter can be configured for selecting one of many data-output-lines each of
which being coupled to one of the plurality of conductive strings.
[0012] The combination can include a demultiplexer having an input configured for receiving
an input signal from the inverter and an output configured for selecting one of many
data-output-lines each of which being coupled to one of the plurality of conductive
strings.
[0013] The inverter can be configured to invert an input voltage corresponding to a logical
1 to an output voltage of corresponding to a logical
0.
[0014] The combination can further include a controller being configured to detect which
one of the plurality of conductive strings is being pressed against one of the plurality
of frets.
[0015] The the controller and the frequency detector can be integrated in a CPU module.
[0016] The combination can further include an electronic component coupled to the inverter
and configured to delay the signal thereby increasing the wavelength thereof. The
electronic component can be a capacitor.
[0017] There is provided in accordance with another aspect of the invention a detection
system for detecting a musical note played on a string instrument having a fret board
provided with a plurality of conductive frets and at least one conductive string extending
along thereof. The detection system includes at least one conductor coupled to each
of the frets; an inverter having a first terminal coupled to the conductor and a second
terminal coupled to the conductive string, the inverter being configured to logically
invert a signal transmitted therethrough, such that when the conductive string is
pressed against one of the frets allowing thereby for a signal to be transmitted therethrough,
the signal is sequentially inverted between two logical states at a frequency being
dependent on the distance between the inverter and the fret; a frequency detector
configured to measure the frequency; and a controller configured for determining the
location of the fret along the fretboard in accordance with the frequency, and to
thereby detect the musical note.
[0018] The inverter can be configured to select one of many data-output-lines each of which
being configured to be coupled to one conductive strings of a musical instrument having
a plurality of conductive strings extending long the fretboard thereof.
[0019] The detection can further include a demultiplexer having an input configured to receive
an input signal from the inverter and an output configured for selecting one of many
data-output-lines each of which being coupled to one of the plurality of conductive
strings.
[0020] The first terminal of the inverter can be an input terminal and the second terminal
is an output terminal. The inverter can be configured to invert an input voltage corresponding
to a logical
1 to an output voltage of corresponding to a logical
0.
[0021] The detection system can further include a controller being configured to detect
which one of the plurality of conductive strings is being pressed against one of the
plurality of frets.
[0022] The detection system can further include a capacitor coupled to the inverter and
being configured to form a signal resonance in the signal thereby delaying the signal
for delaying the signal thereby increasing the wavelength thereof.
[0023] The detection system can further include a power source for generating a signal through
the conductive string.
[0024] The detection system can further include a demultiplexer having an input configured
for receiving an input signal from the inverter and an output configured for selecting
one of many data-output-lines each of which being coupled to one of the plurality
of conductive strings.
[0025] The inverter can be configured to select one of many data-output-lines each of which
being configured to be coupled to one conductive strings of a musical instrument having
a plurality of conductive strings extending long the fretboard thereof. The detection
system can further include a demultiplexer having an input configured to receive an
input signal from the inverter and an output configured to select one of many data-output-lines
each of which being coupled to one of the plurality of conductive strings.
[0026] The detection system can further include a controller configured to detect which
one of the plurality of conductive strings is being pressed against one of the plurality
of frets.
[0027] The detection system can further include an electronic component coupled to the inverter
configured to delay the signal thereby increasing the wavelength thereof. The electronic
component is a capacitor configured to form a signal resonance in the signal thereby
delaying the signal.
[0028] There is provided in accordance with yet another aspect of the invention a method
for detecting a musical note played on a string instrument having a fretboard provided
with a plurality of conductive frets each of which being coupled to a conductor, and
at least one conductive string extending along the length of the fretboard. the method
includes generating an electric signal through the conductive string, that can be
transmitted through one of the frets when the conductive string is pressed against
the fret; logically inverting the signal by an inverter having a first terminal coupled
to the conductor and a second terminal coupled to the conductive string, such that
when the conductive string is pressed against one of the frets allowing thereby the
signal to be transmitted through the conductor, the signal sequentially inverted between
two logical states at a frequency dependent on the distance between the inverter and
the fret; detecting the frequency by a frequency detector; calculating the location
of the fret along the fretboard in accordance with the frequency; and determining
the musical note played on the instrument in accordance with the location.
[0029] There is provided in accordance with yet another aspect of the invention a detection
system for detecting a musical note played on a string instrument having a fret board
provided with a plurality of spaced apart conductive frets each of which being coupled
to a conductor, and at least one conductive string extending over the frets. The detection
system includes a power source for generating a signal through the conductive string;
an inverter having a first terminal coupled to the conductor and a second terminal
coupled to the conductive string; a frequency detector configured to measure the frequency;
and a controller configured for determining the location of the fret along the fretboard
in accordance with the frequency. The inverter being configured to logically invert
a signal transmitted therethrough, such that when the conductive string is pressed
against one of the frets allowing thereby for the signal to be transmitted therethrough,
the signal is sequentially inverted between two logical states at a frequency being
dependent on the distance between the inverter and the fret.
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] In order to understand the disclosure and to see how it may be carried out in practice,
embodiments will now be described, by way of non-limiting examples only, with reference
to the accompanying drawings, in which:
Fig. 1 is a block diagram of a fretboard and detecting system constructed and operative
in accordance with an embodiment of the invention;
Fig. 2 is a block diagram illustration of a fretboard and detecting system constructed and
operative in accordance with another embodiment of the invention;
Fig. 3 is a graphic representation of an exemplary signal generated by the detecting system
of Fig. 1; and
Fig. 4 is a graphic representation of an exemplary signal generated by the detecting system
of Fig. 2.
DETAILED DESCRIPTION OF EMBODIMENTS
[0031] Fig. 1 shows a schematic illustration of a fret board
10 of a musical instrument (not shown) including a base board
11 having a plurality of conductive frets
14a through
14f transversely mounted thereon and a plurality of conductive strings
12a -12f extending along the length of the fretboard over the frets without touching them.
The conductive strings
12a-12f and the conductive frets
14a-4f can be configured to allow transmitting through them a low voltage current, for example
a current that is not sensed or affected by a user.
[0032] The conductive strings
14a - 14f can vibrate freely, however controllably. The conductive strings
14a- 14f can be made of a single material, such as steel, or can have a core of one material,
over which is wound another materials, for example a core of plastic wound with a
metal wire. In the latter case one or both materials are made of a conductive material.
[0033] It is appreciated that the number of strings and frets can vary in accordance with
the requirements of the particular type of musical instrument on which the fretborad
is mounted.
[0034] The fretboard
10 further includes a detecting system
20 configured for detecting the fret against which one of the strings
12a-12f is pressed, such that the chord or the note which is played can be detected.
[0035] The detecting system
20 includes at least one conductor
22 extending along the length of the fretboard
10 and being coupled to each of the frets
14a-14f. The conductor
22 can be integrated inside the base board
11 or can be mounted thereon.
[0036] The detecting system
20, includes a conductor
22, or two conductors
22, 22a, as illustrated in Figs. 1 and 2 mounted on a side of the fretboard
10 such that each one of the frets
14a-14f is coupled at one end to a first conductor
22 and at the other end to the other conductor
22a. The advantage of having more than one conductor will be explained hereinafter.
[0037] The detecting system
20 further includes an inverter
23 (also known as a NOT logic) having an input terminal
24a and an output terminal
24b and is configured to output, at the output terminal
24b, a voltage representing the opposite logic-level than the voltage at the input terminal
24a. That is to say, if the input voltage corresponds to a logical
1 the output voltage of the inverter corresponds to a logical 0 and
vice versa. The inverter can be any known inverter such as NC7SZ14 or the like or an inverting
amplifier.
[0038] The input terminal
24a of the inverter
23 is coupled to the conductors
22, 22a, such that an electric signal therefrom can be logically inverted by the inverter
23. The output terminal
24b of the inverter
23 can be coupled to the strings
12a-12f such that the inverted signal can be transmitted thereto. Since it is desired to
detect the fret against which the string is presses as well as to detect which of
the strings
12a-12f is pressed, each of the strings
12a-2f can be individually and independently coupled to the inverter
23. This can be accomplished, for example, by having the strings
12a-12f coupled to the output terminal
24b of the inverter
23 by a demultiplexer
30 (also known as or demux). The demultiplexer
30 can include an input
32a configured to receive an input signal from the output terminal
24b of the inverter
23 and an output
32b configured to select one of many data-output-lines
34a-34f each of which is coupled to the terminal end of one of the strings
12a-12f.
[0039] The demultiplexer
30 can be configured to provide a cycle of instances, such that during each instance
the output
32b thereof is coupled only to one of the data-output-lines
34a-34f. The output
32b can be configured to sequentially select one of the data-output-lines
34a-34f such that each one thereof sequentially receives a signal from the inverter
23. Since each one of the data-output-line
34a-34f is coupled to one of the conductive strings
12a-12f, the conductive strings
12a-12f are successively coupled, one at a time, to the output terminal
24b of the inverter
23 because of the operation of the demultiplexer
30, and an output signal can be transmitted therethrough. Alternatively the output terminal
24b of the inverter
23 can be coupled to strings
12a-12f through an analog switch such as the MAX459x, and the like.
[0040] The detecting system
20 further includes a frequency detector, configured to detect the frequency of the
signal at the output terminal
24b, and a controller the purpose of which is discussed in detail herein below. The frequency
detector and controller can be integrated in a CPU module
35 coupled to the output terminal
24b of the inverter
23. It will be appreciated that since the conductive strings
12a-12f, the conductor
22, and the inverter
23 form together an electric circuit the frequency detector can be coupled at any location
thereof, i.e. at the output terminal
24b, the input terminal
24a or to the conductors
22, 22a.
[0041] The detection system further includes a power source (not shown) for generating an
electric signal. The power source transmits electric signal through the conductive
strings
12a-12f upon activation of the detection system.
[0042] As mentioned hereinabove, the frets
14a-14f are made of a conductive material, thus, pressing one of the conductive strings
12a-12f against one of the frets
14a-14f, facilitates closing a circuit formed by the respective conductive string, the conductors
22 and the inverter
23. For example, if conductive string
12f is pressed against fret
14e, the circuit is closed and an output signal is transmitted from the output terminal
24b of the inverter
23 through the demultiplexer
30, conductive string
12f, fret
14e and conductor
22 back to the input terminal
24a. If the voltage of the output signal corresponds to a logical
0, the voltage transmitted back through the conductive string
12f and the conductors
22 to the input terminal
24a corresponds to a logical
0 as well. As a response, the inverter
23 outputs an output signal having a voltage corresponding to a logical
1.
[0043] Further transmission of the output signal through the conductive string
12f, the fret
14e and the conductors
22 provides at the input terminal
24a a voltage corresponding to a logical
1, which is then inverted by the inverter
23 to a voltage at the output terminal corresponding to a logical
1,. The transmission of the output signal between the output terminal
24b and the input terminal
24a, continues so long as the conductive string
12f is pressed against the fret
14e. Accordingly, the signal transmitted through the conductive string
12f alternates between logical
1 and logical
1.
[0044] As shown in the graph illustrated in Fig. 3 the output signal, can be represented
as a square wave, generally designated
50, alternating between a first phase
52a in which the voltage thereof corresponds to a logical
0, and a second phase
52b in which the voltage thereof corresponds to a logical
1.
[0045] Alternation between the first phase
52a and the second phase
52b occurs at a frequency depending on the time interval between an inversion of the
inverter
23 and the following inversion thereof. Since the inversions successively occurs once
the current completes a full cycle between the output terminal
24b and the input terminal
24a, the time interval between each inversion is determined by the time required for the
output signal
50 to travel from the output terminal
24b back to the input terminal
24a of the inverter
23.
[0046] Accordingly, the frequency of the wave
50, i.e the amount of times the phases
52a and
52b change within a given time unit, varies depending on the distance between the output
terminal
24b and the fret against which the conductive string is pressed. That is to say, if conductive
string
12f is pressed against fret
14e, the distance through which the output signal travels is less than the traveling distance
when the conductive string
12f is pressed against fret
14f. Thus, the frequency of the signal formed when the conductive string
12f is pressed against fret
14e is higher than that which is formed when the conductive string
12f is pressed against fret
14f.
[0047] It is appreciated that since the output signal is transmitted through the conductive
string
12f and back through the conductors
22, the actual traveling distance of the signal between the output terminal
24b back to the input terminal
24a is approximately twice the distance between inverter
23 and the fret against which the string is pressed.
[0048] The CPU module
35 contains a frequency detector that measures the frequency of the wave generated by
the alternating signal, and can further detect a change in the frequency resulting
from the change in the traveling distance of the signal, which occurs upon changing
the frets
14a-14f upon which the strings
12a-12f are pressed. The CPU module
35 is thus configured to determine upon which fret a conductive string is pressed in
accordance with the detected frequency.
[0049] If, for example, the signal travels at the speed of light (c), and the distance between
the inverter
23 and the fret against which the string is pressed is
d, the frequency of the square wave generated by the alternating output signal can
be represented as:

where
tf is the internal time delay of the inverter
23 and where

Accordingly, the pressure of strings
12a - 12f against one of the frets
14a -14f can be detected since each fret defines a specific distance from the inverter
23 (
d).
It is appreciated that detection of the fret against which the conductive string is
pressed can be carried out for any one of strings
12a -12f. However, since each one of strings
12a-12f is disposed at a different distance from the conductor
22, the varying distances may affect the frequency of the signal transmitted therethrough.
Thus, as mentioned previously, the fretboard
10 can include two conductors
22 and
22a, disposed along the outer longitudinal edges of the fretboard
10 and joined together at the input terminal
24a. The two conductors
22, 22a are disposed with respect to each one of the conductive strings
12a-12f such that the average of the distance thereof from each of the conductive strings
12a-12f is equal for all of the conductive strings. Thus, the two conductors
22, 22a provide a signal averaging, facilitating thereby an accurate detection of the frequency
changes resulting from the varying distances between the inverter
23 and the fret against which the string is pressed.
[0050] According to a different example, a single conductor
22 can be used, the CPU however can be configured to detect the string which is being
pressed and to calculate thereby the frequency, taking into consideration the distance
between the string and the conductor
22. Detecting the string which is being pressed can be carried out for example by a pressure
detector, or by receiving feedback from the demultiplexer
30. That is to say, the signal is transmitted back to the input terminal
24a only when the demultiplexer
30 is coupled to a conductive string which is currently being pressed. Thus, the demultiplexer
30 can provide the CPU with the data regarding the string which is being pressed, such
that the fret against which is being pressed can be detected in accordance with the
frequency of the signal taking into consideration the distance between string and
the conductor
22.
[0051] It is appreciated that the inverter
23 the demultiplexer
30, the CPU or any other electronic components can be disposed at any location on a string
instrument. For example these electronic components can be integrated in a module
which can be coupled to a string instruments, for example via a dedicated interface
on the instrument. This way, a module can be coupled to a string instrument when the
user wishes to receive indication regarding the notes and chords being played.
[0052] Fig. 2 is a block diagram of a fretboard
60 and detecting system
70 in accordance with another example of the invention. The fretboard
60 is substantially the same as the fretboard
10 of Fig. 1 and includes a plurality of conductive strings
62a-62f and a plurality of frets
64a-64f coupled to one or more conductors
68, 68a. Similarly, the detecting system
70 is substantially the same as the detecting system
20 of Fig. 1, and includes an inverter
73 having an input terminal
74a, an output terminal
74b and a demultiplexer
80 configured for selecting one of many data-output-lines
84a - 84f each of which being coupled to one of the conductive strings
62a through
62f.
[0053] According to the present example, the detecting system
70 further includes a capacitor
78 coupled to an input terminal
74a of the inverter
73. The capacitor
78 is configured such that a signal transmitted through the conductors
68, 68a, charge the capacitor which in return charges back the conductors, thus forming a
resonance therebetween. The resonance is in the form of an electric oscillation created
by the interaction between the capacitor
78, the conductor
68 and the conductive string which is being pressed against one of the frets
64a-64f. Due to the resistance of the conductors
68,68a and the conductive string
62a-62f. the electric oscillation is decayed following which the signal reaches the input
terminal
74a of the inverter
73. When the signal enters the inverter
73 the signal is inverted. For example, if the signal at the input terminal
74a is at a voltage corresponding to a logical
1, the inverter
73 inverts to the signal to the opposite logic-level thereof, i.e.
0, as explained hereinabove with respect to Figs. 1 and 3.
[0054] Similar oscillation occurs when the voltage corresponding to a logical 0 is transmitted
through the conductive string and the conductors
68. The electric oscillation is decayed following which the logical 0 signal reaches
the input terminal
74a of the inverter
73 where it is inverted back to logical
1.
[0055] Thus, as shown in the graph of Fig. 4, the signal can be represented as a square
wave, generally designated
90, alternating between a first phase
92a in which the voltage thereof corresponds to a logical
0, and a second phase
92b in which the voltage thereof corresponds to a logical
1. Each one of the first and second phases
92a and
92b includes a decay time, which can be represented as
T, which increases the wavelength of the signal at 2
T, due to the fact that the oscillation occurs twice in each wavelength, i.e. one time
for the logical
0 phase and a second time for the logical
1 phase. This results in a signal having larger wavelength, i.e. having a lower frequency,
such that detecting minor frequency changes is facilitated.
[0056] It is appreciated that according to other examples the detecting system can include
other electronic component for delaying the signal thereby increasing the wavelength,
for example a serial inductor or delay line.
[0057] Those skilled in the art to which the presently disclosed subject matter pertains
will readily appreciate that numerous changes, variations, and modifications can be
made without departing from the scope of the invention,
mutatis mutandis.
1. A detection system for detecting a musical note played on a string instrument having
a fret board provided with a plurality of conductive frets (14) and at least one conductive
string (12) extending along thereof, the detection system comprising:
at least one conductor coupled to each of said frets;
said detection system being characterized by
an inverter (23,73) having a first terminal coupled to said conductor (22) and a second
terminal coupled to the conductive string (12) , said inverter being configured to
logically invert a signal transmitted therethrough, such that when the conductive
string is pressed against one of said frets allowing thereby for a signal to be transmitted
therethrough, said signal is sequentially inverted between two logical states at a
frequency being dependent on the distance between said inverter and said fret;
a frequency detector (35) configured to measure said frequency; and,
a controller (35) configured for determining the location of said fret along the fretboard
in accordance with said frequency, and to thereby detect the musical note.
2. The detection system according to claim 1, wherein said inverter is configured to
select one of many data-output-lines each of which being configured to be coupled
to one conductive strings of a musical instrument having a plurality of conductive
strings extending long the fretboard thereof.
3. The detection system according to claim 2, further comprising a demultiplexer having
an input configured to receive an input signal from said inverter and an output configured
for selecting one of many data-output-lines each of which being coupled to one of
said plurality of conductive strings.
4. The detection system according to claim 1, wherein said first terminal of said inverter
is an input terminal and said second terminal is an output terminal and wherein said
inverter is configured to invert an input voltage corresponding to a logical 1 to an output voltage of corresponding to a logical 0.
5. The detection system according to claim 1, further comprising a controller being configured
to detect which one of said plurality of conductive strings is being pressed against
one of the plurality of frets.
6. The detection system according to any one of claims 1 to 5, further comprising a capacitor
coupled to said inverter and being configured to form a signal resonance in said signal
thereby delaying the signal for delaying the signal thereby increasing the wavelength
thereof.
7. A detection system according to claim 1, further comprising a demultiplexer having
an input configured for receiving an input signal from said inverter and an output
configured for selecting one of many data-output-lines each of which being coupled
to one of said plurality of conductive strings.
8. The detection system according to claim 1, wherein said inverter is configured to
select one of many data-output-lines each of which being configured to be coupled
to one conductive strings of a musical instrument having a plurality of conductive
strings extending long the fretboard thereof.
9. The detection system according to claim 8, further comprising a demultiplexer having
an input configured to receive an input signal from said inverter and an output configured
to select one of many data-output-lines each of which being coupled to one of said
plurality of conductive strings.
10. The detection system according to claim 1, further comprising a controller configured
to detect which one of said plurality of conductive strings is being pressed against
one of the plurality of frets.
11. The detection system according to claim 1, further comprising a capacitor configured
to form a signal resonance in said signal thereby delaying the signal and increasing
the wavelength thereof.
12. The detection system according to any one of claims 1 to 11 wherein said at least
one conductor includes two conductors disposed with respect to each one of said plurality
of conductive strings such that the average of the distance thereof from each of said
plurality of conductive strings is equal for all of said plurality of conductive strings.
13. A method for detecting a musical note played on a string instrument having a fretboard
provided with a plurality of conductive frets each of which being coupled to a conductor,
and at least one conductive string extending along the length of the fretboard, the
method comprising:
generating an electric signal through the conductive string, that can be transmitted
through one of the frets when the conductive string is pressed against the fret;the
method being characterized by logically inverting the signal by an inverter having a first terminal coupled to
the conductor and a second terminal coupled to the conductive string, such that when
the conductive string is pressed against one of said frets allowing thereby said signal
to be transmitted through the conductor, said signal sequentially inverted between
two logical states at a frequency dependent on the distance between said inverter
and said fret;
detecting said frequency by a frequency detector;
calculating the location of the fret along the fretboard in accordance with said frequency;
and,
determining the musical note played on the instrument in accordance with said location.
14. A fretboard of a string instrument in combination with a detecting system, said fretboard
having a plurality of conductive frets disposed at various locations along its length
and at least one conductive string extending over and spaced apart from the frets
along the length of the fretboard;
characterized by said detecting system comprising:
a conductor disposed along the length of the fretboard coupled to each of said frets;
an inverter having a first terminal coupled to said conductor and a second terminal
coupled to said at least one conductive string and being configured to logically invert
a signal transmitted therethrough such that when said at least one conductive string
is pressed against one of said frets allowing thereby a signal to be transmitted therethrough,
said signal is sequentially inverted between two logical states at a frequency dependent
on the distance between said inverter and said fret;
a frequency detector for measuring said frequency; and,
a controller for determining the location of said fret along the fretboard in accordance
with said frequency.
15. The combination according to claim 14 wherein said conductive string is configured
to receive a signal from said inverter and configured to allow transmitting therethrough
a low voltage current such that is not affected by a user's finger.
1. Ein Erfassungssystem zum Erfassen einer Musiknote, die auf einem Saiteninstrument
mit einem Griffbrett gespielt wird, das mit einer Mehrzahl leitfähiger Griffleisten
(14) versehen ist, und zumindest einer leitfähigen Saite, die sich entlang desselben
erstreckt, wobei das Erfassungssystem folgende Merkmale aufweist:
zumindest einen Leiter, der mit jeder der Griffleisten gekoppelt ist;
wobei das Erfassungssystem gekennzeichnet ist durch:
einen Inverter (23, 73) mit einem ersten Anschluss, der mit dem Leiter (22) gekoppelt
ist, und einem zweiten Anschluss, der mit der leitfähigen Saite (12) gekoppelt ist,
wobei der Inverter ausgebildet ist, um ein Signal, das durch denselben übertragen wird, logisch zu invertieren, so dass, wenn die leitfähige Saite
gegen eine der Griffleisten gedrückt wird, wodurch ermöglicht wird, das ein Signal
durch dieselbe übertragen wird, das Signal sequentiell zwischen zwei Logikzuständen bei
einer Frequenz invertiert wird, die von der Entfernung zwischen dem Inverter und der
Griffleiste abhängt;
einen Frequenzdetektor (35), der ausgebildet ist, um die Frequenz zu messen; und
eine Steuerung (35), die zum Bestimmen des Orts der Griffleiste entlang des Griffbretts
gemäß der Frequenz ausgebildet ist, um dadurch die Musiknote zu erfassen.
2. Das Erfassungssystem gemäß Anspruch 1, bei dem der Inverter ausgebildet ist, um eine
von vielen Datenausgangsleitungen auszuwählen, die jeweils ausgebildet sind, um mit
einer leitfähigen Saite eines Musikinstruments gekoppelt zu sein, das eine Mehrzahl
leitfähiger Saiten aufweist, die sich entlang des Griffbretts desselben erstrecken.
3. Das Erfassungssystem gemäß Anspruch 2, das ferner einen Demultiplexer mit einem Eingang,
der ausgebildet ist, um ein Eingangssignal von dem Inverter zu empfangen, und einem
Ausgang aufweist, der zum Auswählen einer von vielen Datenausgangsleitungen ausgebildet
ist, die jeweils mit einer der Mehrzahl leitfähiger Saiten gekoppelt sind.
4. Das Erfassungssystem gemäß Anspruch 1, bei dem der erste Anschluss des Inverters ein
Eingangsanschluss ist und der zweite Anschluss ein Ausgangsanschluss ist, und bei
dem der Inverter ausgebildet ist, um eine Eingangsspannung, die einer logischen 1
entspricht, in eine Ausgangsspannung zu invertieren, die einer logischen 0 entspricht.
5. Das Erfassungssystem gemäß Anspruch 1, das ferner eine Steuerung aufweist, die ausgebildet
ist, um zu erfassen, welche der Mehrzahl leitfähiger Saiten gerade gegen eine der
Mehrzahl von Griffleisten gedrückt wird.
6. Das Erfassungssystem gemäß einem der Ansprüche 1 bis 5, das ferner einen Kondensator
aufweist, der mit dem Inverter gekoppelt und ausgebildet ist, um eine Signalresonanz
in dem Signal zu bilden, wodurch das Signal zum Verzögern des Signals verzögert wird,
wodurch die Wellenlänge desselben erhöht wird.
7. Ein Erfassungssystem gemäß Anspruch 1, das ferner einen Demultiplexer mit einem Eingang,
der zum Empfangen eines Eingangssignals von dem Inverter ausgebildet ist, und einem
Ausgang aufweist, der zum Auswählen einer von vielen Datenausgangsleitungen ausgebildet
ist, die jeweils mit einer der Mehrzahl leitfähiger Saiten gekoppelt sind.
8. Das Erfassungssystem gemäß Anspruch 1, bei dem der Inverter ausgebildet ist, um eine
von vielen Datenausgangsleitungen auszuwählen, die jeweils ausgebildet sind, um mit
einer leitfähigen Saite eines Musikinstruments mit einer Mehrzahl leitfähiger Saiten
gekoppelt zu sein, die sich entlang des Griffbretts desselben erstrecken.
9. Das Erfassungssystem gemäß Anspruch 8, das ferner einen Demultiplexer mit einem Eingang,
der ausgebildet ist, um ein Eingangssignal von dem Inverter zu empfanden, und einem
Ausgang aufweist, der ausgebildet ist, um eine von vielen Datenausgangsleitungen auszuwählen,
die jeweils mit einer der Mehrzahl leitfähiger Saiten gekoppelt sind.
10. Das Erfassungssystem gemäß Anspruch 1, das ferner eine Steuerung aufweist, die ausgebildet
ist, um zu erfassen, welche der Mehrzahl leitfähiger Saiten gerade gegen eine der
Mehrzahl von Griffleisten gedrückt wird.
11. Das Erfassungssystem gemäß Anspruch 1, das ferner einen Kondensator aufweist, der
ausgebildet ist, um eine Signalresonanz in dem Signal zu bilden, wodurch das Signal
verzögert wird und die Wellenlänge desselben erhöht wird.
12. Das Erfassungssystem gemäß einem der Ansprüche 1 bis 11, bei dem der zumindest eine
Leiter zwei Leiter aufweist, die in Bezug auf jede der Mehrzahl leitfähiger Saiten
so angeordnet sind, dass die durchschnittliche Entfernung derselben von jeder der
Mehrzahl leitfähiger Saiten für alle der Mehrzahl leitfähiger Saiten gleich ist.
13. Ein Verfahren zum Erfassen einer Musiknote, die auf einem Saiteninstrument mit einem
Griffbrett gespielt wird, das mit einer Mehrzahl leitfähiger Griffleisten versehen
ist, die jeweils mit einem Leiter gekoppelt sind, und zumindest einer leitfähigen
Saite, die sich entlang der Länge des Griffbretts erstreckt, wobei das Verfahren folgenden
Schritt aufweist:
Erzeugen eines elektrischen Signals durch die leitfähige Saite, das durch eine der
Griffleisten übertragen werden kann, wenn die leitfähige Saite gegen die Griffleiste
gedrückt wird;
wobei das Verfahren gekennzeichnet ist durch logisches Invertieren des Signals durch einen Inverter mit einem ersten Anschluss,
der mit dem Leiter gekoppelt ist, und einem zweiten Anschluss, der mit der leitfähigen
Saite gekoppelt ist, so dass, wenn die leitfähige Saite gegen eine der Griffleisten
gedrückt wird, dadurch ermöglicht wird, dass das Signal durch den Leiter übertragen wird, wobei das Signal sequentiell zwischen zwei Logikzuständen
mit einer Frequenz invertiert wird, die von der Entfernung zwischen dem Inverter und
der Griffleiste abhängt.
Erfassen der Frequenz durch einen Frequenzdetektor;
Berechnen des Orts der Griffleiste entlang des Griffbretts gemäß der Frequenz; und
Bestimmen der Musiknote, die auf dem Instrument gespielt wird, gemäß dem Ort.
14. Ein Griffbrett eines Saiteninstruments in Kombination mit einem Erfassungssystem,
wobei das Griffbrett eine Mehrzahl leitfähiger Griffleisten aufweist, die an verschiedenen
Orten entlang seiner Länge angeordnet sind, und zumindest eine leitfähige Saite, die
sich über die Länge des Griffbretts erstreckt und von den Griffleisten entlang der
Länge desselben beabstandet ist;
gekennzeichnet dadurch:
dass das Erfassungssystem folgende Merkmale aufweist:
einen Leiter, der entlang der Länge des Griffbretts angeordnet ist und mit jeder der
Griffleisten gekoppelt ist;
einen Inverter mit einem ersten Anschluss, der mit dem Leiter gekoppelt ist, und einem
zweiten Anschluss, der mit der zumindest einen leitfähigen Saite gekoppelt ist, der
ausgebildet ist, um ein Signal, das durch denselben übertragen wird, logisch zu invertieren,
so dass, wenn die zumindest eine leitfähige Saite gegen eine der Griffleisten gedrückt
wird, wodurch ermöglicht wird, dass ein Signal durch dieselbe übertragen wird, das
Signal sequentiell zwischen zwei Logikzuständen mit einer Frequenz invertiert wird,
die von der Entfernung zwischen dem Inverter und der Griffleiste abhängt;
einen Frequenzdetektor zum Messen der Frequenz; und
eine Steuerung zum Bestimmen des Orts der Griffleiste entlang des Griffbretts gemäß
der Frequenz.
15. Die Kombination gemäß Anspruch 14, bei der die leitfähige Saite ausgebildet ist, um
ein Signal von dem Inverter zu empfangen, und ausgebildet ist, um zu ermöglichen,
dass ein Niederspannungsstrom so durch dieselbe übertragen wird, dass er durch einen
Finger eines Benutzers nicht beeinflusst wird.
1. Système de détection pour détecter une note musicale jouée sur un instrument à cordes
présentant une plaque de frettes munie d'une pluralité de frettes conductrices (14)
et au moins une corde conductrice (12) s'étendant le long de cette dernière, le système
de détection comprenant:
au moins un conducteur couplé à chacune desdites frettes;
ledit système de détection étant caractérisé par un inverseur (23, 73) présentant une première borne couplée audit conducteur (22)
et une deuxième borne couplée à la corde conductrice (12), ledit inverseur étant configuré
pour inverser logiquement un signal transmis à travers ce dernier, de sorte que, lorsque
la corde conductrice est poussée contre l'une desdites frettes, permettant ainsi qu'un
signal soit transmis à travers cette dernière, ledit signal soit inversé séquentiellement
entre deux états logiques à une fréquence qui dépend de la distance entre ledit inverseur
et ladite frette;
un détecteur de fréquence (35) configuré pour mesurer ladite fréquence; et
un contrôleur (35) configuré pour déterminer l'emplacement de ladite frette le long
de la plaque de frettes selon ladite fréquence, et pour ainsi détecter la note musicale.
2. Système de détection selon la revendication 1, dans lequel ledit inverseur est configuré
pour sélectionner l'une des nombreuses lignes de sortie de données, chacune d'elles
étant configurée pour être couplée à une corde conductrice d'un instrument de musique
présentant une pluralité de cordes conductrices s'étendant le long de sa plaque de
frettes.
3. Système de détection selon la revendication 2, comprenant par ailleurs un démultiplexeur
présentant une entrée configurée pour recevoir un signal d'entrée dudit inverseur
et une sortie configurée pour sélectionner l'une des nombreuses lignes de sortie de
données, chacune d'elles étant couplée à l'une de ladite pluralité de cordes conductrices.
4. Système de détection selon la revendication 1, dans lequel ladite première borne dudit
inverseur est une borne d'entrée et ladite deuxième borne est une borne de sortie
et dans lequel ledit inverseur est configuré pour inverser une tension d'entrée correspondant
à un 1 logique à une tension de sortie correspondant à un 0 logique.
5. Système de détection selon la revendication 1, comprenant par ailleurs un contrôleur
configuré pour détecter celle de ladite pluralité de cordes conductrices qui est poussée
contre l'une de la pluralité de frettes.
6. Système de détection selon l'une quelconque des revendications 1 à 5, comprenant par
ailleurs un condensateur couplé audit inverseur et configuré pour former une résonance
de signal dans ledit signal, retardant ainsi le signal pour retarder le signal, augmentant
ainsi sa longueur d'onde.
7. Système de détection selon la revendication 1, comprenant par ailleurs un démultiplexeur
présentant une entrée configurée pour recevoir un signal d'entrée dudit inverseur
et une sortie configurée pour sélectionner l'une des nombreuses lignes de sortie de
données, chacune étant couplée à l'une de ladite pluralité de cordes conductrices.
8. Système de détection selon la revendication 1, dans lequel ledit inverseur est configuré
pour sélectionner l'une des nombreuses lignes de sortie de données, chacune d'elles
étant configurée pour être couplée à une corde conductrice d'un instrument de musique
présentant une pluralité de cordes conductrices s'étendant le long de sa plaque de
frettes.
9. Système de détection selon la revendication 8, comprenant par ailleurs un démultiplexeur
présentant une entrée configurée pour recevoir un signal d'entrée dudit inverseur
et une sortie configurée pour sélectionner l'une des nombreuses lignes de sortie de
données, chacune d'elles étant couplée à l'une de ladite pluralité de cordes conductrices.
10. Système de détection selon la revendication 1, comprenant par ailleurs un contrôleur
configuré pour détecter celle de ladite pluralité de cordes conductrices qui est poussée
contre l'une de la pluralité de frettes.
11. Système de détection selon la revendication 1, comprenant par ailleurs un condensateur
configuré pour former une résonance de signal dans ledit signal, retardant ainsi le
signal et augmentant sa longueur d'onde.
12. Système de détection selon l'une quelconque des revendications 1 à 11, dans lequel
ledit au moins un conducteur comporte deux conducteurs disposés par rapport à chacune
de ladite pluralité de cordes conductrices de sorte que la moyenne de sa distance
par rapport à chacune de ladite pluralité de cordes conductrices soit égale pour l'ensemble
de ladite pluralité de cordes conductrices.
13. Procédé de détection d'une note musicale jouée sur un instrument à cordes présentant
une plaque de frettes munie d'une pluralité de frettes conductrices, chacune d'elles
étant couplée à un conducteur, et au moins une corde conductrice s'étendant le long
de la longueur de la plaque de frettes, le procédé comprenant le fait de:
générer un signal électrique à travers la corde conductrice qui peut être transmis
à travers l'une des frettes lorsque la corde conductrice est poussée contre la frette;
le procédé étant caractérisé par le fait d'inverser logiquement le signal par un inverseur présentant une première
borne couplée au conducteur et une deuxième borne couplée à la corde conductrice,
de sorte que, lorsque la corde conductrice est poussée contre l'une desdites frettes,
permettant ainsi que ce signal soit transmis à travers le conducteur, ledit signal
soit inversé séquentiellement entre deux états logiques à une fréquence qui dépend
de la distance entre ledit inverseur et ladite frette;
détecter ladite fréquence par un détecteur de fréquence;
calculer l'emplacement de la frette le long de la plaque de frettes selon ladite fréquence;
et
déterminer la note musicale jouée sur l'instrument selon ledit emplacement.
14. Plaque de frettes d'un instrument à cordes en combinaison avec un système de détection,
ladite plaque de frettes présentant une pluralité de frettes conductrices disposées
à différents emplacements le long de sa longueur et au moins une corde conductrice
s'étendant sur et à distance des frettes le long de la longueur de la plaque de frettes;
caractérisée par le fait que ledit système de détection comprend:
un conducteur disposé le long de la longueur de la plaque de frettes couplé à chacune
desdites frettes;
un inverseur présentant une première borne couplée audit conducteur et une deuxième
borne couplée à ladite au moins une corde conductrice et configurée pour inverser
logiquement un signal transmis à travers cette dernière de sorte que, lorsque ladite
au moins une corde conductrice est poussée contre l'une desdites frettes, permettant
ainsi qu'un signal soit transmis à travers cette dernière, ledit signal soit inversé
séquentiellement entre deux états logiques à une fréquence qui dépend de la distance
entre ledit inverseur et ladite frette;
un détecteur de fréquence destiné à mesurer ladite fréquence; et
un contrôleur destiné à déterminer l'emplacement de ladite frette le long de la plaque
de frettes selon ladite fréquence.
15. Combinaison selon la revendication 14, dans laquelle ladite corde conductrice est
configurée pour recevoir un signal dudit inverseur et configurée pour permettre la
transmission à travers cette dernière d'un courant basse tension qui n'est pas affecté
par le doigt d'un utilisateur.