Claims
- 1. Decoder apparatus for translating first and second composite signals L.sub.T and R.sub.T respectively containing, when present, dominant left front (L.sub.f) and right front (R.sub.f) signal components each including left back (L.sub.b) and right back (R.sub.b) signal components, when present, and wherein said L.sub.b signal components have substantially equal magnitude and are in substantially quadrature relationship with each other in said first and second composite signals and in one is in leading relationship with that in the other and wherein said R.sub.b signal components have substantially equal magnitude and are in substantially quadrature relationship with each other in said first and second composite signals and in one of said composite signals is in lagging relationship with that in the other, into four separate output signals respectively predominantly containing, when present, L.sub.f, R.sub.f, L.sub.b and R.sub.b signals, said apparatus comprising, in combination:
- a decoding matrix having first and second input terminals to which said L.sub.T and R.sub.T composite signals are respectively applied, and first, second, third and fourth output terminals,
- said matrix being operative to transfer substantially equal amounts of said L.sub.f, R.sub.f, L.sub.b and R.sub.b signal components, when present, as dominant signals to said first, second, third and fourth output terminals, respectively said L.sub.f and said R.sub.f signals each being accompanied by lower amplitude, quadrature-related L.sub.b and R.sub.b signal components with the L.sub.b and the R.sub.b components accompanying the L.sub.f and R.sub.f signals also being in quadrature with each other, and said L.sub.b and the R.sub.b signals each being accompanied by lower amplitude, quadrature-related L.sub.f and R.sub.f signal components with the L.sub.f and R.sub.f signal components accompanying the L.sub.b signal being in phase opposition to the R.sub.f and L.sub.f signal components accompanying the R.sub.b signal;
- first, second, third and fourth gain control amplifiers respectively connected to said first, second, third and fourth output terminals and each having input and output terminals and a control electrode,
- said gain control amplifiers each having a gain characteristic which varies with the control voltage applied to its control electrode and being normally operative at a first quiescent control voltage level which produces a first amplification factor lower than its full amplification by a selected amount, and having a time constant to cause it to respond relatively less rapidly to application of a negative-going control voltage,
- control circuit means connected to the output terminals of said decoding matrix and operative to compare the relative amplitudes and phase positions of the signals instantaneously present at said first, second, third and fourth output terminals and to produce a first control signal when the output signals at the third and fourth output terminals of the decoding matrix are of equal amplitude and out of phase or a second control signal when the output signals at the first and second output terminals of the decoding matrix are of equal amplitude and are out of phase, or both said first and second control signals,
- means for applying said first control signal, if present, to the control electrodes of said first and second gain control amplifiers, and
- means for applying said second control signal, if present, to the control electrodes of said third and fourth gain control amplifiers.
- 2. Apparatus in accordance with claim 1 wherein said control circuit means includes
- first and second combining junctions each having first and second input terminals and an output terminal, said first and second control signals, if present, appearing at the output terminal of said first and of said second combining junction, respectively, and
- first and second like signal-comparing networks respectively connected between the first and second output terminals of said decoding matrix and the first input terminal of both said summing junctions, and between the third and fourth output terminals of said decoding matrix and the second input terminal of both said summing junctions, said first and second networks each being operative to compare the relative amplitudes and phase positions of the signals present at the pair of decoding matrix output terminals to which they are respectively connected.
- 3. Apparatus in accordance with claim 2 wherein each of said signal-comparing networks includes
- circuit means for comparing the amplitudes of the two signals applied thereto and operative to produce an output signal only in response to a difference in amplitude between said two signals,
- circuit means for comparing the phase between the two signals applied thereto and operative to produce an output signal which increases from zero when the two signals are in phase to a maximum value when the two signals are 180.degree. out-of-phase, and
- a gate circuit operative in response to no output signal from said amplitude-comparing means to transfer an output signal, if present, from said phase-comparing means to corresponding input terminals of said first and second combining junctions.
- 4. Apparatus in accordance with claim 3 wherein said signal amplitude-comparing means includes means for separately rectifying said two signals, and
- a third signal combining junction operative to produce an output signal proportional to the difference in amplitude of the rectified signals.
- 5. Apparatus in accordance with claim 3 wherein said phase-comparing means includes a pair of clipping circuits to which said two signals are respectively applied, and
- a fourth signal combining junction to input terminals of which the output signals from said clipping circuits are applied and being operative to produce an output signal proportional to the phase displacement between said two signals.
- 6. Apparatus in accordance with claim 4 further including means for rectifying the output signal from said third signal combining junction and applying the rectified output signal to said gate circuit.
- 7. Apparatus in accordance with claim 6, further including means for rectifying the signal, if any, transferred by said gate circuit, and
- means for applying the rectified transferred signal to said first and second combining junctions.
- 8. Apparatus in accordance with claim 3 further including first and second wave-shaping networks through which said two signals are respectively applied to said amplitude-comparing means and said phase-comparing means.
- 9. Signal decoding apparatus comprising in combination:
- a decoder matrix for translating first and second composite signals respectively containing left front (L.sub.f) and right front (R.sub.f) signal components and each including quadrature-related left back (L.sub.b) and right back (R.sub.b) signal components, into first, second, third and fourth separate output signals respectively predominantly containing the L.sub.f, R.sub.f, L.sub.b and R.sub.b signal components, the dominant L.sub.f and R.sub.f signal components at the output of the decoder matrix each being accompanied by lower-amplitude quadrature-related L.sub.b and R.sub.b signal components and the dominant L.sub.b and R.sub.b signal components each being accompanied by lower-amplitude quadrature-related L.sub.f and R.sub.f signal components with the L.sub.f signal component accompanying the L.sub.b and R.sub.b signals being in phase opposition to the R.sub.f signal component accompanying the L.sub.b and R.sub.b signals;
- first, second, third and fourth gain-control amplifiers respectively connected to receive the said first, second, third and fourth output signals from said decoder matrix and each having a gain control terminal; and
- a control circuit connected to the output terminals of the decoder matrix and operative to compare the phase positions of the signals instantaneously present at the said output terminals to produce a first control signal when said third and fourth output signals are out-of-phase or a second control signal when said first and second output signals are out-of-phase, or both said first and second control signals, said control circuit being connected to apply the first control signal, if present, to the gain-control terminals of the first and second gain-control amplifiers for increasing the magnitudes of the first and second output signals relative to the magnitudes of the third and fourth output signals and to apply the second control signal, if present, to the gain-control terminals of the third and fourth gain-control amplifiers for increasing the magnitudes of the third and fourth output signals relative to the magnitudes of the first and second output signals.
- 10. Signal decoding apparatus in accordance with claim 9, wherein said control circuit includes a first signal-generating means responsive to a difference in phase between the L.sub.b and R.sub.b signals and to substantial equality of these signals to generate a first intermediate signal, a second signal-generating means responsive to a difference in phase of the L.sub.f and R.sub.f signals and to substantial equality of these signals to generate a second intermediate signal, and means responsive to the difference of the said first and second intermediate signals to generate the first and second control signals.
- 11. Apparatus in accordance with claim 10, wherein the control circuit further includes means for comparing the relative amplitudes of the signals instantaneously present at the said output terminals and is operative to increase the gain of the first and second gain-control amplifiers when the output signals at the third and fourth output terminals of the decoder matrix are equal and out of phase, and to increase the gain of the third and fourth gain-control amplifiers when the output signals at the first and second output terminals of the decoder matrix are equal and out of phase.
- 12. Apparatus in accordance with claim 9 wherein each gain-control amplifier responds more rapidly to the application of a gain-increasing control voltage than to a gain-decreasing control voltage.
- 13. Apparatus in accordance with claim 9 wherein said control circuit includes
- first and second signal-comparing networks respectively connected between the first and second output terminals of the decoder matrix and between the third and fourth output terminals of the decoder matrix, said first and second signal-comparing networks each bein operative to compare the relative amplitudes and phase positions of the signals present at the pair of decoder matrix output terminals to which they are respectively connected, and
- first and second signal-combining junctions each connected to receive the output of the first and second signal-comparing networks.
- 14. Apparatus in accordance with claim 13, wherein each of said signal-comparing networks includes
- a circuit for comparing the amplitudes of the two signals applied thereto and operative to produce an output signal only in response to a difference in amplitude between the said two signals,
- a circuit for comparing the phase between the two signals applied thereto and operative to produce an output signals which increases from zero when the two signals are in phase to a maximum value when the two signals are 180.degree. out-of-phase, and
- a gate circuit operative in response to an absence of output signal from the amplitude-comparing means to transfer an output signal, if present, from the phase-comparing means to the first and second signal-combining junctions.
- 15. Apparatus in accordance with claim 14, wherein the signal amplitude-comparing circuit includes means for separately rectifying the said two signals, and a third signal-combining junction operative to produce an output signal proportional to the difference in amplitude of the rectified signals.
- 16. Apparatus in accordance with claim 15, further including means for rectifying the output signal from the third signal-combining junction and applying the rectified output signal to the said gate circuit.
- 17. Apparatus in accordance with claim 16, further including means for rectifying the signal, if any, transferred by said gate circuit, and means for applying the rectified transferred signal to said first and second combining junctions.
- 18. Apparatus in accordance with claim 14, wherein said phase-comparing circuit includes a pair of clipping circuits to which the said two signals are respectively applied, and a further signal-combining junction to which the output signals from the clipping circuits are applied and which is operative to produce an output signal proportional to the phase displacement between the said two signals.
- 19. Apparatus in accordance with claim 14, further including first and second wave-shaping networks through which said two signals are respectively applied to said amplitude-comparing means and said phase-comparing means.
- 20. In apparatus for reproducing on four sound-reproduction devices an equal number of audio information signals contained in first and second composite signals each containing a separate one of said audio information signals as a predominant signal and the same two others of said audio information signals as subdominant signals in a predetermined phase relationship to each other, the combination comprising:
- means for deriving from said first and second composite signals third and fourth composite signals which repsectively contain as a predominant signal a different one of the two subdominant signals contained in said first and second composite signals and each of which contains as subdominant signals and in said predetermined phase relationship both of the signals appearing as dominant signals in said first and second composite signals by shifting the phase of one of said first and second composite signals relative to the other by a predetermined angle and selectively combining the relatively phase-shifted first and second composite signals,
- signal-coupling means connected to receive and operative to couple said first, second, third and fourth composite signals to respective ones of said sound-reproducing devices, said signal-coupling means including
- control signal generating means including first and second phase-comparing means operative to compare the relative phase of said first and second composite signals and of said third and fourth composite signals, respectively, and to produce a first control signal when said third and fourth composite signals are out-of-phase or a second control signal when said first and second composite signals are out-of-phase, or both said first and second control signals, each of said phase-comparing means including means for clipping said composite signals, and
- signal amplitude-modifying means connected to be controlled by said control signals so as to increase the relative predominance of the signal or signals applied to said sound-reproduction devices which instantaneously contain audio information signals which predominate relative to the other signals applied to said sound-reproduction devices.
- 21. The combination in accordance with claim 20, wherein said control signal generating means further includes
- means for comparing the relative amplitudes of said first and second and of said third and fourth composite signals, respectively, and is operative to cause said signal amplitude-modifying means to increase the amplitude of the composite signals coupled to the first and second sound-reproduction devices when the predominant signals contained in the composite signals coupled to the third and fourth sound-reproduction devices are equal and out of phase, and to increase the amplitude of the composite signals coupled to the third and fourth sound-reproduction devices when the predominant signals contained in the composite signals coupled to the first and second sound-reproduction devices are equal and out of phase.
- 22. The combination in accordance with claim 21, further including first, second, third and fourth wave-shaping networks through which said first, second, third and fourth composite signals are respectively applied to their respective phase-comparing means and amplitude-comparing means.
- 23. In apparatus for separately reproducing on four sound-reproducing devices four audio information signals each containing a separate one of said audio information signals as a predominant signal and the same two others of said audio information signals as subdominant signals in a preselected phase relationship with each other, the combination comprising:
- means for deriving from said first and second composite signals third and fourth composite signals which respectively contain as a predominant signal a different one of the two subdominant signals contained in said first and second composite signals and each of which contains as subdominant signals and in said preselected phase relationship both of the signals appearing as dominant signals in said first and second composite signals by shifting the phase of one of said first and second composite signals relative to the other by a predetermined angle and selectively combining the relatively phase-shifted first and second composite signals,
- signal amplitude-modifying means connected to receive and operative to couple said first, second, third and fourth composite signals to respective ones of said sound-reproducing devices,
- control signal generating means including first and second phase-comparing means operative to compare the relative phase of said first and second composite signals and of said third and fourth composite signals, respectively, and to produce a control signal having a polarity determined by the difference between the difference in phase between said first and second composite signals and the difference in phase between said third and fourth composite signals, and
- means for applying said control signal to the signal amplitude-modifying means receiving said first and second composite signals and for inverting and applying said control signal to the signal amplitude-modifying means receiving said third and fourth composite signals, said signal amplitude-modifying means being operative in response to said control signal to increase the relative predominance of the signal or signals applied to said sound-reproducing devices which instantaneously contain audio information signals which predominate relative to the other signals applied to said sound-reproducing devices.
- 24. Apparatus according to claim 23, wherein said control signal generating means further includes
- means for combining predetermined fractions of said first and second composite signals with said second and first composite signals, respectively, to produce first and second combined composite signals, and means for coupling said first and second combined composite signals to said first phase-comparing means, and
- means for combining predetermined fractions of said third and fourth composite signals with said fourth and third composite signals, respectively, to produce third and fourth combined composite signals, and means for coupling said third and fourth combined composite signals to said second phase-comparing means.
- 25. Apparatus according to claim 24, wherein said first and second phase-comparing means each includes means for sensing the zero-axis crossings of the two combined composite signals applied thereto and operative to produce respective rectangular waveform signals the leading and trailing edges of the half-cycles of each of which correspond to the zero-axis crossings in the positive-going and negative-going directions, respectively, of the respective combined composite signals,
- means for summing said rectangular waveform signals to produce a sum signal, and
- means for rectifying said sum signal and operative to produce a unidirectional signal proportional to the difference in phase of the applied combined composite signals.
- 26. Apparatus in accordance with claim 25, wherein said means for sensing zero-axis crossings comprises a pair of limiting amplifiers.
- 27. Apparatus according to claim 25, further including
- means for subtracting the sum signal produced by said second phase-comparing means from the sum signal produced by said first phase-comparing means and operative to produce a unidirectional control signal of a first polarity when either of said first and second combined composite signals instantaneously contains audio information signals which predominate relative to the other signals applied to said sound-reproducing devices, and to produce a unidirectional control signal of opposite polarity when either of said third or fourth combined composite signals instantaneously contains audio information signals which predominate relative to the other signals applied to said sound-reproducing devices.
- 28. Apparatus according to claim 27, wherein said means for applying said control signal to said signal amplitude-modifying means includes
- first circuit means including a first limiting amplifier having predetermined positive and negative control voltage levels and connected to couple said unidirectional control signal to the signal amplitude-modifying means receiving said first and second composite signals, and
- second circuit means including means for inverting said unidirectional control signal and a second limiting amplifier having said predetermined positive and negative control voltages and connected to couple said inverted unidirectional control signal to the signal amplitude-modifying means receiving said third and fourth composite signals.
- 29. In apparatus for reproducing on four sound-reproducing devices four directional audio information signals respectively designated L.sub.f, R.sub.f, L.sub.b and R.sub.b contained in first and second composite signals respectively containing to the extent they are present dominant L.sub.f and R.sub.f component signals and each including to the extent they are present subdominant L.sub.b and R.sub.b component signals, with the L.sub.b and R.sub.b component signals in one of said composite signals in quadrature relationship with the corresponding component signals in the other composite signal, the combination comprising:
- means for deriving from said first and second composite signals third and fourth composite signals which respectively contain said L.sub.b and R.sub.b component signals as their predominant component and each of which contains said L.sub.f and R.sub.f component signals as subdominant components in quadrature relationship with each other by shifting the phase of one of said first and second composite signals relative to the other by about 90.degree. and selectively combining the relatively phase-shifted first and second composite signals.
- signal amplitude-modifying means connected to receive and operative to couple said first, second, third and fourth composite signals to respective ones of said sound-reproducing devices,
- control signal generating means including first and second phase-comparing means operative to compare the relative phase of said first and second composite signals and the relative phase of said third and fourth composite signals, respectively, and to produce a control signal having a polarity determined by the difference between the difference in phase between said first and second composite signals and the difference in phase between said third and fourth composite signals,
- means for applying said control signal to the signal amplitude-modifying means receiving said first and second composite signals, and
- means for inverting and applying said control signal to the signal amplitude-modifying means receiving said third and fourth composite signals,
- said signal amplitude-modifying means being controlled by said control signal so as to increase the relative prodominance of the signal or signals applied to said sound-reproducing devices which instantaneously contain audio information signals which predominate relative to the other signals applied to said sound-reproducing devices.
- 30. Apparatus according to claim 29, wherein said control signal generating means further includes
- means for combining predetermined fractions of said first and second composite signals with said second and first composite signal, respectively, to produce first and second combined composite signals, and means for coupling said first and second combined composite signals to said first phase-comparing means, and
- means for combining predetermined fractions of said third and fourth composite signals with said fourth and third composite signals, respectively, to produce third and fourth combined composite signals, and means for coupling said third and fourth combined composite signals to said second phase-comparing means.
- 31. A decoder for use in a directional sound system, wherein at least four directional audio input signals are encoded into first and second composite signals and the composite signals decoded into at least four audio output signals corresponding to said audio input signals, said composite signals each containing a separate one of said audio input signals as a predominant signal and at least the same two others of said audio information signals as subdominant components, said decoder comprising:
- decoding circuit means for converting said first and second composite signals into four output signals, each of said output signals containing a predominant component corresponding to a different one of said audio input signals and at least two subdominant components,
- means including phase measuring means for generating first and second control signals having amplitudes related to the directional predominance of the audio input signals contained in said first and second composite signals, and
- means for controlling said decoding circuit means in accordance with said control signals so as to increase the predominance of the output signal or signals which instantaneously contain audio input signals which predominate relative to the other output signals.
- 32. A decoder for use in a directional sound system wherein at least four directional audio input signals are encoded into first and second composite signals and the two composite signals are decoded into at least four audio output signals corresponding to said audio input signals, said composite signals each containing a separate one of said audio input signals as a predominant signal and the same two others of said audio input signals as subdominant signals in preselected amplitude and phase relationship with each other, said decoder comprising:
- control signal generating means including phase measuring means responsive to the directional predominance of individual ones of the audio input signals contained in said first and second composite signals for producing first and second control signals, and
- circuit means having first and second input terminals connected to receive said first and second composite signals, respectively, and first, second, third and fourth output terminals, said circuit means including matrix means connected to said input terminals for producing four audio output signals each containing a predominant component corresponding to a different one of said audio input signals and at least two subdominant signals and signal-modifying means connected to receive said four audio output signals for coupling said output signals to respective ones of said first, second, third and fourth output terminals,
- said signal-modifying meand being responsive to said first and second control signals for modifying said output signals so as to increase the predominance of the output signal or signals which contain audio signals which predominate relative to the other output signals.
- 33. Apparatus according to claim 32, wherein said means responsive to the directional predominance of individual ones of the audio input signals contained in said first and second composite signals includes first and second phase-comparing means respectively operative to compare the relative phase of said first and second output signals and the relative phase of said third and fourth output signals and to produce a control signal having a polarity determined by the difference between the difference in phase between said first and second output signals and the difference in phase between said third and fourth output signals.
- 34. Decoding apparatus for use in a directional sound system wherein at least four directional audio input signals are encoded into first and second composite signals and the two composite signals are decoded into at least four audio output signals corresponding to said audio input signals, said composite signals each containing a separate one of said audio input signals as a predominant signal and the same two other ones of said audio input signals as subdominant signals in preselected amplitude and phase relationship with each other, said decoding apparatus comprising:
- matrix decoding means for converting said first and second composite signals into four output signals, each of said output signals containing a predominant component corresponding to a different one of said audio input signals and at least two subdominant components,
- signal amplitude-modifying means connected to receive said four output signals,
- control signal generating means including means for measuring the phase relationship between first and second of said output signals and between third and fourth of said output signals for generating a control signal having a polarity determined by the difference between the difference in phase between said first and second output signals and the difference in phase between said third and fourth output signals, said control signal being a measure of the directional predominance of the audio input signals contained in said first and second composite signals, and
- means for applying said control signal with one polarity to the signal amplitude-modifying means receiving said first and second output signals and with the opposite polarity to the signal amplitude-modifying means receiving said third and fourth output signals, said signal amplitude-modifying means being controlled by said control signal so as to increase the predominance of the output signal or signals which contain audio signals which predominate relative to the other output signals.
- 35. Decoding apparatus in accordance with claim 34, wherein the means for measuring the phase relationship between the first and second output signals and between the third and fourth output signals each comprises:
- phase-comparing means to which said output signals are applied and including means for sensing the zero-axis crossing of the two applied signals and operative to produce respective rectangular waveform signals, the leading and trailing edges of the half-cycles of each of which correspond to the zero-axis crossings in the positive-going and negative-going directions, respectively, of said signals,
- means for summing the rectangular waveform signals, and
- means for rectifying the output of the summing means to produce a unidirectional control signal proportional to the difference in phase of the output signals applied to the phase-comparing means.
Parent Case Info
This is a continuation of now abandoned application Ser. No. 351,938, filed Apr. 17, 1973 as a continuation-in-part of application Ser. No. 177,003 filed Sept. 1, 1971, now abandoned, and of application Ser. No. 155,976, filed June 23, 1971, now U.S. Pat. No. 3,798,373, both in the name of Benjamin B. Bauer.
US Referenced Citations (5)
Continuations (1)
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351938 |
Apr 1973 |
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Continuation in Parts (1)
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177003 |
Sep 1971 |
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