Claims
- 1. A transmit-modulation cancellation transceiver, comprising:
a transmitting section generating a transmit signal, the transmit signal containing at least two modulated transmit logic levels; a receiving section receiving receive signal, the receive signal containing at least two modulated receive logic levels; a mixing stage that mixes said transmit signal with said receive signal to produce a mixed signal; and a demodulator circuit that receives the modulated transmit logic levels and performs conditional demodulation of said mixed signal based on said transmit logic levels in a manner that recovers said receive logic levels from the mixed signal.
- 2. The transceiver of claim 1, wherein the modulated transmit logic levels comprise a transmit symbol and the modulated receive logic levels comprise a receive symbol and wherein the transceiver further comprises a control loop for equalizing the symbol timing of said transmit and receive signals, respectively, adjacent the mixing stage.
- 3. The transceiver of claim 2, wherein the control loop further comprises a circuit that modifies the aggregate transmitted baud rate.
- 4. The transceiver of claim 3, wherein the control loop further comprises a symbol timing-error detection circuit.
- 5. The transceiver of claim 4, wherein the symbol timing-error detection circuit further comprises a narrow-band band pass filter connected to the output of the conditional demodulator for monitoring the power spectrum in said narrow band.
- 6. The transceiver of claim 5, wherein the narrow-band band pass filter is centered at the baud rate frequency so that optimal symbol timing is indicated by a minimum power content in said filter.
- 7. The transceiver of claim 5, wherein the narrow-band band pass filter is centered at frequency with is a predetermined fraction of said baud rate so that optimal symbol timing is indicated by a maximum power content in said filter.
- 8. The transceiver of claim 1, wherein the modulation further comprises Frequency Shift Keying (FSK) that generates FSK modulated transmit signals and FSK modulated receive signals.
- 9. The transceiver of claim 8, wherein the FSK modulated transmit signals and FSK modulated receive signals share a predetermined center frequency for the transmit and receive signals and share a predetermined deviation between the symbols.
- 10. The transceiver of claim 8, wherein the FSK modulated transmit signals and FSK modulated receive signals have a transmit signal center frequency and a receive signal center frequency, wherein the transmit signal center frequency and the receive signal center frequency are different.
- 11. The transceiver of claim 10, wherein the FSK modulated transmit signals and FSK modulated receive signals further comprise binary FSK transmit and receive signals that share a predetermined deviation between the symbols which results in three IF frequencies out of the four combinations of transmit and receive symbol frequencies.
- 12. The transceiver of claim 11 further comprising a symbol deviation control loop.
- 13. The transceiver of claim 12, wherein the symbol deviation loop further comprises a first frequency discriminator centered at one of the mixed IF frequencies, a second frequency discriminator centered at another one of the mixed IF frequencies and followed by a bipolar demodulator that multiplies said second discriminator output by the polarity of the transmitted bit values, and a linear combination circuit that outputs a signal proportional to the transmitted deviation.
- 14. The transceiver of claim 1, wherein said modulation further comprises Phase Shift Keying (PSK) that generates PSK modulated transmit signals and PSK modulated receive signals.
- 15. The transceiver of claim 14, wherein the modulation further comprises quadrature phase shift keying (QPSK).
- 16. The transceiver of claim 15, wherein said QPSK modulation is differential.
- 17. The transceiver of claim 1, wherein the transmit signal is delivered to said mixing stage via the receiving section.
- 18. A method for two way communications over a channel, the method comprising:
generating a transmit signal consisting of modulated transmit logic levels to a communication channel; receiving a receive signal consisting of modulated receive logic levels from the communication channel; mixing said transmit signal with said receive signal to produce a mixed signal; and conditionally demodulating said mixed signals based on the values of said transmit logic levels to reproduce the received logic levels.
- 19. The method of claim 18 further comprising equalizing the modulated transmit and receive logic levels of said transmit and receive signals, respectively, prior to the mixing step.
- 20. The method of claim 19, wherein the equalization further comprises modifying the aggregate transmitted baud rate.
- 21. The method of claim 20, wherein the equalization further comprises detecting a symbol timing error.
- 22. The method of claim 21, wherein detecting a symbol timing error further comprises monitoring the power spectrum in a narrow band pass filter connected to the output of the conditional demodulator.
- 23. The method of claim 22, wherein the monitoring further comprises determining an optimum symbol timing when a minimum power content is detected by said filter.
- 24. The method of claim 22, wherein the monitoring determining an optimal symbol timing when a maximum power content is detected by said filter.
- 25. The method of claim 18, wherein the modulation further comprises Frequency Shift Keying (FSK) that generates FSK modulated transmit signals and FSK modulated receive signals.
- 26. The method of claim 25, wherein the FSK modulated transmit signals and FSK modulated receive signals share a predetermined center frequency for the transmit and receive signals and share a predetermined deviation between the symbols.
- 27. The method of claim 25, wherein the FSK modulated transmit signals and FSK modulated receive signals have a transmit signal center frequency and a receive signal center frequency, wherein the transmit signal center frequency and the receive signal center frequency are different.
- 28. The method of claim 27, wherein the FSK modulated transmit signals and FSK modulated receive signals further comprise binary FSK transmit and receive signals that share a predetermined deviation between the symbols which results in three IF frequencies out of the four combinations of transmit and receive symbol frequencies.
- 29. The method of claim 28 further comprising determining a symbol deviation.
- 30. The method of claim 18, wherein said modulation further comprises Phase Shift Keying (PSK) that generates PSK modulated transmit signals and PSK modulated receive signals.
- 31. The method of claim 30, wherein the modulation further comprises quadrature phase shift keying (QPSK).
- 32. The method of claim 31, wherein said QPSK modulation is differential.
- 33. The method of claim 18, wherein the transmit signal is delivered to said mixing stage via the receiving section.
- 34. A microwave self-mixing transceiver front-end, comprising:
an oscillator loop having an amplifier, a resonator at a particular transmit frequency connected to said amplifier, and a filter connected between said resonator and said amplifier input; and a mixer coupled to the output of said amplifier and a microwave port connected to the junction between said resonator and said filter.
- 35. The transceiver front-end of claim 34, wherein said filter passes a received frequency with minimum loss and feeds the transmit frequency through with a predetermined attenuation.
- 36. The transceiver front end of claim 34 further comprising a filter between said amplifier and said mixer.
- 37. The transceiver front end of claim 34, wherein resonator includes a tuning port for transmit modulation.
- 38. A microwave self-mixing transceiver front-end, comprising:
an oscillator loop having an amplifier, a resonator at a transmit frequency connected to said amplifier input, a power splitter whose input is connected said amplifier's output and whose outputs are connected to said resonator and to a microwave port; and mixer coupled to said microwave port so as to receive signals form said port and a fraction of the transmitted signal.
- 39. The front-end of claim 38 further comprising a low-noise amplifier (LNA) between said microwave port and said mixer.
- 40. The front-end of claim 39, wherein said mixer is balanced and an output of the LNA is connected to a diplexer such that the transmit signal is coupled via the diplexer to one port of said mixer and the received signal is coupled via another port of the diplexer to another port of said mixer.
- 41. A radio, comprising:
an enclosure that houses the radio components; an antennae electrically connected to the radio components that is capable of transmitting and receiving emissions along an antennae beam direction; and a sight mechanism that is parallel to the antennae beam direction that permits the antennae to be aligned properly with another radio, the sight mechanism further comprising a front aperture in the enclosure, a rear aperture in the enclosure to form a sight line through the enclosure that is used to align the radio and a mirror adjacent the sight line that permits adjustment of the antennae beam direction while misaligned with the sight line.
- 42. The radio of claim 41, wherein the radio is a microwave radio and the antennae transmits and receives microwave frequency emissions.
- 43. The radio of claim 41 further comprising a gimbals mechanism that is capable of adjusting the positioning of the radio and the antennae beam direction.
- 44. The radio of claim 43, wherein the gimbals mechanism further comprises a first gimbals for adjusting the azimuth of the antennae beam direction and a second gimbals for adjusting the elevation of the antennae beam direction.
- 45. The radio of claim 41, wherein the sight mechanism further comprises a tube within the enclosure along the sight line formed by the front and rear apertures of the sight mechanism that protects the radio components.
- 46. The radio of claim 41, wherein the sight mechanism further comprises a plurality of sight lines through the enclosure.
RELATED APPLICATION
[0001] This application claim priority under 35 USC 119 to U.S. Provisional Patent Application Serial No. 60/435,839 entitled “Wideband Digital Radio with Transmit Modulation Cancellation” and filed on Dec. 20, 2002, the entirely of which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60435839 |
Dec 2002 |
US |