US3822365A - Compatible four channel fm system - Google Patents

Compatible four channel fm system Download PDF

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US3822365A
US3822365A US00319939A US31993972A US3822365A US 3822365 A US3822365 A US 3822365A US 00319939 A US00319939 A US 00319939A US 31993972 A US31993972 A US 31993972A US 3822365 A US3822365 A US 3822365A
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signal
frequency
pilot signal
channel
audio signals
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US00319939A
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L Dorren
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Panasonic Holdings Corp
Panasonic Corp of North America
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Matsushita Electronics Corp
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Priority to US05/482,415 priority patent/US3967069A/en
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Priority to US05/649,153 priority patent/US4190737A/en
Assigned to MATSUSHITA ELECTRIC CORPORATION OF AMERICA reassignment MATSUSHITA ELECTRIC CORPORATION OF AMERICA ASSIGNMENT OF ASSIGNORS INTEREST. Assignors: QUADRACAST SYSTEMS, INC., A CORP OF CA.
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04HBROADCAST COMMUNICATION
    • H04H20/00Arrangements for broadcast or for distribution combined with broadcast
    • H04H20/86Arrangements characterised by the broadcast information itself
    • H04H20/88Stereophonic broadcast systems
    • H04H20/89Stereophonic broadcast systems using three or more audio channels, e.g. triphonic or quadraphonic

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  • a four channel audio system is provided which is fully compatible with standard FM stereo and mono equipment.
  • a switching or sampling system is employed so that four audio channels are transmitted by the FM station.
  • These four channels are designated left front, right front, left rear and right rear and are sometimes hereinafter abbreveiated LF, RF, LR and RR, respectively.
  • these four channels are superimposed on the 38 kHz subcarrier and the usual 19 kHz pilot signal is used as a switching signal.
  • the left front and right front information is transmitted while during the second half cycle, the left rear and right rear information is transmitted.
  • the 19 kHz pilot is then used as a switching signal between the front and rear information as is hereinafter described in detail while the 38 kHz signal switches between left and right in the usual manner.
  • This system has the advantage of not requiring an increase in bandwidth, not requiring any additional pilot or subcarrier frequencies and permits the radio station to continue to use its normal 67 kHz subcarrier for SCA purposes.
  • this embodiment does not ordinarily permit the use of the full frequency spectrum for front and back information so that it is sometimes preferable to provide another subcarrier to carry the front and rear information.
  • the 19 kHz pilot signal is quadrupled and this quadrupled signal is used for switching between front and back information.
  • Both embodiments of the present invention are completely compatible with present mono and stereo equipment.
  • the main channel carries all four audio channels so that on a mono receiver the four signals are combined.
  • On a stereo receiver the left and the right information is extracted in the usual manner and it is only with the receiver equipped for four channel reception that the signal produced by the system of the present invention is broken into its four components.
  • the system utilizing the 76 kHz switching signal has the additional advantage that there is a complete reproduction of the full audio bandwidth by each of the four channels.
  • FIG. 1 is a block diagram of a transmitter embodying the present invention.
  • FIG. 2 is a block diagram of a receiver embodying the present invention.
  • FIG. 3 is an analogy diagram of one of the encoders shown in FIG. 1.
  • FIG. 4 is a similar diagram of one of the decoders utilized in FIG. 2.
  • FIG. 5 is a spectrum diagram of the signal employed during the transmission of front channel-information.
  • FIG. 6 is a similar diagram showing the signal employed during the transmission of rear channel information.
  • FIG. 7 is a diagram of the composite wave form employed.
  • FIG. 8 is a block diagram showing how combiner networks can be employed with the encoders to eliminate beat notes.
  • FIG. 9 is a block diagram showing a limiter circuit which is desirable to employ with certain types of FM receivers.
  • FIGS. 1 through 9 relate to an embodiment wherein the 19 kHz pilot signal is employed to switch between front and rear information.
  • the following figures relate to that embodiment of the invention wherein a 76 kHz subcarrier and switching signal is employed.
  • FIG. 10 is a wave form of that embodiment of the invention wherein a 76 kHz subcarrier is employed.
  • FIG. 11 is a band distribution diagram of the system using the 76 kHz subcarrier.
  • FIG. 12 is a block diagram of the encoder employed with the 76 kHz subcarrier system.
  • FIG. 13 is a block diagram of the receiver employed with the system.
  • FIG. 14 is a switch analogy for the transmitter.
  • FIG. 15 is a switch analogy for the receiver.
  • FIGS. 1 through 9 illustrate that embodiment of the invention employing a 19 kHz switching signal.
  • the authorized stereophonic system used in the United States includes a multiplex signal wherein left and right channel information is carried on a single carrier wave.
  • the composite signal includes a main channel signal on the carrier frequency which contains both the right and left hand signals.
  • a suppressed carrier double side band signal is provided on a subcarrier at 38 kHz which carries the left minus right signal.
  • a 19 kHz pilot signal is provided for phase lock of the 38 kHz side bands.
  • S.C.A. subsidiary communication authorization
  • this embodiment of the invention is carried out by employing the 19 kHz pilot signal as a switching signal to switch between front and back information to provide for front and back as well as left and right signals.
  • FIGS. 1 and 3 The method of transmitting the signal is shown in FIGS. 1 and 3.
  • a standard multiplex exciter 8 is employed, and this generates a 19 kHz pilot signal which serves as the switching signal for the front and rear information.
  • This signal is passed through lead 10 to diodes 12 and 14 and alternate half cycles are passed by leads l3 and 15 to the encoders l7 and 19.
  • One of these encoders is shown in analog form in FIG. 3 and consists of switches 16 and 18.
  • the encoder has a line 20 leading to switch 16 for front information and a line 22 leading to switch 18 for rear information and a common output line 24.
  • the switches are actuated by pulses from lines 13 and 15 respectively.
  • switch 16 is closed so that the front information is fed through line 24 while on the following negative half cycle, switch 18 is closed so that the rear information is fed through line 24.
  • the other encoder is not described since it operates in exactly the same way with the right front and rear information.
  • the left information is fed through line 24 to the multiplex exciter 8 while the corresponding right channel information is fed through line 26 to the exciter.
  • the signal generated by the exciter is then fed to the transmitter 28.
  • FIG. 5 represents the signal as it is being transmitted during the first or positive half cycle of the 19 kHz signal. It will be seen that a O frequency (zero in this sense represents the nominal carrier frequency of the FM station) there is present up to kHz, a signal representing the left front plus right front information. Centered on 38 kHz is the left front minus right front information.
  • FIG. 6 the signal is shown during the second or negative half cycle of the 19 kHz signal. During this half cycle, the main channel is carrying the left plus right information but in this case it is the rear information while similarly centered on 38 kHz the left minus right information is sent but here again it is the rear information. It will be seen that in both instances, there is no interference with the normal S.C.A. signal.
  • the method of receiving a signal is shown in FIGS. 2 and 4.
  • the signal is received on an ordinary FM tuner 30 and fed to a standard multiplex demodulator 32.
  • the 19 kHz signal is taken from line 34 and passed to diodes 36 and 38 and the rectifier I9 kHz pulses are passed through lines 40 and 42 to the decoders 44 and 46.
  • the left and right channel information is taken from the demodulator 32 and passed through lines 48 and 50 to the respective decoders.
  • the upper switch is actuated by the positive half cycles from line 40 while the lower switch is operated by the negative half cycles from line 42 so that the decoder switches between the front and the right front on positive and negative pulses of the 19 kHz signal.
  • the signals are then taken from the decoder and amplified in the usual way. At the same time, the ight channel information is handled in the same manner by the decoder 46.
  • low pass filters which pass only frequencies below 15 kHz are employed in the input leads to the encoders, i.e., leads and 22 of encoder 17 and the corresponding leads of the right hand encoder 19. Similar low pass filters are also employed in the output leads of decoders 44 and 46.
  • FIG. 7 represents one complete cycle of the 19 kHz signal and two complete cycles of the 38 kHz subcarrier.
  • front information exclusively is being sent both on the main channel and on the 38 kHz subcarrier.
  • this is a combination of the left front and right front information while on the 38 kHz subcarrier, left front information is being sent on the upper side band and right front information on the lower side band.
  • the main channel carrying left rear plus right rear information while on the 38 kHz signal
  • left rear information is carried on the upper side band while right rear information is carried on the lower side band.
  • This combining network combines all frequencies above 4 kHz so that for the higher frequencies, the information is carried on both the front and the rear channels. At frequencies under 4 kHz there is a separation between front and back. This gives very good presence since it has been found that a great deal of the separation presence occurs below 4 kHz.
  • the 19 kHz signal in the case of such receiver is not a clean 19 kHz but has certain modulation components imposed thereon.
  • the 19 kHz switching signal contains amplitude modulated components so that switching does not always take place at the exact points desired.
  • a limiter as is shown in FIG. 9 may be employed with such receivers.
  • the tuner 54 feeds a signal through line 56 to the audio gates 58 and at the same time the signal is fed to the 19 kHz tuned amplifier 60.
  • the 19 kHz signal is now passed to the limiter and doubler 62.
  • the limited 19 kHz signal is passed through line 64 to the audio gates to perform the switching function and, since it is now free of all amplituded modulated components, provides a clean switching action.
  • the doubled signal is fed to the 38 kHz amplifier 66 which serves as the switching signal for the right and left information in the usual manner.
  • Most FM receivers do not require this added circuitry, particularly the better grade of receivers which use a phase locked oscillator rather than the simple tuned amplifier and doubler.
  • the 19 kHz signal is first doubled in the usual manner to act as a switching signal for the left and right information and again doubled to produce a 76 kHz signal which serves to switch the front and rear information.
  • the order in which the audio signals are transmitted is changed to LR, LF, RR and RF. It is also necessary to make a change in the bandwidth to handle the system and in the specific system described, this must be at least 91 kHz for the four channel transmission and it may be increased to kHz to handle S.C.A. subcarrier.
  • FIG. Ill one half of the composite signal is shown.
  • a main channel in the usual manner extending from 50 Hz to kHz and this contains the left plus right information, both front and rear.
  • a pilot signal at 19 kHz and a first subchannel centered on 38 kHz.
  • This first subchannel contains the left minus right information, including both front and rear.
  • a second subchannel is centered on 76 kHz and this contains the front minus rear information.
  • a main channel extending up to 15 kHz and including the sum of the signals, for example, left and right both front and rear.
  • a 19 kHz pilot signal A 19 kHz pilot signal.
  • the first of those equations is assigned to the main channel and is the sum of the signals, i.e., (LF LR RF RR); this main channel extending up to 15 kHz.
  • the second equation is (LF LR RF RR) and is located in the first sub-channel which is centered at 38 kHz.
  • Also located in the first sub-channel is another equation (LF LR RF RR). To differentiate these two equations, they are modulated in quadrature; that is, the first being the sine of 38 kHz and the second being the cosine of 38 kHz.
  • the final equation is centered at 76 kHz is (LF- LR RF RR).
  • the origin of the time scale is chosen as the beginning of one of the sampling pulses:
  • si (t) is a periodic function with a fundamental frequency 2f and has a fourier series representation:
  • s1 (t) E/4 l 4/1r cosine 41rft 4/11- sine 41rft+ 81rft. ⁇
  • a main channel component (al a2 a3 a4).
  • This composite signal is generated by the transmitter circuit as shown in FIG. 12 and the switch analogy as shown in FIG. 14 wherein the switch analogy switches at the rates of 76 kHz and 38 kHz.
  • the sampling system is shown. There is shown one full cycle of the 38 kHz subcarrier and naturally two cycles of the newly generated 76 kHz subcarrier.
  • the 38 kHz signal is utilized by a stereophonic receiver in the usual manner so that the sampling points would be at points 68 and 70 for the left and right handed information.
  • the signal centered on the 76 kHz subcarrier contains the front minus rear information so that on a four channel audio system the sampling points would be at 72, 74, 76 and 78 to extract the desired information.
  • FIG. 13 there is shown a block diagram of how the decoder works.
  • the composite signal comes from the tuner through line 80 and a portion of the composite signal goes to the 19 kHz amplifier 82.
  • the composite signal is also fed to the audio gates 84.
  • the 19 kHz signal is doubled to 38 kHz in the doubler 86 and this signal is passed through line 88 to the audio gate 84 where it is used to switch between the right and left information.
  • a portion of the signal is also sent to the second doubler 90 which puts out a signal at 76 kHz through line 92 which is also sent to the audio gates and utilized to switch between front and back information.
  • the transmitter circuit is shown in FIG. 12 and essentially consists of the opposite circuit from that described for the decoder.
  • four sources of audio are supplied through the four lines 94A, B, C and D to the audio gates 96.
  • a 76 kHz oscillator 98 is provided which sends a signal to the audio gates for switching between the front and the back information.
  • the signal is divided by two in divider 100 and a portion of this 38 kHz signal is sent to the audio gates for switching between right and left information while a portion of this signal is sent to the divider 102 for the generation of the 19 kHz pilot signal.
  • the pilot signal is combined with the composite signal from the audio gates to produce a composite signal on 104 which can be used to modulate a standard FM transmitter.
  • this signal will look like the signal of FIG. 11 except that no description has been included of the generation of the SCA band.
  • FIG. 14 shows a mechanical switch analogy of the switching circuit and this as well as FIG. should be utilized in conjunction with FIG. 10.
  • switch 104 operates at a frequency of 38 kHz for sampling the right and left information while switch 106 operates at twice this frequency for sampling the left rear and left front information while switch 108 operates at the same frequency for the same purpose in the right channel.
  • switch 104 in the upper portion while switches 106 and 108 are also in the upper position.
  • Switch 108 is in effect inoperative since the right channel is open but switch 106 switches the left rear information into the outgoing signal.
  • Now switch 106 (as well as 108) moves to the lower position so that the left front information is sampled.
  • switch 104 moves to the lower position while switch 108 repeats the operation for sampling the right front and rear information.
  • FIG. 15 gives a similar analogy for the receiver where switch 110 operating at a frequency of 38 kHz switches between right and left information while switches 112 and 114 similarly switch between front and rear infonnation.
  • switch 110 operating at a frequency of 38 kHz switches between right and left information while switches 112 and 114 similarly switch between front and rear infonnation.
  • switches 112 and 114 similarly switch between front and rear infonnation.
  • the signal is completely compatible with either a mono, stereo, or four channel receiver.
  • a mono receiver one would hear the main channel which during two cycles of the 76 kHz subcarrier will contain the information from all four channels.
  • a stereo receiver left front and left rear information will be extracted during the first 180 period of the 38 kHz subcarrier while the right front and right rear information will be received during the second 180 period.
  • the four signals would be individually received as previously described.
  • the complete signal of the first embodiment has been contained within the assigned bandwidth and that there has been no interference with an S.C.A. signal, if this is being sent.
  • the four signals are all modulated to the full 15 kHz bandwidth so that there is no deterioration of separation over this bandwidth.
  • the four signals are also given the same percentage of modulation so there is no deterioration of the signal to noise ratio.
  • a method for providing a compatible four channel composite signal for use in conjunction with an FM radio transmitter having said composite signal modulated on the carrier thereof and consisting of a main channel, a synchronizing pilot signal of a first predetermined frequency, a first sub-channel centered at the second harmonic of said pilot signal and a second sub-channel centered at the fourth harmonic of said pilot signal comprising the steps of: providing first, second, third and fourth audio signals; providing a pilot signal of a first predetermined frequency; providing a first sub-carrier frequency signal at twice the frequency of said pilot signal; providing a second sub-carrier frequency signal at quadruple the frequency of said pilot signal; applying said first and second audio signals to a first audio gate and switching said first gate at the frequency of said second subcarrier frequency signal; applying said third and fourth audio signals to a second audio gate and switching said second audio gate at the frequency of said second subcarrier frequency signal; applying the outputs from said first and second audio gates to a third audio gate and switching said third audio gate at the
  • a method for providing a compatible four channel composite signal for use in conjunction with an FM radio transmitter for transmitting said composite signal which composite signal includes a main channel with first, plus second, plus third and plus fourth audio signals combined thereon, a pilot signal of a predetermined frequency removed from said main channel, a first suppressed subchannel centered on a frequency equal to the second harmonic of said pilot signal, said first sub-channel having first, plus second, minus third, minus fourth audio signals and in quadrlicate therewith first, minus second, minus third and plus fourth audio signals combined thereon and a second suppressed sub-channel centered on a frequency twice that of said first sub-channel having first, minus second, plus third, minus fourth audio signals combined thereon, comprising the steps of: providing a pilot signal of a first predetermined frequency; providing a first switching signal at twice the frequency of said pilot signal; providing a second switching signal 9 at quadruple the frequency of said pilot signal; utilizing said second switching signal to switch between said first and
  • the method according to claim 3 further comprising the steps of: providing a main channel extending up to a frequency less than the frequency of said pilot signal and having first, plus second, plus third, plus fourth audio signals combined thereon; providing a suppressed sub-channel centered at twice the frequency of said pilot signal and having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon; and providing a second suppressed sub-channel at quadruple the frequency of said pilot signal and having first, minus second, plus third, minus fourth audio signals combined thereon.
  • a method for deriving first, second, third and fourth audio signals from a compatible four channel composite signal received from an F M radio transmitter which composite signal includes a main channel with first, plus second, plus third and plus fourth audio signals combined thereon, a pilot signal having a predetermined frequency removed from said main channel, a first suppressed sub-channel which is centered at the second harmonic of said-pilot signal, said first sub-channel having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon and a second suppressed sub-channel centered at the fourth harmonic of said pilot signal and having first, minus second, plus third, minus fourth audio signals combined thereon comprising the steps of: deriving a signal equal in frequency to the frequency of said pilot signal; deriving a first switching signal equal in frequency to twice the frequency of said pilot signal; deriving a second switching signal equal in frequency to quadruple the frequency of said pilot signal;
  • a method for providing a four channel composite signal compatible with existing mono and stereo standards for use in conjunction with an F M radio transmitter having a predetermined carrier frequency comprising the steps of: providing a main channel extending up to a first predetermined frequency and having first, plus second, plus third and plus fourth audio signals combined thereon; providing a pilot signal of a second predetermined frequency removed from said carrier frequency; providing a first sub-channel centered at the second harmonic of the frequency of said pilot signal and containing two sub-carriers; modulating the first sub-carrier of said first sub-channel with the plus first, plus second, minus third, minus fourth audio signals and modulating in quadrature therewith the second sub-carrier of said first sub-channel with plus first, minus second, minus third and plus fourth audio signals; providing a second sub-channel centered at the fourth harmonic of the frequency of said pilot signal and containing a sub-carrier; and modulating the sub-carrier of said second subchannel with the plus first, minus second, plus plus
  • a system for providing a compatible four channel composite signal for use in conjunction with an FM radio transmitter having said composite signal modulated on the carrier thereof and consisting of a main channel, synchronizing pilot signal of a first predetermined frequency, a first sub-channel centered at the second harmonic of said pilot signal and a second sub-channel centered at the fourth harmonic of said pilot signal comprising: means for providing first, second, third and fourth audio signals; means for providing a pilot signal of a first predetermined frequency; means for providing a first subcarrier frequency signal at twice the frequency of said pilot signal; means for providing a second sub-carrier frequency signal at quadruple the frequency of said pilot signal; a first audio gate; means for applying said first and second audio signals to said first audio gate; means for switching said first audio gate at the frequency of said second sub-carrier frequency signal; a second audio gate; means for applying said third and fourth audio signals to said second audio gate; means for switching said second audio gate at the frequency of said second sub-carrier frequency signal; a
  • a system for providing a compatible four channel composite signal for use in conjunction with an FM radio transmitter for transmitting said composite signal which composite signal includes a main channel with first, plus second, plus third and plus fourth audio signals combined thereon, a pilot signal of a predetermined frequency removed from said main channel, a first suppressed subchannel centerd on a frequency equal to the second harmonic of said pilot signal, said first sub-channel having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon and a second suppressed sub-channel centered on a frequency twice that of said first sub-channel having first, minus second, plus third, minus fourth audio signals combined thereon, comprising: means for providing a pilot signal of a first predetermined frequency; means for providing a first switching signal at twice the frequency of said pilot signal; means for providing a second switching signal at quadruple the frequency of said pilot signal; means for switching between said first and second audio signals
  • said composite signal includes a main channel extending up to a frequency less than the frequency of said pilot signal and having first, plus second, plus third, plus fourth audio signal combined thereon; a suppressed subchannel centered at twice the frequency of said pilot signal and having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon; and a second suppressed subehannel at quadruple the frequency of said pilot signal and having first, minus second, plus third, minus fourth audio signals combined thereon.
  • a system for deriving first, second, third and fourth audio signals from a compatible four channel composite signal received from an FM radio transmitter which composite signal includes a main channel with first, plus second, plus third and plus fourth audio signals combined thereon, a pilot signal having a predetermined frequency removed from said main channel, a first suppressed sub-channel which is centered at the second harmonic of said pilot signal, said first sub-channel having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon and a second suppressed sub-channel centered at the fourth harmonic of said pilot signal and having first, minus second, plus third, minus fourth audio signals combined thereon comprising: means for deriving a signal equal in frequency to the frequency of said pilot signal; means for deriving a first switching signal equal in frequency to twice the frequency of said pilot signal; means for deriving a second switching signal equal in frequency to quadruple the frequency of said pilot signal;
  • a system for providing a four channel composite signal compatible with existing mono and stereo standards for use in conjunction with an FM radio transmitter having a predetermined carrier frequency comprising: means for providing a main channel extending up to a first predetermined frequency and having first, plus second, plus third and plus fourth audio signals combined thereon; means for providing a pilot signal of a second predetermined frequency removed from said carrier frequency; means for providing a first sub-channel centered at the second harmonic of the frequency of said pilot signal and containing two sub-carriers; means for modulating the first sub-carrier of said first sub-channel with the plus first, plus second, minus third, minus fourth audio signals and for modulating in quadrature therewith the second sub-carrier of said first sub-channel with plus first, minus second, minus third and plus fourth audio signals; means for providing a second sub-channel centered at the fourth harmonic of the frequency of said pilot signal and containing a subcarrier; and means for modulating the sub-carrier of said second sub-channel with
  • a compatible four channel audio system for providing a compatible four channel composite signal comprising means for providing left front, left rear, right front and right rear audio signals, means for providing a 19 kHz pilot signal, means for providing a 38 kHz sub-carrier signal, first circuit means coupled to said left front and left rear audio signals for combining all frequencies of said left front and left rear audio signals above 4 kHz and for providing separation between said left front and left rear audio signals at frequencies less than 4 kHz, first encoder means coupled to said first circuit means and said left front and left rear audio signals, said first encoder means including first switch means responsive to said pilot signal for providing a first encoder output during the positive half cycle of said pilot signal and second switch means responsive to said pilot signal for providing a second encoder output during the negative half cycle of said pilot signal, second circuit means coupled to said right front and right rear audio signals for combining all frequencies of said right front and right rear audio signals above 4 kHz and for providing separation between said right front and right rear audio signals at frequencies less than 4 kHz, second encoder means coupled to said
  • the system according to claim 13 further including means for receiving said composite signal, means for extracting said 19 kHz pilot signal from said commeans adapted to receive said right front and right rear audio signals, said second decoder means including first switch means responsive to said pilot signal for providing said right front audio signal during the positive half cycle of said pilot signal and second switch means responsive to said pilot signal for providing said right rear audio signal during the negative half cycle of said pilot signal.

Abstract

A four channel FM system is described. In one embodiment the usual 19 kHz pilot signal is employed to switch between front and rear information, while in another, a 76 kHz switching signal is employed for this purpose.

Description

States Patet 1 1 [111 3,822,365
Dorren 1 *July 2, 1974 COMPATIBLE FOUR CHANNEL FM [51] Int. Cl. 111104111 5/00 SYSTEM [58] Field of Search 179/15 ET, 1 GQ [75] Inventor: Louis Dorren, M1llbrae, Ca11f. [56] References Cited [73] Assignee: Matsusliita Electric Corporation of UN STATES PATENTS New York 3,679,832 7/1972 Halpern 179/15 BT Notice: The portion of the term of this 3,708,623 1/1973 Dorren 179/15 BT patent subsequent to Jan. 2, 1990, has been disclaimed. Primary Examiner-Kathleen H. Claffy Filed Dec 29 1972 Assistant ExaminerThomas DAmico [21] Appl. No.: 319,939 [57] ABSTRACT A four channel FM system is described. In one em- [63] C Relfted g ;g f 1970 P t bodiment the usual 19 kHz pilot signal isemployed to g fi t g switch between front and rear mformanon, wh11e 1n 3 g g s g gi gg 0 another, a 76 kHz switcl ing signal is employed for this purpose. [52] 11.8. CI. 179/15 HT 14 Claims, 15 Drawing Figures LEFT RIGHT REAR REAR LEFT RIGHT FRONT FRONT Z0 *22 QUADRAPLEX QUADRAPLEX '19 17 ENCODEK ENCODEK 13x 15 |*1I80 8 o 26 U W LEFT RIGHT MULTIPLEX /8 EXCITEK 1 Z8 19 kHz TRANSMITTER mmmm 2:914 1822.365
SHEU 1 [If 5 LEFT RIGHT REAR REAR EFT klGHT FRONT FRONT LEFT LEFT mom REAR W/WQUADKAPLEX QUADRAPLEXA/W f! m ENCODEK ENCODEK g 1 A5 0' 24 18 U W180 +-+1so 25 J M M WW y I3 i A bus air/m /8 in? F I a 1 'Z8 [9 kHz TRANSMITTEKJ LEFT LEFT W 53? 2% 5w 32%@@% f k F I E- q: 44 RIGHT KEAQK SMENFWJHL 2 m4 SHEET 2 OF 5 {5CA j 0 HK5T ECOND "180 IW tfi g LEF LEFT WIT f UPPER SIDEBAND LEFT 38 k Hz WT -LOWEK SIDEBAND RIGHT FRONT KEAK mom I9 kHz mm i g w-F/K5T /30-M-5EC0ND 160 KHZ 2: LF RF LR RR 0 kHz Pmmwmm 21w 3,822,366
sum 3 or s L FT KI HT KQAK K AR Y L T RIGHT FR FROM T PATENTEUJUL 2 I974 LEFT RIGHT REAR REAR LEFT FRONT RIGHT FRONT 76 kHz OSCILLATOR AUDIO DIV/DER 38 kHz GATES LEFT- RIGHT PILOT FRONT REAR Y FIKST 51/5- CHANNEL Y saw/v0 SUB CHANNEL I am . I COMPATIBLE FOUR CHANNEL FM SYSTEM CROSS REFRERENCE TO RELATED APPLICATIONS This application is a continuing application of US. Pat. No. 3,708,623 issued Jan. 2, 1973 which was application Ser. No. 32,989, filed Apr. 29, 1970, which, in turn, was a continuation-in-part of my application Ser. No. 13,902, filed Feb. 25, 1970 now abandoned.
SUMMARY OF THE INVENTION A four channel audio system is provided which is fully compatible with standard FM stereo and mono equipment. According to the present invention, a switching or sampling system is employed so that four audio channels are transmitted by the FM station. These four channels are designated left front, right front, left rear and right rear and are sometimes hereinafter abbreveiated LF, RF, LR and RR, respectively.
In accordance with one embodiment of the invention, these four channels are superimposed on the 38 kHz subcarrier and the usual 19 kHz pilot signal is used as a switching signal. During the first half cycle of the 19 kHz signal, the left front and right front information is transmitted while during the second half cycle, the left rear and right rear information is transmitted. The 19 kHz pilot is then used as a switching signal between the front and rear information as is hereinafter described in detail while the 38 kHz signal switches between left and right in the usual manner. This system has the advantage of not requiring an increase in bandwidth, not requiring any additional pilot or subcarrier frequencies and permits the radio station to continue to use its normal 67 kHz subcarrier for SCA purposes. However, this embodiment does not ordinarily permit the use of the full frequency spectrum for front and back information so that it is sometimes preferable to provide another subcarrier to carry the front and rear information. When this is done, the 19 kHz pilot signal is quadrupled and this quadrupled signal is used for switching between front and back information.
Both embodiments of the present invention are completely compatible with present mono and stereo equipment. The main channel carries all four audio channels so that on a mono receiver the four signals are combined. On a stereo receiver, the left and the right information is extracted in the usual manner and it is only with the receiver equipped for four channel reception that the signal produced by the system of the present invention is broken into its four components. The system utilizing the 76 kHz switching signal has the additional advantage that there is a complete reproduction of the full audio bandwidth by each of the four channels.
BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 is a block diagram of a transmitter embodying the present invention.
FIG. 2 is a block diagram of a receiver embodying the present invention.
FIG. 3 is an analogy diagram of one of the encoders shown in FIG. 1.
FIG. 4 is a similar diagram of one of the decoders utilized in FIG. 2.
FIG. 5 is a spectrum diagram of the signal employed during the transmission of front channel-information.
FIG. 6 is a similar diagram showing the signal employed during the transmission of rear channel information.
FIG. 7 is a diagram of the composite wave form employed.
FIG. 8 is a block diagram showing how combiner networks can be employed with the encoders to eliminate beat notes.
FIG. 9 is a block diagram showing a limiter circuit which is desirable to employ with certain types of FM receivers.
The above FIGS. 1 through 9 relate to an embodiment wherein the 19 kHz pilot signal is employed to switch between front and rear information. The following figures relate to that embodiment of the invention wherein a 76 kHz subcarrier and switching signal is employed.
FIG. 10 is a wave form of that embodiment of the invention wherein a 76 kHz subcarrier is employed.
FIG. 11 is a band distribution diagram of the system using the 76 kHz subcarrier.
FIG. 12 is a block diagram of the encoder employed with the 76 kHz subcarrier system.
FIG. 13 is a block diagram of the receiver employed with the system.
FIG. 14 is a switch analogy for the transmitter.
FIG. 15 is a switch analogy for the receiver.
DESCRIPTION OF THE PREFERRED EMBODIMENTS Reference is made to FIGS. 1 through 9 which illustrate that embodiment of the invention employing a 19 kHz switching signal.
At the present time, the authorized stereophonic system used in the United States includes a multiplex signal wherein left and right channel information is carried on a single carrier wave. The composite signal includes a main channel signal on the carrier frequency which contains both the right and left hand signals. A suppressed carrier double side band signal is provided on a subcarrier at 38 kHz which carries the left minus right signal. A 19 kHz pilot signal is provided for phase lock of the 38 kHz side bands. In addition, there may be a subsidiary communication authorization (S.C.A.) signal at 67 kHz and this system does not interfere with the SCA. signal. In general, this embodiment of the invention is carried out by employing the 19 kHz pilot signal as a switching signal to switch between front and back information to provide for front and back as well as left and right signals.
The method of transmitting the signal is shown in FIGS. 1 and 3. A standard multiplex exciter 8 is employed, and this generates a 19 kHz pilot signal which serves as the switching signal for the front and rear information. This signal is passed through lead 10 to diodes 12 and 14 and alternate half cycles are passed by leads l3 and 15 to the encoders l7 and 19. One of these encoders is shown in analog form in FIG. 3 and consists of switches 16 and 18. The encoder has a line 20 leading to switch 16 for front information and a line 22 leading to switch 18 for rear information and a common output line 24. The switches are actuated by pulses from lines 13 and 15 respectively. Thus, on a positive half cycle of the 19 kHz signal, switch 16 is closed so that the front information is fed through line 24 while on the following negative half cycle, switch 18 is closed so that the rear information is fed through line 24. The other encoder is not described since it operates in exactly the same way with the right front and rear information. The left information is fed through line 24 to the multiplex exciter 8 while the corresponding right channel information is fed through line 26 to the exciter. The signal generated by the exciter is then fed to the transmitter 28.
The signal thus generated can best be understood by reference to FIGS. and 6. FIG. 5 represents the signal as it is being transmitted during the first or positive half cycle of the 19 kHz signal. It will be seen that a O frequency (zero in this sense represents the nominal carrier frequency of the FM station) there is present up to kHz, a signal representing the left front plus right front information. Centered on 38 kHz is the left front minus right front information. In FIG. 6 the signal is shown during the second or negative half cycle of the 19 kHz signal. During this half cycle, the main channel is carrying the left plus right information but in this case it is the rear information while similarly centered on 38 kHz the left minus right information is sent but here again it is the rear information. It will be seen that in both instances, there is no interference with the normal S.C.A. signal.
The method of receiving a signal is shown in FIGS. 2 and 4. The signal is received on an ordinary FM tuner 30 and fed to a standard multiplex demodulator 32. The 19 kHz signal is taken from line 34 and passed to diodes 36 and 38 and the rectifier I9 kHz pulses are passed through lines 40 and 42 to the decoders 44 and 46. The left and right channel information is taken from the demodulator 32 and passed through lines 48 and 50 to the respective decoders. Referring now specifically to FIG. 4, the upper switch is actuated by the positive half cycles from line 40 while the lower switch is operated by the negative half cycles from line 42 so that the decoder switches between the front and the right front on positive and negative pulses of the 19 kHz signal. The signals are then taken from the decoder and amplified in the usual way. At the same time, the ight channel information is handled in the same manner by the decoder 46.
In order to prevent high frequency components of the incoming program information from interfering with operation of the system, low pass filters which pass only frequencies below 15 kHz are employed in the input leads to the encoders, i.e., leads and 22 of encoder 17 and the corresponding leads of the right hand encoder 19. Similar low pass filters are also employed in the output leads of decoders 44 and 46.
The operation of the overall system can best be seen in FIG. 7 wherein it is assumed that demodulation takes place on a time division basis although it will be obvious that the invention ie equally applicable to demodulators which operate on a matrixing system or a combination of time division and matrixing. FIG. 7 represents one complete cycle of the 19 kHz signal and two complete cycles of the 38 kHz subcarrier. During the first half of the I9 kHz cycle, front information exclusively is being sent both on the main channel and on the 38 kHz subcarrier. In the case of the main channel, this is a combination of the left front and right front information while on the 38 kHz subcarrier, left front information is being sent on the upper side band and right front information on the lower side band. During the next half cycle of the 19 kHz signal, the situation is reversed with the main channel carrying left rear plus right rear information while on the 38 kHz signal, left rear information is carried on the upper side band while right rear information is carried on the lower side band.
Although the embodiment heretofore described is a fully workable system, some modifications can be made for optimum results.
When the full bandwidth of 15 kHz is transmitted with this signal, a 15 kHz audio tone will produce sidebands of 4 kHz and 34 kHz when imposed on the 19 kHz pilot signal. The 34 kHz signal will beat with sideband components of the 38 kHz subchannel causing frequencies in the sub and main channels, and the 4 kHz signal will beat with the main channel audio components, creating beat frequencies lying within the audible range. Thus, to employ the full 15 kHz bandwidth, it is desirable to provide a combining network on the inputs to the encoder as is shown in FIG. 8. Here the left channel encoder 17 having the inputs 20 and 22, previously described, has a combining network 52 connected between the input lines. Obviously the right channel is treated the same way. This combining network combines all frequencies above 4 kHz so that for the higher frequencies, the information is carried on both the front and the rear channels. At frequencies under 4 kHz there is a separation between front and back. This gives very good presence since it has been found that a great deal of the separation presence occurs below 4 kHz.
With some relatively inexpensive FM receivers, some distortion may be encountered for the reason that such receivers employ a 19 kHz tuned amplifier together with a doubler. The 19 kHz signal in the case of such receiver is not a clean 19 kHz but has certain modulation components imposed thereon. In other words, the 19 kHz switching signal contains amplitude modulated components so that switching does not always take place at the exact points desired. In order to remedy this, a limiter as is shown in FIG. 9 may be employed with such receivers. Here the tuner 54 feeds a signal through line 56 to the audio gates 58 and at the same time the signal is fed to the 19 kHz tuned amplifier 60. The 19 kHz signal is now passed to the limiter and doubler 62. The limited 19 kHz signal is passed through line 64 to the audio gates to perform the switching function and, since it is now free of all amplituded modulated components, provides a clean switching action. The doubled signal is fed to the 38 kHz amplifier 66 which serves as the switching signal for the right and left information in the usual manner. Most FM receivers do not require this added circuitry, particularly the better grade of receivers which use a phase locked oscillator rather than the simple tuned amplifier and doubler.
The same basic system is used in the scheme shown in FIGS. 10 through 15 except here instead of using the 19 kHz signal to switch between front and rear information, the 19 kHz signal is first doubled in the usual manner to act as a switching signal for the left and right information and again doubled to produce a 76 kHz signal which serves to switch the front and rear information. In order to preserve compatibility, the order in which the audio signals are transmitted is changed to LR, LF, RR and RF. It is also necessary to make a change in the bandwidth to handle the system and in the specific system described, this must be at least 91 kHz for the four channel transmission and it may be increased to kHz to handle S.C.A. subcarrier.
In FIG. Ill, one half of the composite signal is shown. Thus, there is a main channel in the usual manner extending from 50 Hz to kHz and this contains the left plus right information, both front and rear. There is a pilot signal at 19 kHz and a first subchannel centered on 38 kHz. This first subchannel contains the left minus right information, including both front and rear. A second subchannel is centered on 76 kHz and this contains the front minus rear information. Summing up the above, it can be seen that the novel composite signal of the present invention includes the following:
A main channel extending up to 15 kHz and including the sum of the signals, for example, left and right both front and rear.
A 19 kHz pilot signal. A first sub-channel centered on 38 kHz containing left minus right information.
A sub-channel centered on 76 kHz containing front minus rear information.
If this signal is studied, purely mathematical Fourier analysis shows that the following signal equations actually exist. The first of those equations is assigned to the main channel and is the sum of the signals, i.e., (LF LR RF RR); this main channel extending up to 15 kHz. The second equation is (LF LR RF RR) and is located in the first sub-channel which is centered at 38 kHz. Also located in the first sub-channel is another equation (LF LR RF RR). To differentiate these two equations, they are modulated in quadrature; that is, the first being the sine of 38 kHz and the second being the cosine of 38 kHz. The final equation is centered at 76 kHz is (LF- LR RF RR).
With the production of these four equations in the base band signal, we have now satisfied the algebraic conditions of transmission. The purely mathematical Fourier analysis is as follows:
ANALYTICAL DESCRIPTION OF THE DORREN QUADRAPLEX COMPOSITE SIGNAL ANALYSIS: THE MODULATING FUNCTION OF FOUR CHANNELS The modulating functions of four channels are assumed to vary in the ways shown below.
The origin of the time scale is chosen as the beginning of one of the sampling pulses:
sl (r) s2 (r) =sl (r z/4) s3 (r) =s2 (t 1/4) s4 (1) si (t) is a periodic function with a fundamental frequency 2f and has a fourier series representation:
E m 4 n1r 81(6) {1+ a 8111 cosin 41rnft+ 2 (1 cosin ZL15) sin 41rnfL} 'rt1r 2 Retaining only the 38 kilohertz and 76 kilohertz components and applying the relations of one to generate the other three functions, we get:
s1 (t) =E/4 l 4/1r cosine 41rft 4/11- sine 41rft+ 81rft.}
s2 (t) E/4 {l 4/11 cosine 41rft 4111 sine 41-rft 4/1r sine 81119. I s3 (1) E/4{ 1 4/1r cosine 41rft 4/11 sine 41rft 4/17 sine 81'rft.}s4 (t) E/4{ l 4/11 cosine 41rft 4/17 sine 41rft 4/12 sine 87rft.} Multiplexing si (t) by ai (t) and summing to give the composite, we get:
To this signal a pilot should be added of the form A sin 21rfr. We see that the quadraplex composite signal consists of:
1. a main channel component (al a2 a3 a4).
2. two 38 kilohertz components in quadrature, one modulated by (al a2 a3 a4) and the other modulated by (01 a2 a3 a4).
3. one 76 kilohertz component modulated by (al If we make the following channel identification,
a1 left front signal a2 left rear signal a3 right front signal a4 right rear signal and assume the two channel stereo case in which,
al a2 left a3 a4 right the composite signal reduces to c (t) E/4 (21 2r) A sin 21Tft (21 2r) sin 41rft. This is the standard two channel stereo format with the pilot at 19 kilohertz and having the correct phase relationship to the 38 kilohertz subcarrier.
This composite signal is generated by the transmitter circuit as shown in FIG. 12 and the switch analogy as shown in FIG. 14 wherein the switch analogy switches at the rates of 76 kHz and 38 kHz.
If an S.C.A. signal is desired, this can be centered on 105 kHz, although the provision for such a signal forms no part of the present invention.
In FIG. 10, the sampling system is shown. There is shown one full cycle of the 38 kHz subcarrier and naturally two cycles of the newly generated 76 kHz subcarrier. The 38 kHz signal is utilized by a stereophonic receiver in the usual manner so that the sampling points would be at points 68 and 70 for the left and right handed information. Similarly, the signal centered on the 76 kHz subcarrier contains the front minus rear information so that on a four channel audio system the sampling points would be at 72, 74, 76 and 78 to extract the desired information.
In FIG. 13 there is shown a block diagram of how the decoder works. The composite signal comes from the tuner through line 80 and a portion of the composite signal goes to the 19 kHz amplifier 82. The composite signal is also fed to the audio gates 84. The 19 kHz signal is doubled to 38 kHz in the doubler 86 and this signal is passed through line 88 to the audio gate 84 where it is used to switch between the right and left information. A portion of the signal is also sent to the second doubler 90 which puts out a signal at 76 kHz through line 92 which is also sent to the audio gates and utilized to switch between front and back information.
The transmitter circuit is shown in FIG. 12 and essentially consists of the opposite circuit from that described for the decoder. Thus, four sources of audio are supplied through the four lines 94A, B, C and D to the audio gates 96. A 76 kHz oscillator 98 is provided which sends a signal to the audio gates for switching between the front and the back information. The signal is divided by two in divider 100 and a portion of this 38 kHz signal is sent to the audio gates for switching between right and left information while a portion of this signal is sent to the divider 102 for the generation of the 19 kHz pilot signal. The pilot signal is combined with the composite signal from the audio gates to produce a composite signal on 104 which can be used to modulate a standard FM transmitter. Naturally this signal will look like the signal of FIG. 11 except that no description has been included of the generation of the SCA band.
FIG. 14 shows a mechanical switch analogy of the switching circuit and this as well as FIG. should be utilized in conjunction with FIG. 10. Here switch 104 operates at a frequency of 38 kHz for sampling the right and left information while switch 106 operates at twice this frequency for sampling the left rear and left front information while switch 108 operates at the same frequency for the same purpose in the right channel. Thus one can visualize switch 104 in the upper portion while switches 106 and 108 are also in the upper position. Switch 108 is in effect inoperative since the right channel is open but switch 106 switches the left rear information into the outgoing signal. Now switch 106 (as well as 108) moves to the lower position so that the left front information is sampled. After one complete cycle of the 76 kHz, switch 104 moves to the lower position while switch 108 repeats the operation for sampling the right front and rear information. FIG. 15 gives a similar analogy for the receiver where switch 110 operating at a frequency of 38 kHz switches between right and left information while switches 112 and 114 similarly switch between front and rear infonnation. Naturally, these are only mechanical analogies and in a normal receiver or transmitter such switching is by solid state devices.
It will be apparent from this description that the signal is completely compatible with either a mono, stereo, or four channel receiver. Thus, on a mono receiver, one would hear the main channel which during two cycles of the 76 kHz subcarrier will contain the information from all four channels. On a stereo receiver, left front and left rear information will be extracted during the first 180 period of the 38 kHz subcarrier while the right front and right rear information will be received during the second 180 period. On the four channel receiver, the four signals would be individually received as previously described.
It will be seen from the description which has been given that the complete signal of the first embodiment has been contained within the assigned bandwidth and that there has been no interference with an S.C.A. signal, if this is being sent. in the second embodiment the four signals are all modulated to the full 15 kHz bandwidth so that there is no deterioration of separation over this bandwidth. The four signals are also given the same percentage of modulation so there is no deterioration of the signal to noise ratio.
1 claim:
1. In a four channel broadcasting system, a method for providing a compatible four channel composite signal for use in conjunction with an FM radio transmitter having said composite signal modulated on the carrier thereof and consisting of a main channel, a synchronizing pilot signal of a first predetermined frequency, a first sub-channel centered at the second harmonic of said pilot signal and a second sub-channel centered at the fourth harmonic of said pilot signal comprising the steps of: providing first, second, third and fourth audio signals; providing a pilot signal of a first predetermined frequency; providing a first sub-carrier frequency signal at twice the frequency of said pilot signal; providing a second sub-carrier frequency signal at quadruple the frequency of said pilot signal; applying said first and second audio signals to a first audio gate and switching said first gate at the frequency of said second subcarrier frequency signal; applying said third and fourth audio signals to a second audio gate and switching said second audio gate at the frequency of said second subcarrier frequency signal; applying the outputs from said first and second audio gates to a third audio gate and switching said third audio gate at the frequency of said first sub-carrier frequency signal; and combining the output of said third audio gate with said pilot to obtain said composite signal.
2. In a four channel receiving system, a method for decoding first, second, third and fourth audio signals from a compatible four channel composite signal adapted to be received from an FM radio transmitter having said composite signal modulated on the carrier thereof, said composite signal consisting of a main channel, a synchronizing pilot signal of a first predetermined frequency, a first sub-channel centered at the second harmonic of said pilot signal and a second subchannel centered at the fourth harmonic of said pilot signal, comprising the steps of: extracting said pilot signal; providing a first switching signal at twice the frequency of said pilot signal; providing a second switching signal at quadruple the frequency of said pilot signal; applying said composite signal to a first audio gate and switching said first audio gate at a frequency equal to the frequency of said first switching signal to provide a first gate output signal and a second gate output sig nal; applying said first gate output signal to a second audio gate and switching said second audio gate at a frequency equal to the frequency of said second switching signal to provide said first and second audio signals; and applying said second gate output signal to a third audio gate and switching said third audio gate at a frequency equal to the frequency of said second switching signal to provide said third and fourth audio signals.
3. In a four channel broadcasting system, a method for providing a compatible four channel composite signal for use in conjunction with an FM radio transmitter for transmitting said composite signal, which composite signal includes a main channel with first, plus second, plus third and plus fourth audio signals combined thereon, a pilot signal of a predetermined frequency removed from said main channel, a first suppressed subchannel centered on a frequency equal to the second harmonic of said pilot signal, said first sub-channel having first, plus second, minus third, minus fourth audio signals and in quadrautre therewith first, minus second, minus third and plus fourth audio signals combined thereon and a second suppressed sub-channel centered on a frequency twice that of said first sub-channel having first, minus second, plus third, minus fourth audio signals combined thereon, comprising the steps of: providing a pilot signal of a first predetermined frequency; providing a first switching signal at twice the frequency of said pilot signal; providing a second switching signal 9 at quadruple the frequency of said pilot signal; utilizing said second switching signal to switch between said first and second audio signals to obtain a first signal; utilizing said second switching signal to switch between said third and fourth audio signals to obtain a second signal; utilizing said first switching signal to switch between said first and second signals to obtain a third signal; combining said third signal with said pilot signal to obtain said composite signal; and modulating said F M transmitter with said composite signal.
4!. The method according to claim 3 further comprising the steps of: providing a main channel extending up to a frequency less than the frequency of said pilot signal and having first, plus second, plus third, plus fourth audio signals combined thereon; providing a suppressed sub-channel centered at twice the frequency of said pilot signal and having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon; and providing a second suppressed sub-channel at quadruple the frequency of said pilot signal and having first, minus second, plus third, minus fourth audio signals combined thereon.
5. In a four channel receiving system, a method for deriving first, second, third and fourth audio signals from a compatible four channel composite signal received from an F M radio transmitter, which composite signal includes a main channel with first, plus second, plus third and plus fourth audio signals combined thereon, a pilot signal having a predetermined frequency removed from said main channel, a first suppressed sub-channel which is centered at the second harmonic of said-pilot signal, said first sub-channel having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon and a second suppressed sub-channel centered at the fourth harmonic of said pilot signal and having first, minus second, plus third, minus fourth audio signals combined thereon comprising the steps of: deriving a signal equal in frequency to the frequency of said pilot signal; deriving a first switching signal equal in frequency to twice the frequency of said pilot signal; deriving a second switching signal equal in frequency to quadruple the frequency of said pilot signal; utilizing said first switching signal to switch said composite signal at twicethe frequency of said pilot signal to obtain a first signal and a second signal; utilizing said second switching signal to switch said first signal at quadruple the frequency of said pilot signal to obtain said first and second audio signals; and utilizing said second switching signal to switch said second signal at quadruple the frequency of said pilot signal to obtain said third and fourth audio signals.
6. In a four channel broadcasting system, a method for providing a four channel composite signal compatible with existing mono and stereo standards for use in conjunction with an F M radio transmitter having a predetermined carrier frequency, comprising the steps of: providing a main channel extending up to a first predetermined frequency and having first, plus second, plus third and plus fourth audio signals combined thereon; providing a pilot signal of a second predetermined frequency removed from said carrier frequency; providing a first sub-channel centered at the second harmonic of the frequency of said pilot signal and containing two sub-carriers; modulating the first sub-carrier of said first sub-channel with the plus first, plus second, minus third, minus fourth audio signals and modulating in quadrature therewith the second sub-carrier of said first sub-channel with plus first, minus second, minus third and plus fourth audio signals; providing a second sub-channel centered at the fourth harmonic of the frequency of said pilot signal and containing a sub-carrier; and modulating the sub-carrier of said second subchannel with the plus first, minus second, plus third and minus fourth audio signals.
7. In a four channel broadcasting system, a system for providing a compatible four channel composite signal for use in conjunction with an FM radio transmitter having said composite signal modulated on the carrier thereof and consisting of a main channel, synchronizing pilot signal of a first predetermined frequency, a first sub-channel centered at the second harmonic of said pilot signal and a second sub-channel centered at the fourth harmonic of said pilot signal comprising: means for providing first, second, third and fourth audio signals; means for providing a pilot signal of a first predetermined frequency; means for providing a first subcarrier frequency signal at twice the frequency of said pilot signal; means for providing a second sub-carrier frequency signal at quadruple the frequency of said pilot signal; a first audio gate; means for applying said first and second audio signals to said first audio gate; means for switching said first audio gate at the frequency of said second sub-carrier frequency signal; a second audio gate; means for applying said third and fourth audio signals to said second audio gate; means for switching said second audio gate at the frequency of said second sub-carrier frequency signal; a third audio gate; means for applying the outputs from said first and second audio gates to said third audio gate; means for switching said third audio gate at the frequency of said first sub-carrier frequency signal; and means for combining the output of said third audio gate with said pilot signal to obtain said composite signal.
8. In a four channel receiving system, a system for decoding first, second, third and fourth audio signals from a compatible four channel composite signal adapted to be received from an FM radio transistor having said composite signal modulated on the carrier thereof, said composite signal consisting of a main channel, a synchronizing pilot signal of a first predetermined frequency, a first sub-channel centered at the second harmonic of said pilot signal and a second sub-channel centered at the fourth harmonic of said pilot signal, comprising: means for extracting said pilot signal from said composite signal; means for providing a first switching signal at twice the frequency of said pilot signal; means for providing a second switching signal at quadruple the frequency of said pilot signal; a first audio gate; means for applying said composite signal to said first audio gate; means for switching said first audio gate at a frequency equal to the frequency of said first switching signal to provide a first gate output signal and a second gate output signal; a second audio gate; means for applying said first gate output signal to said second audio gate; means for switching said second audio gate at a frequency equal to the frequency of said second switching signal to provide said first and second audio signals; a third audio gate; means for applying said second gate output signal to said third audio gate; and means for switching said third audio gate at a frequency equal to the frequency of said second switching signal to provide said third and fourth audio signals.
9. In a four channel broadcasting system, a system for providing a compatible four channel composite signal for use in conjunction with an FM radio transmitter for transmitting said composite signal, which composite signal includes a main channel with first, plus second, plus third and plus fourth audio signals combined thereon, a pilot signal of a predetermined frequency removed from said main channel, a first suppressed subchannel centerd on a frequency equal to the second harmonic of said pilot signal, said first sub-channel having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon and a second suppressed sub-channel centered on a frequency twice that of said first sub-channel having first, minus second, plus third, minus fourth audio signals combined thereon, comprising: means for providing a pilot signal of a first predetermined frequency; means for providing a first switching signal at twice the frequency of said pilot signal; means for providing a second switching signal at quadruple the frequency of said pilot signal; means for switching between said first and second audio signals at quadruple the frequency of said pilot signal to obtain a first signal; means for switching between said third and fourth audio signals at quadruple the frequency of said pilot signal to obtain a second signal; means for switching between said first and third signals at twice the frequency of said pilot signal to obtain a third signal; and means for combining said third signal with said pilot signal to obtain said composite signal.
10. The system according to claim 9 wherein said composite signal includes a main channel extending up to a frequency less than the frequency of said pilot signal and having first, plus second, plus third, plus fourth audio signal combined thereon; a suppressed subchannel centered at twice the frequency of said pilot signal and having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon; and a second suppressed subehannel at quadruple the frequency of said pilot signal and having first, minus second, plus third, minus fourth audio signals combined thereon.
11. In a four channel receiving system, a system for deriving first, second, third and fourth audio signals from a compatible four channel composite signal received from an FM radio transmitter, which composite signal includes a main channel with first, plus second, plus third and plus fourth audio signals combined thereon, a pilot signal having a predetermined frequency removed from said main channel, a first suppressed sub-channel which is centered at the second harmonic of said pilot signal, said first sub-channel having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon and a second suppressed sub-channel centered at the fourth harmonic of said pilot signal and having first, minus second, plus third, minus fourth audio signals combined thereon comprising: means for deriving a signal equal in frequency to the frequency of said pilot signal; means for deriving a first switching signal equal in frequency to twice the frequency of said pilot signal; means for deriving a second switching signal equal in frequency to quadruple the frequency of said pilot signal; means for utilizing said first switching signal to switch said composite signal at twice the frequency of said pilot signal to obtain a first signal and a second signal; means for utilizing said second switching signal to switch said first signal at quadruple the frequency of said pilot signal to obtain said first and second audio signals; and means for utilizing said second switching signal to switch said second signal at quadruple the frequency of said pilot signal to obtain said third and fourth audio signals.
12. In a four channel broadcasting system, a system for providing a four channel composite signal compatible with existing mono and stereo standards for use in conjunction with an FM radio transmitter having a predetermined carrier frequency, comprising: means for providing a main channel extending up to a first predetermined frequency and having first, plus second, plus third and plus fourth audio signals combined thereon; means for providing a pilot signal of a second predetermined frequency removed from said carrier frequency; means for providing a first sub-channel centered at the second harmonic of the frequency of said pilot signal and containing two sub-carriers; means for modulating the first sub-carrier of said first sub-channel with the plus first, plus second, minus third, minus fourth audio signals and for modulating in quadrature therewith the second sub-carrier of said first sub-channel with plus first, minus second, minus third and plus fourth audio signals; means for providing a second sub-channel centered at the fourth harmonic of the frequency of said pilot signal and containing a subcarrier; and means for modulating the sub-carrier of said second sub-channel with the plus first, minus second, plus third and minus fourth audio signals.
13. A compatible four channel audio system for providing a compatible four channel composite signal comprising means for providing left front, left rear, right front and right rear audio signals, means for providing a 19 kHz pilot signal, means for providing a 38 kHz sub-carrier signal, first circuit means coupled to said left front and left rear audio signals for combining all frequencies of said left front and left rear audio signals above 4 kHz and for providing separation between said left front and left rear audio signals at frequencies less than 4 kHz, first encoder means coupled to said first circuit means and said left front and left rear audio signals, said first encoder means including first switch means responsive to said pilot signal for providing a first encoder output during the positive half cycle of said pilot signal and second switch means responsive to said pilot signal for providing a second encoder output during the negative half cycle of said pilot signal, second circuit means coupled to said right front and right rear audio signals for combining all frequencies of said right front and right rear audio signals above 4 kHz and for providing separation between said right front and right rear audio signals at frequencies less than 4 kHz, second encoder means coupled to said second circuit means and said right front and right rear audio signals, said second encoder means including first switch means responsive to said pilot signal for providing a first encoder output during the positive half cycle of said pilot signal and said second switch means responsive to said pilot signal for providing a second encoder output during the negative half cycle of said pilot signal, means for combining the output signals from said first and second encoder means to provide said composite signal, and transmitter means for transmitting said composite signal, said transmitter means responsive to said 38 kHz sub-carrier signal for transmitting for transmitting during the'positive cycles of said subcam'er signal a main channel having left front plus right front audio signals modulated thereon, said 19 kHz pilot signal and a suppressed sub-channel having left front minus right front audio signals modulated thereon and for transmitting during the negative cycles of said sub-carrier signal a main channel having left rear plus right rear audio signals modulated thereon, said 19 kHz pilot signal and a suppressed sub-channel having left rear minus right rear signals modulated thereon 114. The system according to claim 13 further including means for receiving said composite signal, means for extracting said 19 kHz pilot signal from said commeans adapted to receive said right front and right rear audio signals, said second decoder means including first switch means responsive to said pilot signal for providing said right front audio signal during the positive half cycle of said pilot signal and second switch means responsive to said pilot signal for providing said right rear audio signal during the negative half cycle of said pilot signal.

Claims (14)

1. In a four channel broadcasting system, a method for providing a compatible four channel composite signal for use in conjunction with an FM radio transmitter having said composite signal modulated on the carrier thereof and consisting of a main channel, a synchronizing pilot signal of a first predetermined frequency, a first sub-channel centered at the second harmonic of said pilot signal and a second sub-channel centered at the fourth harmonic of said pilot signal comprising the steps of: providing first, second, third and fourth audio signals; providing a pilot signal of a first predetermined frequency; providing a first subcarrier frequency signal at twice the frequency of said pilot signal; providing a second sub-carrier frequency signal at quadruple the frequency of said pilot signal; applying said first and second audio signals to a first audio gate and switching said first gate at the frequency of said second sub-carrier frequency signal; applying said third and fourth audio signals to a second audio gate and switching said second audio gate at the frequency of said second subcarrier frequency signal; applying the outputs from said first and second audio gates to a third audio gate and switching said third audio gate at the frequency of said first sub-carrier frequency signal; and combining the output of said third audio gate with said pilot to obtain said composite signal.
2. In a four channel receiving system, a method for decoding first, second, third and fourth audio signals from a compatible four channel composite signal adapted to be received from an FM radio transmitter having said composite signal modulated on the carrier thereof, said composite signal consisting of a main channel, a synchronizing pilot signal of a first predetermined frequency, a first sub-channel centered at the second harmonic of said pilot signal and a second sub-channel centered at the fourth harmonic of said pilot signal, comprising the steps of: extracting said pilot signal; providing a first switching signal at twice the frequency of said pilot signal; providing a second switching signal at quadruple the frequency of said pilot signal; applying said composite signal to a first audio gate and switching said first audio gate at a frequency equal to the frequency of said first switching signal to provide a first gate output signal and a second gate output signal; applying said first gate output signal to a second audio gate and switching said second audio gate at a frequency equal to the frequency of said second switching signal to provide said first and second audio signals; and applying said second gate output signal to a third audio gate and switching said third audio gate at a frequency equal to the frequency of said second switching signal to provide said third and fourth audio signals.
3. In a four channel broadcasting system, a method for providing a compatible four channel composite signal for use in conjunction with an FM radio transmitter for transmitting said composite signal, which composite signal includes a main channel with first, plus second, plus third and plus fourth audio signals combined thereon, a pilot signal of a predetermined frequency removed from said main channel, a first suppressed sub-channel centered on a frequency equal to the second harmonic of said pilot signal, said first sub-channel having first, plus second, minus third, minus fourth audio signals and in quadrautre therewith first, minus second, minus third and plus fourth audio signals combined thereon and a second suppressed sub-channel centered on a frequency twice that of said first sub-channel having first, minus second, plus third, minus fourth audio signals combined thereon, comprising the steps of: providing a pilot signal of a first predetermined frequency; providing a first switching signal at twice the frequency of said pilot signal; providing a second switching signal at quadruple the frequency of said pilot signal; utilizing said second switching signal to switch between said first and second audio signals to obtain a first signal; utilizing said second switching signal to switch between said third and fourth audio signals to obtain a second signal; utilizing said first switching signal to switch between said first and second signals to obtain a third signal; combining said third signal with said pilot signal to obtain said composite signal; and modulating said FM transmitter with said composite signal.
4. The method according to claim 3 further comprising the steps of: providing a main channel extending up to a frequency less than the frequency of said pilot signal and having first, plus second, plus third, plus fourth audio signals combined thereon; providing a suppressed sub-channel centered at twice the frequency of said pilot signal and having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon; and providing a second suppressed sub-channel at quadruple the frequency of said pilot signal and having first, minus second, plus third, minus fourth audio signals combined thereon.
5. In a four channel receiving system, a method for deriving first, second, third and fourth audio signals from a compatible four channel composite signal received from an FM radio transmitter, which composite signal includes a main channel with first, plus second, plus third and plus fourth audio signals combined thereon, a pilot signal having a predetermined frequency removed from said main channel, a first suppressed sub-channel which is centered at the second harmonic of said pilot signal, said first sub-channel having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon and a second suppressed sub-channel centered at the fourth harmonic of said pilot signal and having first, minus second, plus third, minus fourth audio signals combined thereon comprising the steps of: deriving a signal equal in frequency to the frequency of said pilot signal; deriving a first switching signal equal in frequency to twice the frequency of said pilot signal; deriving a second switching signal equal in frequency to quadruple the frequency of said pilot signal; utilizing said first switching signal to switch said composite sigNal at twice the frequency of said pilot signal to obtain a first signal and a second signal; utilizing said second switching signal to switch said first signal at quadruple the frequency of said pilot signal to obtain said first and second audio signals; and utilizing said second switching signal to switch said second signal at quadruple the frequency of said pilot signal to obtain said third and fourth audio signals.
6. In a four channel broadcasting system, a method for providing a four channel composite signal compatible with existing mono and stereo standards for use in conjunction with an FM radio transmitter having a predetermined carrier frequency, comprising the steps of: providing a main channel extending up to a first predetermined frequency and having first, plus second, plus third and plus fourth audio signals combined thereon; providing a pilot signal of a second predetermined frequency removed from said carrier frequency; providing a first sub-channel centered at the second harmonic of the frequency of said pilot signal and containing two sub-carriers; modulating the first sub-carrier of said first sub-channel with the plus first, plus second, minus third, minus fourth audio signals and modulating in quadrature therewith the second sub-carrier of said first sub-channel with plus first, minus second, minus third and plus fourth audio signals; providing a second sub-channel centered at the fourth harmonic of the frequency of said pilot signal and containing a sub-carrier; and modulating the sub-carrier of said second sub-channel with the plus first, minus second, plus third and minus fourth audio signals.
7. In a four channel broadcasting system, a system for providing a compatible four channel composite signal for use in conjunction with an FM radio transmitter having said composite signal modulated on the carrier thereof and consisting of a main channel, synchronizing pilot signal of a first predetermined frequency, a first sub-channel centered at the second harmonic of said pilot signal and a second sub-channel centered at the fourth harmonic of said pilot signal comprising: means for providing first, second, third and fourth audio signals; means for providing a pilot signal of a first predetermined frequency; means for providing a first sub-carrier frequency signal at twice the frequency of said pilot signal; means for providing a second sub-carrier frequency signal at quadruple the frequency of said pilot signal; a first audio gate; means for applying said first and second audio signals to said first audio gate; means for switching said first audio gate at the frequency of said second sub-carrier frequency signal; a second audio gate; means for applying said third and fourth audio signals to said second audio gate; means for switching said second audio gate at the frequency of said second sub-carrier frequency signal; a third audio gate; means for applying the outputs from said first and second audio gates to said third audio gate; means for switching said third audio gate at the frequency of said first sub-carrier frequency signal; and means for combining the output of said third audio gate with said pilot signal to obtain said composite signal.
8. In a four channel receiving system, a system for decoding first, second, third and fourth audio signals from a compatible four channel composite signal adapted to be received from an FM radio transistor having said composite signal modulated on the carrier thereof, said composite signal consisting of a main channel, a synchronizing pilot signal of a first predetermined frequency, a first sub-channel centered at the second harmonic of said pilot signal and a second sub-channel centered at the fourth harmonic of said pilot signal, comprising: means for extracting said pilot signal from said composite signal; means for providing a first switching signal at twice the frequency of said pilot signal; means for providing a second switching signal at quadruple the frequency of said pilot signal; a first audio gaTe; means for applying said composite signal to said first audio gate; means for switching said first audio gate at a frequency equal to the frequency of said first switching signal to provide a first gate output signal and a second gate output signal; a second audio gate; means for applying said first gate output signal to said second audio gate; means for switching said second audio gate at a frequency equal to the frequency of said second switching signal to provide said first and second audio signals; a third audio gate; means for applying said second gate output signal to said third audio gate; and means for switching said third audio gate at a frequency equal to the frequency of said second switching signal to provide said third and fourth audio signals.
9. In a four channel broadcasting system, a system for providing a compatible four channel composite signal for use in conjunction with an FM radio transmitter for transmitting said composite signal, which composite signal includes a main channel with first, plus second, plus third and plus fourth audio signals combined thereon, a pilot signal of a predetermined frequency removed from said main channel, a first suppressed subchannel centerd on a frequency equal to the second harmonic of said pilot signal, said first sub-channel having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon and a second suppressed sub-channel centered on a frequency twice that of said first sub-channel having first, minus second, plus third, minus fourth audio signals combined thereon, comprising: means for providing a pilot signal of a first predetermined frequency; means for providing a first switching signal at twice the frequency of said pilot signal; means for providing a second switching signal at quadruple the frequency of said pilot signal; means for switching between said first and second audio signals at quadruple the frequency of said pilot signal to obtain a first signal; means for switching between said third and fourth audio signals at quadruple the frequency of said pilot signal to obtain a second signal; means for switching between said first and third signals at twice the frequency of said pilot signal to obtain a third signal; and means for combining said third signal with said pilot signal to obtain said composite signal.
10. The system according to claim 9 wherein said composite signal includes a main channel extending up to a frequency less than the frequency of said pilot signal and having first, plus second, plus third, plus fourth audio signal combined thereon; a suppressed sub-channel centered at twice the frequency of said pilot signal and having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon; and a second suppressed sub-channel at quadruple the frequency of said pilot signal and having first, minus second, plus third, minus fourth audio signals combined thereon.
11. In a four channel receiving system, a system for deriving first, second, third and fourth audio signals from a compatible four channel composite signal received from an FM radio transmitter, which composite signal includes a main channel with first, plus second, plus third and plus fourth audio signals combined thereon, a pilot signal having a predetermined frequency removed from said main channel, a first suppressed sub-channel which is centered at the second harmonic of said pilot signal, said first sub-channel having first, plus second, minus third, minus fourth audio signals and in quadrature therewith first, minus second, minus third and plus fourth audio signals combined thereon and a second suppressed sub-channel centered at the fourth harmonic of said pilot signal and having first, minus second, plus third, minus fourth audio signals combined thereon comprising: means for deriving a signal equal in Frequency to the frequency of said pilot signal; means for deriving a first switching signal equal in frequency to twice the frequency of said pilot signal; means for deriving a second switching signal equal in frequency to quadruple the frequency of said pilot signal; means for utilizing said first switching signal to switch said composite signal at twice the frequency of said pilot signal to obtain a first signal and a second signal; means for utilizing said second switching signal to switch said first signal at quadruple the frequency of said pilot signal to obtain said first and second audio signals; and means for utilizing said second switching signal to switch said second signal at quadruple the frequency of said pilot signal to obtain said third and fourth audio signals.
12. In a four channel broadcasting system, a system for providing a four channel composite signal compatible with existing mono and stereo standards for use in conjunction with an FM radio transmitter having a predetermined carrier frequency, comprising: means for providing a main channel extending up to a first predetermined frequency and having first, plus second, plus third and plus fourth audio signals combined thereon; means for providing a pilot signal of a second predetermined frequency removed from said carrier frequency; means for providing a first sub-channel centered at the second harmonic of the frequency of said pilot signal and containing two sub-carriers; means for modulating the first sub-carrier of said first sub-channel with the plus first, plus second, minus third, minus fourth audio signals and for modulating in quadrature therewith the second sub-carrier of said first sub-channel with plus first, minus second, minus third and plus fourth audio signals; means for providing a second sub-channel centered at the fourth harmonic of the frequency of said pilot signal and containing a subcarrier; and means for modulating the sub-carrier of said second sub-channel with the plus first, minus second, plus third and minus fourth audio signals.
13. A compatible four channel audio system for providing a compatible four channel composite signal comprising means for providing left front, left rear, right front and right rear audio signals, means for providing a 19 kHz pilot signal, means for providing a 38 kHz sub-carrier signal, first circuit means coupled to said left front and left rear audio signals for combining all frequencies of said left front and left rear audio signals above 4 kHz and for providing separation between said left front and left rear audio signals at frequencies less than 4 kHz, first encoder means coupled to said first circuit means and said left front and left rear audio signals, said first encoder means including first switch means responsive to said pilot signal for providing a first encoder output during the positive half cycle of said pilot signal and second switch means responsive to said pilot signal for providing a second encoder output during the negative half cycle of said pilot signal, second circuit means coupled to said right front and right rear audio signals for combining all frequencies of said right front and right rear audio signals above 4 kHz and for providing separation between said right front and right rear audio signals at frequencies less than 4 kHz, second encoder means coupled to said second circuit means and said right front and right rear audio signals, said second encoder means including first switch means responsive to said pilot signal for providing a first encoder output during the positive half cycle of said pilot signal and said second switch means responsive to said pilot signal for providing a second encoder output during the negative half cycle of said pilot signal, means for combining the output signals from said first and second encoder means to provide said composite signal, and transmitter means for transmitting said composite signal, said transmitter means responsive to said 38 kHz sub-carrier signal for transmitting for transmitting during the positive cycles of said subcarrier signal a main channel having left front plus right front audio signals modulated thereon, said 19 kHz pilot signal and a suppressed sub-channel having left front minus right front audio signals modulated thereon and for transmitting during the negative cycles of said sub-carrier signal a main channel having left rear plus right rear audio signals modulated thereon, said 19 kHz pilot signal and a suppressed sub-channel having left rear minus right rear signals modulated thereon.
14. The system according to claim 13 further including means for receiving said composite signal, means for extracting said 19 kHz pilot signal from said composite signal, first decoder means adapted to receive the left front and left rear audio signals, and first decoder including first switch means responsive to said pilot signal for providing said left front audio signal during the positive half cycle of said pilot signal and second switch means responsive to said pilot signal for providing said left rear audio signal during the negative half cycle of said pilot signal, and second decoder means adapted to receive said right front and right rear audio signals, said second decoder means including first switch means responsive to said pilot signal for providing said right front audio signal during the positive half cycle of said pilot signal and second switch means responsive to said pilot signal for providing said right rear audio signal during the negative half cycle of said pilot signal.
US00319939A 1970-04-29 1972-12-29 Compatible four channel fm system Expired - Lifetime US3822365A (en)

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US05/482,415 US3967069A (en) 1972-12-29 1974-06-24 Compatible four channel FM system
US05/649,153 US4190737A (en) 1972-12-29 1976-01-14 Compatible four channel FM system

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3967069A (en) * 1972-12-29 1976-06-29 Matsushita Electric Corporation Of America Compatible four channel FM system
US4041244A (en) * 1972-12-29 1977-08-09 Matsushita Electric Industrial Co., Ltd. Composite stereophonic signal generator
US4115663A (en) * 1976-10-04 1978-09-19 Zenith Radio Corporation Doubly balanced demodulator for multiple channel FM stereo system
US4190737A (en) * 1972-12-29 1980-02-26 Matsushita Electric Corp. Of America Compatible four channel FM system

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3679832A (en) * 1971-03-23 1972-07-25 Bell Telephone Labor Inc Three-channel fm stereo transmission
US3708623A (en) * 1970-04-29 1973-01-02 Quadracast Syst Inc Compatible four channel fm system

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3708623A (en) * 1970-04-29 1973-01-02 Quadracast Syst Inc Compatible four channel fm system
US3679832A (en) * 1971-03-23 1972-07-25 Bell Telephone Labor Inc Three-channel fm stereo transmission

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3967069A (en) * 1972-12-29 1976-06-29 Matsushita Electric Corporation Of America Compatible four channel FM system
US4041244A (en) * 1972-12-29 1977-08-09 Matsushita Electric Industrial Co., Ltd. Composite stereophonic signal generator
US4190737A (en) * 1972-12-29 1980-02-26 Matsushita Electric Corp. Of America Compatible four channel FM system
US4115663A (en) * 1976-10-04 1978-09-19 Zenith Radio Corporation Doubly balanced demodulator for multiple channel FM stereo system

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