IP Library › Granted Patent US 12,107,786
Granted Patent B2
US 12,107,786 · App. 17/440,103 · Granted Oct 1, 2024

Method for tracking reference signal (TRS) enhancement

Inventors: Yushu Zhang (Beijing, CN); Dawei Zhang (Saratoga, CA); Haitong Sun (Cupertino, CA); Wei Zeng (Saratoga, CA); Weidong Yang (San Diego, CA)
Assignee: Apple Inc.
H04L5/0048H04L1/1896
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Quick Facts
Patent No.
US 12,107,786
App. No.
17/440,103
Granted
Oct 1, 2024
Kind
B2
Abstract

Some embodiments include an apparatus, method, and computer program product for tracking reference signal (TRS) support of high speed use cases of 5G communications in a single frequency network (SFN), where a user equipment (UE) can measure a Doppler offset of a combined signal from two or more transmission reception points (TRPs) of the 5G communications system. A 5G node B (gNB) node can transmit a periodic, semi-persistent (SP), or aperiodic TRS with high measurement density that the UE uses to measure a Doppler offset of a combined signal. For example, the gNB can: trigger the aperiodic TRS based on a downlink assignment; and/or use lower layer signaling to arrange to transmit a semi-persistent TRS or a periodic TRS with a reduced periodicity. In some embodiments, the gNB can measure the Doppler offset based on an uplink signal, and transmit a TRS based on a pre-compensated Doppler frequency.

Claims (70)

1. A first electronic device, comprising:

a transceiver configured to transmit and receive wireless communications; and

a processor, coupled to the transceiver, configured to:

receive using the transceiver, an uplink reference signal from a user equipment (UE);

determine based at least on the uplink reference signal, that a Doppler offset has satisfied a threshold;

based on the determination, use a downlink assignment to enable an aperiodic Tracking Reference Signal (TRS) with high measurement density, wherein the aperiodic TRS shares a same quasi-co-located (QCL) parameter with a Physical Downlink Shared Channel (PDSCH) signal triggered by the downlink assignment; and

transmit, using the transceiver, the aperiodic TRS over a single frequency network (SFN) to the UE using the downlink assignment, wherein the aperiodic TRS enables the UE to decode the PDSCH signal that comprises a combined signal from the first electronic device and a second electronic device in the SFN.

2. The first electronic device of claim 1 , wherein the processor is further configured to:

determine a slot offset for a slot that includes the aperiodic TRS, wherein the slot offset is determined by that of the PDSCH signal.

3. The first electronic device of claim 1 , wherein the processor is further configured to:

transmit, using the transceiver, a second consecutive slot that includes one or more aperiodic TRSs; and

receive a HARQ-ACK signal based on a last symbol of a last aperiodic TRS of the one or more aperiodic TRSs.

4. The first electronic device of claim 1 , wherein the processor is further configured to:

determine a first slot offset for a first slot that includes the aperiodic TRS, wherein the first slot offset is different than a second slot offset of the PDSCH signal; and

transmit, using the transceiver, the aperiodic TRS in the first slot.

5. The first electronic device of claim 1 , wherein the processor is further configured to:

transmit, using the transceiver, a second consecutive slot that includes one or more aperiodic TRSs; and

receive a HARQ-ACK signal based on a last symbol of the PDSCH signal.

6. The first electronic device of claim 1 , wherein the processor is further configured to:

use a Media Access Control (MAC) Control Element (CE) to activate a semi-persistent (SP)-TRS, wherein a minimal periodicity of the SP-TRS is less than or equal to that of a periodic TRS;

determine based on a second uplink reference signal received from the UE, that a second Doppler offset has satisfied a second threshold; and

based on the determination that the second threshold is satisfied, use the MAC CE to deactivate the SP-TRS.

7. The first electronic device of claim 1 , wherein the processor is further configured to:

use a Media Access Control (MAC) Control Element (CE) or a Downlink Control Information (DCI) to lower a periodicity of a periodic TRS;

determine based on a second uplink reference signal received from the UE, that a second Doppler offset has satisfied a second threshold; and

based on the determination that the second threshold is satisfied, use the MAC CE or DCI to raise the periodicity of the periodic TRS.

8. A method for a base station (BS), comprising:

receiving an uplink reference signal from a user equipment (UE);

determining based at least on the uplink reference signal, that a Doppler offset has satisfied a threshold;

based on the determination, using a downlink assignment to enable an aperiodic Tracking Reference Signal (TRS) with high measurement density, wherein the aperiodic TRS shares a same quasi-co-located (QCL) parameter with a Physical Downlink Shared Channel (PDSCH) signal triggered by the downlink assignment; and

transmitting, by the BS, in a single frequency network (SFN), the aperiodic TRS to the UE wherein the aperiodic TRS enables the UE to decode the PDSCH signal that comprises a combined signal from the BS and a second BS in the SFN.

9. The method of claim 8 , further comprising:

determining a slot offset for a slot that includes the aperiodic TRS, wherein the slot offset is determined by that of the PDSCH signal.

10. The method of claim 8 , further comprising:

transmitting a second consecutive slot that includes one or more aperiodic TRSs; and

receiving a HARQ-ACK signal based on a last symbol of a last aperiodic TRS of the one or more aperiodic TRSs.

11. The method of claim 8 , further comprising:

determining a first slot offset for a first slot that includes the aperiodic TRS, wherein the first slot offset is different than a second slot offset of the PDSCH signal; and

transmitting the aperiodic TRS in the first slot.

12. The method of claim 8 , further comprising:

transmitting a second consecutive slot that includes one or more aperiodic TRSs; and

receiving a HARQ-ACK signal based on a last symbol of the PDSCH.

13. A non-transitory computer-readable medium storing instructions that, when executed by a processor of a base station (BS), cause the BS to perform operations, the operations comprising:

receiving an uplink reference signal from a user equipment (UE);

determining based at least on the uplink reference signal, that a Doppler offset has satisfied a threshold;

based on the determination, using a downlink assignment to enable an aperiodic Tracking Reference Signal (TRS) with high measurement density, wherein the aperiodic TRS shares a same quasi-co-located (QCL) parameter with a Physical Downlink Shared Channel (PDSCH) signal by the downlink assignment; and

transmitting in a single frequency network (SFN), the aperiodic TRS to the UE, wherein the aperiodic TRS enables the UE to decode the PDSCH signal that comprises a combined signal from the BS and a second BS in the SFN.

14. The non-transitory computer-readable medium of claim 13 , wherein operations further comprise:

transmitting a second consecutive slot that includes one or more aperiodic TRSs; and

receiving a HARQ-ACK signal based on a last symbol of a last aperiodic TRS of the one or more aperiodic TRSs.

15. The non-transitory computer-readable medium of claim 13 , wherein the operations further comprise:

determining a first slot offset for a first slot that includes the aperiodic TRS, wherein the first slot offset is different than a second slot offset of the PDSCH signal; and

transmitting the aperiodic TRS in the first slot.

16. The non-transitory computer-readable medium of claim 13 , wherein the operations further comprise:

using a Media Access Control (MAC) Control Element (CE) to activate a semi-persistent (SP)-TRS, wherein a minimal periodicity of the SP-TRS is less than or equal to that of a periodic TRS;

determining based on a second uplink reference signal received from the UE, that a second Doppler offset has satisfied a second threshold; and

based on the determination that the second threshold is satisfied, using the MAC CE to deactivate the SP-TRS.

17. The non-transitory computer-readable medium of claim 13 , wherein operations further comprise:

using a Media Access Control (MAC) Control Element (CE) or a Downlink Control Information (DCI) to lower the periodicity of a periodic TRS;

determining based on a second uplink reference signal received from the UE, that a second Doppler offset has satisfied a second threshold; and

based on the determination that the second threshold is satisfied, using the MAC CE or DCI to raise the periodicity of the periodic TRS.

18. The non-transitory computer-readable medium of claim 13 , wherein operations further comprise:

determining a slot offset for a slot that includes the aperiodic TRS, wherein the slot offset is determined by that of the PDSCH signal.

19. The non-transitory computer-readable medium of claim 13 , wherein operations further comprise:

transmitting a second consecutive slot that includes one or more aperiodic TRSs; and

receiving a HARQ-ACK signal based on a last symbol of the PDSCH signal.

20. The method of claim 8 , further comprising:

using a Media Access Control (MAC) Control Element (CE) to activate a semi-persistent (SP)-TRS, wherein a minimal periodicity of the SP-TRS is less than or equal to that of a periodic TRS;

determining based on a second uplink reference signal received from the UE, that a second Doppler offset has satisfied a second threshold; and

based on the determination that the second threshold is satisfied, using the MAC CE to deactivate the SP-TRS.

Continuity (1)
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