Claims
- 1. An RF/microwave amplitude and phase measurement system comprising:
- a sampling system comprising a plurality of sampling gates, each sampling gate having an RF input terminal, an output terminal and a control terminal;
- a sampling strobe synthesizer operating at a .function..sub.S having an output terminal connected to the control terminals of said sampling gates;
- a discrete time signal processor (DTSP) having a processing signal having a predetermined number of samples per cycle, a plurality of input terminals, respective ones of the output terminals of said sampling gates being connected to respective ones of the input terminals of said DTSP, said DTSP also including a like plurality of channels, each channel being associated with a respective input terminal of said DTSP, and a plurality of output terminals;
- a reference clock;
- wherein:
- signals to be measured are connected to a respective one of said input terminals of said sampling gates;
- the sampling gates and the sampling strobe synthesizer being used in a synchronous sampling mode for frequency conversion and domain conversion;
- the outputs of the sampling system comprise sequences of discrete time signal signal samples where each sample represents the value of the input voltage at the sampling instant, said discrete time signal having a number of samples per cycle T equal to an inverse of a function of the fractional part of the input frequency .function..sub.IN of the input signals divided by the sample frequency .function..sub.s ; said function being given by: ##EQU7## and otherwise being given by 1-frac ##EQU8## the "frac" operator defining the fractional part of its argument; the sampling strobe syntheiszer comprising frequency synthesis means connected to the output of the reference clock;
- said number of samples per cycle in said signals processed by said DTSP being equal to T; and
- the outputs of the DTSP comprising, for each channel, the real and imaginary part of the signal input on that channel.
- 2. An RF/microwave vector analyzer in accordance with claim 1 further comprising a digital control unit, comprising said reference clock, and where the DTSP operates on discrete time signals having a suitable number of samples per cycle T which is constant for every possible input frequency .function..sub.IN, tuning of the analyzer being done by the digital control unit controlling the sampling strobe synthesizer so as to deliver a sampling frequency .function..sub.S given by ##EQU9## where X is a positive integer computed from the following equation: ##EQU10## .function..sub.Smax being the maximum sampling frequency permitted by the discrete time processor;
- the "int" operator means the integer part of its argument.
- 3. An RF/microwave vector analyzer in accordance with claim 2 wherein each gate of said plurality of sampling gates includes an additional feedback input terminal, said sampling gates delivering at their outputs sequences of samples where each sample value is proportional to the voltage difference between the RF input and the feedback input at the sampling instant, and where the DTSP further comprises one more output for each channel which are connected to said feedback inputs of said sampling gates, the DTSP driving said feedback inputs in a manner that this feedback is, for every sample acquired by the sampling gates, and estimation of the sampled RF voltage so that the outputs of the sampling gates are error signals which are used to reestimate the feedback voltages for successive cycles of the discrete time signals.
- 4. An RF/microwave vector analyzer in accordance with claim 1 wherein the DTSP consists of one analog to digital converter for each sampling channel and a digital signal processor (DSP) having a plurality of inputs and plurality of outputs, the outputs of said sampling gates being connected to the inputs of said analog to digital converters, the outputs of said analog to digital converters being sequences of numbers or digital signals that are applied to the inputs of said DSP, the outputs of said DSP comprising, in digital form and for each channel, the real and imaginary part of the signal input on that channel.
- 5. An RF/microwave vector analyzer in accordance with claim 2 wherein the DTSP consists of one analog to digital converter for each sampling channel and a digital signal processor (DSP) having a plurality of inputs and plurality of outputs, the outputs of said sampling gates being connected to the inputs of said analog digital converters, the outputs of said analog to digital converters being digital signals that are applied to the inputs of said DSP, the outputs of said DSP comprising, in digital form and for each channel, the real and imaginary part of the signal input on that channel.
- 6. An RF/microwave vector analyzer in accordance with claim 3 wherein the DTSP consists of one analog to digital converter and one digital to analog converter for each sampling channel, and a digital signal processor (DSP) having a plurality of inputs and plurality of outputs, where
- the outputs of the sampling gates are connected to the inputs of the analog to digital converters;
- the outputs of the analog to digital converters consist of digital signals that are applied to the inputs of the DSP;
- the outputs of the digital to analog converters are connected to the feedback inputs of the sampling gates;
- the inputs of the digital to analog converters are driven by the DSP with a digital signal which represents the feedback voltages in digital form.
- 7. An RF/microwave vector analyzer in accordance with claim 2 wherein the frequency of the input signals is restricted to be an integer multiple or sub-multiple of a reference frequency .function..sub.R generated by the sampling strobe synthesizer and where said sampling strobe synthesizer derives the sampling frequency .function..sub.S from said frequency .function..sub.R by fractional division with digitally controlled analog time interpolation.
- 8. An RF/microwave vector analyzer in accordance with claim 3 wherein the frequency of the input signals is restricted to be an integer multiple or sub-multiple of a reference frequency .function..sub.R generated by the sampling strobe synthesizer and where said sampling strobe synthesizer derives the sampling frequency .function..sub.S from said frequency .function..sub.R by fractional division with digitally controlled analog time interpolation.
- 9. An RF/microwave vector analyzer in accordance with claim 4 wherein the frequency of the input signals is restricted to be an integer multiple or sub-multiple of a reference frequency .function..sub.R generated by the sampling strobe synthesizer and where said sampling strobe synthesizer derives the sampling frequency .function..sub.S from said frequency .function..sub.R by fractional division with digitally controlled analog time interpolation.
- 10. An RF/microwave vector analyzer in accordance with claim 5 wherein the frequency of the input signals is restricted to be an integer multiple or sub-multiple of a reference frequency .function..sub.R generated by the sampling strobe synthesizer and where said sampling strobe synthesizer derives the sampling frequency .function..sub.S from said frequency .function..sub.R by fractional division with digitally controlled analog time interpolation.
- 11. An RF/microwave vector analyzer in accordance with claim 6 wherein the frequency of the input signals is restricted to be an integer multiple or sub-multiple of a reference frequency .function..sub.R generated by the sampling strobe synthesizer and where said sampling strobe synthesizer derives the sampling frequency .function..sub.S from said frequency .function..sub.R by fractional division with digitally controlled analog time interpolation.
- 12. A sampling gate circuit comprising an RF input, a polarization feedback input, a gate output, a four-diodes sampling bridge gate means whose input side is connected to said RF input, operational amplifier to maintain said output side at the same potential as a voltage applied at the feedback input, a positive input of said amplifier being connected to the polarization feedback input, a negative input of said amplifier being connected to said gate output by a feedback network comprising a capacitor in parallel with a resistor, with the output of said operational amplifier being connected to said gate output and producing a voltage pulse for every sample whose magnitude is proportional to the difference between the sampled RF input and the voltage present at the polarization feedback input.
- 13. An RF/microwave vector analyzer in accordance with claim 8 wherein the sampling system comprises, for each channel, a four diodes bridge sampling gate whose output side is maintained at the same potential as the estimated RF sampled voltage by using an operational amplifier having its positive input connected to the feedback voltage, its negative output connected to the output of the sampling gate, and further having a feedback network consisting of a resistor and a capacitor between the operational amplifier's output and negative input, with the output of said operational amplifier being the output of the sampling section and producing a pulse for every sample whose magnitude is proportional to the difference between the sampled RF input and the feedback voltage.
Priority Claims (1)
Number |
Date |
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Kind |
2097397 |
May 1993 |
CAX |
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Parent Case Info
This application is a continuation-in-part application of U.S. patent application Ser. No. 097,221 filed Jul. 27, 1993 now abandoned.
US Referenced Citations (3)
Non-Patent Literature Citations (1)
Entry |
"A High Precision RF Vector Analyzer Based on Synchronous Sampling" by Raymond Courteau, IEEE Transactions on Instrumentation and Measurement, vol. 43, No. 2, Apr. 1994, pp. 306-310. |
Continuation in Parts (1)
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Number |
Date |
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Parent |
97221 |
Jul 1993 |
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