1. An error-corrected swept phase timing system, comprising:
a clock generator for providing a first clock signal and a swept phase signal,
a phase corrector including a control port for producing a second clock signal in response to the swept phase signal,
an error detector for producing an error signal proportional to phase error between the first and second clock signals; and
a controller coupled to the control port for producing a control signal proportional to the error signal.
2. The system of claim 1 wherein the error detector comprises a phase detector for producing a phase signal proportional to phase between the first and second clock signals, a first differentiator for producing a derivative signal from the phase signal and a second differentiator for producing an error signal from the derivative signal.
3. The system of claim 2 wherein the error detector comprises a phase detector for producing a phase signal proportional to phase between the first and second clock signals, a reference ramp generator for producing a reference ramp signal and a differencing element for producing an error signal proportional to the difference between the reference ramp signal and the phase signal.
4. A radar, laser or TDR ranging system comprising:
a clock generator for producing a transmit clock signal and a swept phase signal,
a transmitter triggered by the transmit clock signal for producing a transmitted signal,
a phase corrector including a control port for correcting the phase of the swept phase signal and for producing a receive clock signal,
a receiver gated by the receive clock signal for producing detected echoes of the transmitted signal,
an error detector for producing an error signal proportional to phase error between the transmit clock signal and the receive clock signal; and
a controller coupled to the control port for producing a control signal proportional to the error signal to correct phase error between the transmit and receive clock signals.
5. The system of claim 4 wherein the error detector comprises a phase detector for producing a phase signal proportional to phase between the transmit and receive clock signals, a first differentiator for producing a derivative signal from the phase signal and a second differentiator for producing an error signal from the derivative signal.
6. The system of claim 4 wherein the error detector comprises a phase detector for producing a phase signal proportional to phase between the transmit and receive clock signals, a reference ramp generator for producing a reference ramp signal and a differencing element for producing an error signal proportional to the difference between the reference ramp signal and the phase signal.
7. A method for generating error-corrected swept phase timing signals in time expanded radar systems, comprising:
generating a first dock signal,
generating a swept phase signal,
correcting the phase of the swept phase signal in response to a control signal to produce a second clock signal,
detecting phase errors between the first and second clock signals to produce an error signal; and
producing a control signal responsive to the error signal for correcting the phase of the swept phase signal.
8. The method of claim 7 wherein detecting phase errors between the first and second clock signals further comprises detecting phase between the first and second clock signals to produce a phase signal, differentiating the phase signal to produce a derivative signal, and differentiating the derivative signal.
9. The method of claim 7 wherein detecting phase errors between the first and second clock signals further comprises detecting phase between the first and second clock signals to produce a phase signal, producing a reference voltage ramp and differencing the phase signal and the reference ramp.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A method, in an eNodeB, for generating downlink communications in a multiple antenna system, the eNodeB being comprised in a wireless communications network, the method comprising:
transmitting, to a plurality of user equipments, a plurality of Channel State Information (CSI) reference signals, each reference signal being beamformed into a distinct direction within at least one correlated domain of the multiple antenna system, wherein the at least one correlated domain is an elevation domain;
receiving, from a specific user equipment, at least one Channel State Information (CSI) report for at least a subset of said plurality of CSI reference signals, wherein the CSI report comprises a Precoder Matrix Indicator, PMI, a Rank Indicator (RI) and at least one signal quality indicator (CQI);
determining at least one candidate beamforming direction for the specific user equipment, wherein the at least one candidate beamforming direction is based, at least in part, on a signal quality assessment, which comprises a reference signal received power (RSRP), a reference signal received quality (RSRQ), and a received signal strength indicator (RSSI);
determining, by the eNodeB, at least one primary reference signal among said plurality of reference signals based on the received at least one CSI report; and
generating downlink communication signals for antenna element(s) andor sub-elements of the multiple antenna system, wherein the downlink communication signals are beamformed into a transmitting direction that aligns most closely with a beamforming direction of the at least one primary reference signal determined by the eNodeB, as compared to any other beamforming direction of reference signals comprised in the subset of said plurality of CSI reference signals.
2. The method of claim 1, wherein the plurality of Channel State Information CSI reference signals comprise Channel State Information reference symbols.
3. The method of claim 1, the method determines the at least one candidate beamforming direction for the specific user equipment, within said at least one correlated domain of the multiple antenna system, for a subsequent data transmission.
4. The method of claim 3, wherein the determining of at least one candidate beamforming direction is based, at least in part, on uplink measurements on received signals transmitted by the specific user equipment.
5. The method of claim 3, wherein the determining of at least one candidate beamforming direction is based, at least in part, on a plurality of signal quality assessments, received from the specific user equipment, of beamformed signals received by the specific user equipment.
6. The method of claim 3, wherein the receiving further comprises receiving a CSI report for a single reference signal, of said plurality of CSI reference signals, with a beamforming direction that aligns most closely with the at least one candidate beamforming direction, as compared to any other beamforming direction of any other reference signal of said plurality of CSI reference signals.
7. The method of claim 1, wherein the receiving further comprises receiving a plurality of CSI reports for respective reference signals of the plurality of CSI reference signals.
8. The method of claim 7, further comprising configuring a plurality of CSI processes andor a CoMP Measurement Set for said specific user equipment, the CSI processes andor the set comprising, at least, the plurality of CSI reference signals associated with said plurality of CSI reports.
9. The method of claim 8, wherein the determining, by the eNodeB, further comprises selecting said at least one primary reference signal from said plurality of CSI reference signals associated with said plurality of CSI reports.
10. The method of claim 3, wherein the at least one primary reference signal is selected such that a beamforming direction of said at least one primary reference signal, aligns most closely with the at least one candidate beamforming direction, as compared to any other beamforming direction of any other reference signal of said plurality of CSI reference signals.
11. The method of claim 6, wherein the determining of at least one candidate beamforming direction is further based on signal quality indicators (CQI) of the at least one CSI report.
12. The method of claim 6, wherein the at least one CSI report is a plurality of CSI reports and the at least one primary reference signal is a reference signal associated with a CSI report with a highest signal quality indicator or a corresponding highest recommended total transmission rate.
13. The method of claim 1, further comprising:
configuring said specific user equipment to measure said plurality of CSI reference signals, and report an index identifying a recommended effective channel among a plurality of effective channels excited by said plurality of CSI reference signals; and
receiving said index from said specific user equipment.
14. The method of claim 13, wherein the determining, by the eNodeB, further comprises determining the at least one primary reference signal based on said received index.
15. The method of claim 14, wherein said index and said at least one CSI report are received in a same report from the specific user equipment, and the at least one CSI report represents said identified recommended effective channel.
16. An eNodeB, for generating downlink communications in a multiple antenna system, the eNodeB being comprised in a wireless communications network, the eNodeB comprising:
a transmitter to transmit, to a plurality of user equipments, a plurality of Channel State Information (CSI) reference signals, each reference signal being beamformed into a distinct direction within at least one correlated domain of the multiple antenna system, wherein the at least one correlated domain is an elevation domain;
a receiver to receive, from a specific user equipment, at least one Channel State Information (CSI) report for a first set of reference signals of said plurality of transmitted reference signals, wherein the CSI report comprises a Precoder Matrix Indicator (PMI), a Rank Indicator (RI), and at least one signal quality indicator (CQI);
one or more processors to:
determine at least one candidate beamforming direction for the specific user equipment, wherein the at least one candidate beamforming direction is based, at least in part, on a signal quality assessment, which comprises a reference signal received power (RSRP), a reference signal received quality (RSRQ), and a received signal strength indicator (RSSI);
determine, by the eNodeB, at least one primary reference signal among said first set of reference signals; and
generate downlink communication signals for antenna element(s) andor sub-elements of the multiple antenna system, wherein the downlink communication signals are beamformed into a beamforming direction, consistent with the at least one candidate beamforming direction, of the at least one primary reference signal determined by the eNodeB, as compared to any other beamforming direction of reference signals comprised in the first set of reference signals.
17. The eNodeB of claim 16, wherein the plurality of Channel State Information (CSI) reference signals comprise Channel State Information Reference Symbols (CSI-RS).
18. The eNodeB of claim 16, wherein the one or more processors determine the at least one candidate beamforming direction within said at least one correlated domain of the multiple antenna system, for a subsequent data transmission.
19. The eNodeB of claim 18, wherein the one or more processors determine the at least one candidate beamforming direction based, at least in part, on uplink measurements on received signals transmitted by the specific user equipment.
20. The eNodeB of claim 18, wherein the one or more processors determine the at least one candidate beamforming direction based, at least in part, on a plurality of signal quality assessments, received from the specific user equipment, of beamformed signals received by the specific user equipment.
21. The eNodeB of claim 18, wherein the one or more processors receive a CSI report for a single reference signal, of said plurality of CSI reference signals, with a beamforming direction that aligns most closely with the at least one candidate beamforming direction, as compared to any other beamforming direction of any other reference signal of said plurality of reference signals.
22. The eNodeB of claim 16, wherein the one or more processors receive a plurality of CSI reports for respective reference signals of the plurality of CSI reference signals.
23. The eNodeB of claim 22, wherein the one or more processors configure a plurality of CSI processes andor a CoMP Measurement Set for said specific user equipment, the CSI processes andor the set comprising, at least, the plurality of CSI reference signals associated with said plurality of CSI reports.
24. The eNodeB of claim 23, wherein the one or more processors select said at least one primary reference signal from said plurality of CSI reference signals associated with said plurality of CSI reports.
25. The eNodeB of claim 18, wherein the at least one primary reference signal is selected such that a beamforming direction of said at least one primary reference signal, aligns most closely with the at least one candidate beamforming direction, as compared to any other beamforming direction of any other reference signal of said plurality of reference signals.
26. The eNodeB of claim 21, wherein the one or more processors determine the at least one candidate beamforming direction further based on signal quality indicators (CQI) of the at least one CSI report.
27. The eNodeB of claim 21, wherein the at least one CSI report is a plurality of CSI reports and the at least one primary reference signal is a reference signal associated with a CSI report with a highest signal quality indicator or a corresponding highest recommended total transmission rate.
28. The eNodeB of claim 16, wherein:
the one or more processors configure said specific user equipment to measure said plurality of reference signals, and report an index identifying a recommended effective channel among a plurality of effective channels excited by said plurality of reference signals; and
the receiver receives said index from said specific user equipment.
29. The eNodeB of claim 28, wherein the one or more processors determine the at least one primary reference signal based on said received index.
30. The eNodeB of claim 29, wherein said index and said at least one CSI report are received in a same report from the specific user equipment, and the at least one CSI report represents said identified recommended effective channel.