Claims
- 1. A decoder for decoding two or more channel signals in a directional information system wherein at least four input signals containing directional information are encoded into the two or more channel signals, said decoder comprising:
- first means for generating at least a first dominance signal indicative of the ratio of the amplitudes of a pair of the channel signals;
- second means for generating at least a second dominance signal indicative of the ratio of the amplitudes of the sum of and the difference between said pair of the channel signals; and
- matrix means responsive to said two or more channel signals and to said at least two dominance signals for generating a plurality of output signals for which directional effects of the output signals are enhanced, wherein the first dominance signal D.sub.LR and the second dominance signal D.sub.CS are given by: ##EQU9## where L.sub.T, R.sub.T are two channel signals
- P=L.sub.T +R.sub.T, M=L.sub.T -R.sub.T ;
- and a, k are constants.
- 2. The decoder of claim 1, further comprising an averaging means for applying an average value of the dominance signals over a preceding time period to the matrix means, so that the directional enhancement of the output signals by the matrix means is in accordance with the average value of the dominance signals.
- 3. The decoder of claim 2, wherein the averaging means has two different time constants, one time constant being operative when at least one dominance signal has an amplitude greater than a threshold value and the other time constant being operative when neither of the dominance signals have an amplitude above said threshold value.
- 4. The decoder of claim 3, wherein said averaging means comprises:
- a variable resistor whose resistance varies inversely with the amplitudes of the dominance signals, said resistor connected between the first or second dominance signal generating means and the matrix means; and
- an impedance means forming a low pass filter configuration with the resistor.
- 5. The decoder of claim 4, wherein said variable resistor is a transconductance amplifier.
- 6. The decoder of claim 4, wherein said impedance means comprises:
- a first and a second capacitor means connected in series between ground and a first point in the connection between the variable resistor and the matrix means;
- a first resistor means forming a charge path for the first capacitor means, the first capacitor means having a capacitance much smaller than that of the second capacitor means so that the voltage across the first capacitor means responds more quickly than that across the second capacitor means to changes in the amplitudes of the dominance signals, so that when dominance signals increase in amplitudes, the averaging means will respond mainly to the voltage across the first capacitor means, thereby enabling the decoder to use the dominance signals to steer the decoder.
- 7. The decoder of claim 6, said decoder further comprising means for discharging the second capacitor means so that when the amplitudes of both dominance signals decrease to substantially zero, the first capacitor means is discharged through the first resistor means in a much shorter time than the second capacitor means, so that the directional enhancement of the output signals by the matrix means is substantially determined by the voltage across the second capacitor means before the second capacitor means has been discharged, and so that no directional enhancement is applied when the second capacitor means has been substantially discharged.
- 8. The decoder of claim 1, further comprising a threshold detection means for detecting the amplitudes of the dominance signals, an averaging means and a switch, wherein the threshold detection means causes an average value of the dominance signals over a preceding time period to be applied to the matrix means upon detecting that the amplitudes of the dominance signals are below a predetermined threshold, so that the directional enhancements are determined by the average value.
- 9. The decoder of claim 1, wherein said matrix means includes means for deriving four directional control signals E.sub.L, E.sub.R, E.sub.C, E.sub.S according to the following equations: ##EQU10##
- 10. The decoder of claim 9, wherein the matrix means generates the four output signals L', R', C', S', so that the four signals are defined by means of the equations below: ##EQU11## where V is a 1 by 5 matrix;
- G.sub.L, G.sub.R, G.sub.C, G.sub.S are 5 by 2 matrices of predetermined coefficients;
- b is a constant and
- F.sub.L, F.sub.R, F.sub.C, F.sub.S are given by:
- F.sub.L =a.sup.b.E L
- F.sub.R =a.sup.b.E R
- F.sub.C =a.sup.b.E C
- F.sub.S =a.sup.b.E S.
- 11. The decoder of claim 10, wherein the value of b is about 0.839.
- 12. The decoder of claim 10, wherein the G.sub.L, G.sub.R, G.sub.C, G.sub.S matrices are as follows: ##EQU12##
- 13. The decoder of claim 10, wherein the G.sub.L, G.sub.R, G.sub.C, G.sub.S matrices are derived from four equations Q.times.G.sub.L =H.sub.L, Q.times.G.sub.R =H.sub.R, Q.times.G.sub.C =H.sub.C, Q.times.G.sub.S =H.sub.S, where ##EQU13##
- 14. The decoder of claim 10, wherein the matrix means further comprises:
- means for generating 8 product signals wherein each of the product signals is the product of either L.sub.T or R.sub.T with one of 4 signals F.sub.L, F.sub.C, F.sub.R, F.sub.S ; and
- means for adding weighted sums of the eight product signals to obtain output signals L', C', R', S'.
- 15. The decoder of claim 14, wherein said matrix means includes eight voltage controlled amplifiers for generating the eight product signals.
- 16. The decoder of claim 10, wherein the matrix means further comprises:
- means for generating the 4 signals F.sub.L, F.sub.C, F.sub.R, F.sub.S from E.sub.L, E.sub.R, E.sub.C, E.sub.C ; and
- means for performing the matrix multiplications V.times.G.sub.L, V.times.G.sub.R, V.times.G.sub.C, V.times.G.sub.S.
- 17. A decoder for decoding two or more channel signals in a directional information system wherein at least four input signals containing directional information are encoded into the two or more channel signals, said decoder comprising:
- means for adding the two or more channel signals to provide a summed signal;
- low pass filter means for passing low frequency components of the summed signal which are the components of the summed signal below a predetermined frequency;
- means for deriving a control signal in response to the directional information in the high frequency components of the channel signals, said high frequency components of the channel signals being components above the predetermined frequency; and
- matrix means responsive to the control signal and the channel signals for generating a plurality of output signals for which directional effects of the output signals are enhanced, so that the directional enhancement is substantially independent of the low frequency components of the channel signals;
- high pass filter means for passing high frequency components of each of the output signals of the matrix means, said high frequency components of the output signals being components above the predetermined frequency; and
- means for adding a predetermined portion of the low frequency components to each of two or more of the output signals passed by the high pass filter means so that the low frequency components are evenly distributed among the two or more output signals.
- 18. The decoder of claim 17, wherein the control signal deriving means comprises:
- first means for generating at least a first dominance signal indicative of the ratio of the amplitudes of the high frequency components of a first channel signal to those of a second channel signal; and
- second means for generating at least a second dominance signal indicative of the ratio of the amplitudes of the sum of and the difference between the high frequency components of the first and second channel signals.
- 19. The decoder of claim 18, wherein the first dominance signal is substantially proportional to the logarithm of the ratio of the amplitudes of the high frequency components of the two channel signals and the second dominance signal is substantially proportional to the logarithm of the ratio of the amplitudes of the sum of and difference between the high frequency components of the two channel signals.
- 20. The decoder of claim 17, wherein said adding means includes:
- an attenuator for attenuating the low frequency components passed by the low pass filter to approximately 1/3 the power level of the unattenuated power level of such components, and
- two or more summers for adding the attenuated low frequency components to each of two or more output signals passed by the high pass filter means.
- 21. The decoder of claim 17, wherein the predetermined frequency is about 150 Hz.
- 22. A decoder for decoding two or more channel signals in a directional information system wherein at least four input signals containing directional information are encoded into the two or more channel signals, said decoder comprising:
- means for separating each of a plurality of channel signals into a high frequency portion having frequency components above a separation frequency and a low frequency portion having frequency components below the separation frequency;
- two matrix circuits, one for decoding the high frequency portions of the channel signals into high frequency portions of a plurality of output signals, and the other for decoding the low frequency portions of the channel signals into low frequency portions of said plurality of output signals, said matrix means for decoding the high frequency portions of the channel signals generating a first dominance signal indicating the dominance in amplitude among the high frequency portions of the sum of and difference between the two or more channel signals, said matrix means for decoding the low frequency portions of the channel signals generating a second dominance signal indicating the dominance in amplitude among the low frequency portions of the sum of and difference between the two or more channel signals, said two matrix circuits providing respectively the high and low frequency portions of a plurality of output signals;
- means for comparing the first and second dominance signals to generate a control signal, said separation means responsive to the control signal by sliding the separation frequency so that the amplitude of the second dominance signal bears a substantially constant ratio to that of the first dominance signal.
- 23. The decoder of claim 22, further comprising:
- means for adding the corresponding high and low frequency portions of each output signal to provide said plurality of output signals.
- 24. The decoder of claim 23, further comprising:
- low pass filter means for passing low frequency components of the two or more channel signals which are below a predetermined frequency;
- high pass filter means for filtering said plurality of output signals, said high pass filter means having a cut off frequency substantially the same as that of said low pass filter; and
- means for adding a predetermined portion of the components passed by the low pass filter means to each of two or more of the output signals so that low frequency components are evenly distributed among the two or more output signals.
- 25. The decoder of claim 24, further comprising:
- band pass filter means for filtering the channel signals before said channel signals are applied to the two matrix circuits.
- 26. The decoder of claim 22, wherein the dominance signal comparing means is a voltage controlled amplifier whose gain is controlled by the magnitude of the second dominance signal, so that when the second dominance signal has a small amplitude, the separation frequency remains substantially unchanged.
- 27. The decoder of claim 22, wherein said separation means is a crossover filter.
- 28. The decoder of claim 22, wherein said ratio of the amplitude of the second dominance signal to that of the first is about 10.
- 29. A decoder for decoding two or more channel signals in a directional information system wherein at least four input signals containing directional information are encoded into the two or more channel signals, said decoder comprising:
- means for separating each of a plurality of channel signals into a high frequency portion having frequency components above a separation frequency and a low frequency portion having frequency components below the separation frequency;
- two matrix circuits, one for decoding the high frequency portions of the channel signals into the high frequency portions of a plurality of output signals, and the other for decoding the low frequency portions of the channel signals into the low frequency portions of the plurality of output signals; and
- means for detecting the frequency range of signals destined for a selected output channel of the decoder, said detecting means generating a control signal indicative of the top end of the frequency range, said separating means being responsive to said control signal for sliding the separation frequency so that it coincides substantially with the top end of the frequency range.
- 30. The decoder of claim 29, further comprising means for adding the corresponding high and low frequency portions of each output signal.
- 31. The decoder of claim 29, wherein said separation means is a crossover filter.
- 32. A method for decoding two or more channel signals using a directional information system wherein at least four input signals containing directional information have been encoded into the two or more channel signals, said method comprising:
- generating at least a first dominance signal indicative of the ratio of the amplitudes of a pair of the channel signals;
- generating at least a second dominance signal indicative of the ratio of the amplitudes of the sum of and the difference between said pair of the channel signals; and
- generating a plurality of output signals for which directional effects of the output signals are enhanced in response to said two or more channel signals and to said at least two dominance signals, wherein the first dominance signal D.sub.LR and the second dominance signals D.sub.CS are given by ##EQU14## where L.sub.T, R.sub.T are two channel signals
- P=L.sub.T +R.sub.T, M=L.sub.T -R.sub.T ;
- and a, k are constants.
- 33. The method of claim 32, wherein said output signals generating step further includes deriving four directional control signals E.sub.L, E.sub.R, E.sub.C, and E.sub.S according to the following equations: ##EQU15##
- 34. The method of claim 33, wherein the output signals generating step generates four output signals L', R', C', S', so that the four output signals are defined by means of the equations below: ##EQU16## where: V is a 1 by 5 matrix [1 F.sub.L F.sub.C F.sub.R F.sub.S ];
- G.sub.L, G.sub.R, G.sub.C, G.sub.S are 5 by 2 matrices of predetermined coefficients;
- b is a constant and
- F.sub.L, F.sub.R, F.sub.C, F.sub.S are given by:
- F.sub.L =a.sup.b.E.sbsp.L
- F.sub.R =a.sup.b.E.sbsp.R
- F.sub.C =a.sup.b.E.sbsp.C
- F.sub.S =a.sup.b.E.sbsp.S.
- 35. The method of claim 34, wherein the G.sub.L, G.sub.R, G.sub.C, G.sub.S matrices are as follows: ##EQU17##
- 36. The method of claim 34, further comprising the step of deriving the G.sub.L, G.sub.R, G.sub.C, G.sub.S matrices from four equations Q.times.G.sub.L =H.sub.L, Q.times.G.sub.R =H.sub.R, Q.times.G.sub.C =H.sub.C, Q.times.G.sub.S =H.sub.S, where ##EQU18##
- 37. The method of claim 34, wherein the output signals generating step further comprises:
- generating 8 product signals wherein each of the product signals is the product of either L.sub.T or R.sub.T with one of 4 signals F.sub.L, F.sub.C, F.sub.R, F.sub.S ; and
- adding weighted sums of the eight product signals to obtain output signals L', C', R', S'.
- 38. The method of claim 34, wherein the output signals generating step further comprises:
- generating the 4 signals F.sub.L, F.sub.C, F.sub.R, F.sub.S from E.sub.L, E.sub.R, E.sub.C, E.sub.C ; and
- performing the matrix multiplications V.times.G.sub.L, V.times.G.sub.R, V.times.G.sub.C, V.times.G.sub.S.
CROSS REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part application of Ser. No. 708,982, entitled "Variable Matrix Decoder" by Douglas Evan Mandell and Craig C. Todd, filed Mar. 7, 1985, now abandoned.
US Referenced Citations (28)
Non-Patent Literature Citations (2)
Entry |
"Four Channels and Compatibility" by Peter Scheiber, Journal of the Audio Engineering Society, Apr. 1971, vol. 19, No. 4, pp. 267-279. |
"Surround Sound in the Eighties--Advances in Decoder Technology" by Martin E. G. Willcocks presented at the 74th Convention of the Audio Engineering Society, Oct. 1983, N.Y. |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
708982 |
Mar 1985 |
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