Claims
- 1. A passband signal controlled passband equalizing apparatus for correcting passband data signals x(t) comprising:
- a passband correction circuit connected to receive at its input said signals x(t) and to provide at its output corrected passband signals v(t) comprising:
- means, including a plurality of fixed delay elements respectively coupled to the input and output of said passband correction circuit for delaying by time intervals t.sub.j and t.sub.m, the signals x(t) and v(t), respectively, thereby forming delayed replicas x(t-t.sub.j) and v(t-t.sub.m), respectively; a plurality of variable parameter circuit elements including multipliers for multiplying said delayed replicas v(t-t.sub.m) and x(t-t.sub.j), respectively, by factors of r.sub.m and P.sub.j, respectively, and phase shifters for making e.sup.i.psi.m and e.sup.i.phi.j phase shift operations by applying phase shift factors of .psi.m and .phi.j to the delayed replicas v(t-t.sub.m) and x(t-t.sub.j), respectively; and addition means coupled to said delay elements for respectively adding the delayed replicas x(t-t.sub.j) and v(t-t.sub.m) after being processed in said plurality of variable parameter circuit elements,
- for providing a continuous transfer function in time defined by: ##EQU24## where M and N are the number of multipliers and phase shifters; a carrier recovery circuit;
- a first demodulation circuit cooperating with said carrier recovery circuit for converting said passband modulated signals from said passband correction circuit into baseband data signals; and
- a control circuit connected to said first demodulation circuit and said passband correction circuit for estimating an error of said passband signals, said control circuit altering said multiplying and phase shift factors (r.sub.m, P.sub.j, .psi..sub.m, .phi..sub.j) of the circuit elements in a direction to reduce said error.
- 2. An equalizing apparatus as claimed in claim 1, wherein the control circuit includes means which implements an algorithm derived from a stochastic gradient algorithm including a read-only memory whose address codes comprise a first code representing the selected value of the variable elements, second and third codes derived from outputs of the first demodulation circuit, the second code representing the regenerated data and the third code representing the value of the error, and by a fourth code supplied by a delay circuit having a time delay of nT where 1/T is the data transmission rate and n is an integer whose inputs receive the third and fourth codes, a sampling circuit being provided to apply the codes to the read-only memory circuit at the rate of the transmitted data, the output codes of the read-only memory circuit being used to fix the value of the variable elements in accordance with said derived algorithm.
- 3. An equalizing apparatus as claimed in claim 1 for data signals modulated in accordance with the QAM modulation method, the control circuit comprising selection means which only derives an error signal from the peak amplitude of said baseband signals, spaced apart by instants nT, where n is an integer, and T is the period of said data transmission rate 1/T, whose amplitudes are a maximum.
- 4. A baseband signal controlled passband equalizing apparatus, for correcting data signals x(t) modulated on a carrier signal so that each data are assigned to an amplitude and phase of the carrier and some data have a maximum value of amplitude, comprising:
- a passband correction circuit connected to receive said data signals x(t) modulated on a carrier signal and arranged for providing corrected data signals v(t) modulated on said carrier signal, said passband correction circuit being formed by at least one delay element for providing at least one delayed by t.sub.m replica v(t-t.sub.m) of v(t), by a variable multiplier for multiplying by variable r.sub.m said replica v(t-t.sub.m), by a variable phase shifter element for phase shifting by variable .psi..sub.m the product of .psi..sub.m and said replica v(t-t.sub.m), by a plurality of "N" delay elements for providing delayed by t.sub.j replica x(t-t.sub.j) of x(t), by a plurality of "N" variable multipliers for multiplying by variable p.sub.j said replica x(t-t.sub.j), by a plurality of "N" variable phase shifter elements for phase shifting by variables .phi..sub.j the respective products of p.sub.j and said replica x(t-t.sub.j) and by adder means processing the following formula for providing the signal v(t): ##EQU25## where symbols e.sup.i.psi.m and e.sup.i.phi.j indicate the phase shifting processed by said variable phase shifter elements;
- a gain controlled amplifier for amplifying a passband corrected signal from said passband correction circuit;
- a demodulation circuit and carrier recovery circuit connected to receive a signal from said controlled amplifier, and generate said baseband data signal x(t);
- correction circuit control means connected to receive a demodulated baseband signal from said demodulation circuit to provide control signals to said variable multiplier and phase shifter elements representing an estimated error of said data signals, said correction signals controlling said variable multiplier and phase shifter elements in a direction to minimize said estimator error;
- gain control means connected to said demodulator for deriving a control voltage for said gain controlled amplifier such that said gain controlled amplifier maintains the amplitude of a demodulated baseband signal which is higher than a desired maximum value at a target value.
- 5. A baseband signal controlled passband equalizing apparatus according to claim 4, wherein said plurality of "N" delay elements comprises said at least one delay element which provides the at least one delayed by t.sub.m replica v(t-t.sub.m) of v(t).
- 6. A baseband signal controlled passband equalizing apparatus for correcting data signals x(t) modulated on a carrier signal comprising:
- an oscillator generating a signal at said carrier signal frequency;
- a demodulation circuit for producing a demodulated signals x(t) from said carrier signal and oscillator signal;
- a passband correction circuit connected to receive said demodulated signals x(t) and to provide corrected signal v(t) modulated on said carrier signal, said passband correction circuit being formed by equalizing circuits provided with variable parameter circuits for processing the demodulated signals x(t) and for providing the signals v(t) to be modulated, and a correction modulation circuit cooperating with said oscillator of the carrier frequency for modulating the signals v(t) on the carrier signals;
- a carrier recovery circuit;
- a detection demodulation circuit cooperating with said carrier recovery circuit for converting modulated signals from said passband correction circuit into baseband data signals;
- a control circuit connected to receive a signal from said passband correction circuit for estimating an error of said baseband signals from a transmitted signal, said control circuit altering said variable parameter circuits in a direction to reduce said error.
- 7. A baseband signal controlled passband equalizing apparatus, for correcting data signals x(t) having a data transmission rate of 1/T modulated on a carrier signal so that each data are assigned to an amplitude and phase of the carrier and some data have a maximum value of amplitude, comprising:
- a passband correction circuit connected to receive said data signals x(t) modulated on a carrier signal and arranged for providing corrected data signals v(t) modulated on said carrier signal, said passband correction circuit including a first delay element for providing a delayed by T/2 replica v(t-T/2) of v(t), a first variable multiplier, for multiplying by a variable "r" said replica v(t-T/2), a first phase shifter element for phase shifting by a variable .psi., the product of "r" and said replica v(t-T/2), a second delay element for providing a delayed by T/2 replica x(t-T/2) of x(t), a second variable multiplier for multiplying by a variable p said replica x(t-T/2), a second phase shifter element for phase shifting by a variable .phi. the product of p and said replica x(t-T/2) and adder means for providing the signal v(t):
- v(t)=re.sup.i.psi. .multidot.v(t-T/2)+pe.sup.i.phi. .multidot.x(t-T/2)+x(t)
- where symbols e.sup.i.psi. and e.sup.i.phi. represent the phase shift processed by said variable phase shifter elements;
- a gain controlled amplifier for amplifying a passband corrected signal from said passband correction circuit;
- a demodulation circuit and carrier recovery circuit connected to receive a gain controlled passband signal from said controlled amplifier, and generate baseband data signal x(t);
- correction circuit control means connected to receive a demodulated baseband signal from said demodulation circuit to provide control signals to said variable multiplier elements and phase shifter elements representing an estimated error of said data signals x(t), said correction signals controlling said variable multiplier elements and phase shifter elements in a direction to minimize said estimated error;
- gain control means connected to a demodulator for deriving a control voltage for said gain controlled amplifier such that said gain controlled amplifier maintains the regenerated demodulated baseband signal maximum value at a target value.
Priority Claims (1)
Number |
Date |
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83 07909 |
May 1983 |
FRX |
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Parent Case Info
This is a continuation of application Ser. No. 880,336, filed June 24, 1986, now abandoned, which was a continuation of application Ser. No. 607,324, filed May 4, 1984, and now abandoned.
US Referenced Citations (9)
Continuations (2)
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Number |
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Parent |
880336 |
Jun 1986 |
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Parent |
607324 |
May 1984 |
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