Wireless communication methods for PDCCH monitoring, user equipment and base station
View Patent ↗Wireless communication methods for PDCCH monitoring, a user equipment and base station are provided. The method by a user equipment (UE) includes determining a span combination including a first parameter and a second parameter for subcarrier spacing higher than 60 kHz, the first parameter is a distance between two consecutive spans, and the second parameter is a span length.
1 . A wireless communication method by a user equipment (UE), comprising:
determining a span combination comprising a first parameter and a second parameter for subcarrier spacing higher than 60 kHz, wherein the first parameter is a distance between two consecutive spans, and the second parameter is a span length, wherein
the first parameter and the second parameter define a physical downlink control channel (PDCCH) monitoring capability, the PDCCH monitoring capability comprises a number of PDCCH candidates and a number of non-overlapped control channel elements (CCEs), and wherein
for a given value of the first parameter, when a value of the second parameter is equal to or less than a threshold value, there is a first PDCCH monitoring capability, and for the given value of the first parameter, when the value of the second parameter is greater than the threshold value, there is a second PDCCH monitoring capability, wherein the threshold value comprises 3 symbols or a half slot, and wherein the number of PDCCH candidates and the number of non-overlapped CCEs in the first PDCCH monitoring capability are different from the number of PDCCH candidates and the number of non-overlapped CCEs in the second PDCCH monitoring capability.
2 . The method of claim 1 , wherein the first parameter is a distance between starting locations of the two consecutive spans.
3 . The method of claim 1 , wherein the value of the first parameter and/or the value of the second parameter is in a unit of a slot, a symbol, or an absolute time, and
the value of the first parameter and/or the value of the second parameter corresponds to 120 kHz subcarrier spacing (SCS), and/or the first parameter and the second parameter are used for carrier frequency higher than 52.6 GHz.
4 . The method of claim 3 , wherein the value of the first parameter and/or the value of the second parameter depends on a first SCS value, and one of the following applies:
when the first SCS value is equal to 120 kHz, the value of the first parameter comprises 1 slot corresponding to 1 slot duration with 120 kHz SCS, 2 slots corresponding to 2 slot durations with 120 kHz SCS, or a half slot corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 120 kHz, the value of the first parameter comprises 14 symbols corresponding to 1 slot duration with 120 kHz SCS, 28 symbols corresponding to 2 slot durations with 120 kHz SCS, or 7 symbols corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 120 kHz, the value of the first parameter comprises 0.03125 millisecond corresponding to 1 slot duration with 120 kHz SCS, 0.0625 millisecond corresponding to 2 slot durations with 120 kHz SCS, or 0.015625 millisecond corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 480 kHz, the value of the first parameter comprises 4 slots corresponding to 1 slot duration with 120 kHz SCS, 8 slots corresponding to 2 slot durations with 120 kHz SCS, or 2 slots corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 480 kHz, the value of the first parameter comprises 56 symbols corresponding to 1 slot duration with 120 kHz SCS, 112 symbols corresponding to 2 slot durations with 120 kHz SCS, or 28 symbols corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 480 kHz, the value of the first parameter comprises 0.125 millisecond corresponding to 1 slot duration with 120 kHz SCS, 0.25 millisecond corresponding to 2 slot durations with 120 kHz SCS, or 0.0625 millisecond corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 960 kHz, the value of the first parameter comprises 8 slots corresponding to 1 slot duration with 120 kHz SCS, 16 slots corresponding to 2 slot durations with 120 kHz SCS, or 4 slots corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 960 kHz, the value of the first parameter comprises 112 symbols corresponding to 1 slot duration with 120 kHz SCS, 224 symbols corresponding to 2 slot durations with 120 kHz SCS, or 56 symbols corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 960 kHz, the value of the first parameter comprises 0.25 millisecond corresponding to 1 slot duration with 120 kHz SCS, 0.5 millisecond corresponding to 2 slot durations with 120 kHz SCS, or 0.125 millisecond corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 480 kHz, the value of the first parameter comprises least one of the followings: 2 slots, 4 slots, or 8 slots, and/or the value of the second parameter comprises least one of the followings: 2 symbols, 3 symbols, 6 symbols, 9 symbols, 12 symbols, a half slot, 1 slot, or 2 slots; or
when the first SCS value is equal to 960 kHz, the value of the first parameter comprises least one of the followings: 4 slots, 8 slots, or 16 slots, and/or the value of the second parameter comprises least one of the followings: 2 symbols, 3 symbols, 6 symbols, 9 symbols, 12 symbols, a half slot, 1 slot, or 2 slots.
5 . The method of claim 1 , further comprising determining a span from a set of span combinations.
6 . A wireless communication method by a base station, comprising:
controlling a user equipment (UE) to determine a span combination comprising a first parameter and a second parameter for subcarrier spacing higher than 60 kHz, wherein the first parameter is a distance between two consecutive spans, and the second parameter is a span length, wherein
the first parameter and the second parameter define a physical downlink control channel (PDCCH) monitoring capability, the PDCCH monitoring capability comprises a number of PDCCH candidates and a number of non-overlapped control channel elements (CCEs), and wherein
for a given value of the first parameter, when a value of the second parameter is equal to or less than a threshold value, there is a first PDCCH monitoring capability, and for the given value of the first parameter, when the value of the second parameter is greater than the threshold value, there is a second PDCCH monitoring capability, wherein the threshold value comprises 3 symbols or a half slot, and wherein the number of PDCCH candidates and the number of non-overlapped CCEs in the first PDCCH monitoring capability are different from the number of PDCCH candidates and the number of non-overlapped CCEs in the second PDCCH monitoring capability.
7 . The method of claim 6 , wherein the first parameter is a distance between starting locations of the two consecutive spans.
8 . The method of claim 6 , wherein the value of the first parameter and/or the value of the second parameter is in a unit of a slot, a symbol, or an absolute time, and
the value of the first parameter and/or the value of the second parameter corresponds to 120 kHz subcarrier spacing (SCS), and/or the first parameter and the second parameter are used for carrier frequency higher than 52.6 GHz.
9 . The method of claim 8 , wherein the value of the first parameter and/or the value of the second parameter depends on a first SCS value, and one of the following applies:
when the first SCS value is equal to 120 kHz, the value of the first parameter comprises 1 slot corresponding to 1 slot duration with 120 kHz SCS, 2 slots corresponding to 2 slot durations with 120 kHz SCS, or a half slot corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 120 kHz, the value of the first parameter comprises 14 symbols corresponding to 1 slot duration with 120 kHz SCS, 28 symbols corresponding to 2 slot durations with 120 kHz SCS, or 7 symbols corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 120 kHz, the value of the first parameter comprises 0.03125 millisecond corresponding to 1 slot duration with 120 kHz SCS, 0.0625 millisecond corresponding to 2 slot durations with 120 kHz SCS, or 0.015625 millisecond corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 480 kHz, the value of the first parameter comprises 4 slots corresponding to 1 slot duration with 120 kHz SCS, 8 slots corresponding to 2 slot durations with 120 kHz SCS, or 2 slots corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 480 kHz, the value of the first parameter comprises 56 symbols corresponding to 1 slot duration with 120 kHz SCS, 112 symbols corresponding to 2 slot durations with 120 kHz SCS, or 28 symbols corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 480 kHz, the value of the first parameter comprises 0.125 millisecond corresponding to 1 slot duration with 120 kHz SCS, 0.25 millisecond corresponding to 2 slot durations with 120 kHz SCS, or 0.0625 millisecond corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 960 kHz, the value of the first parameter comprises 8 slots corresponding to 1 slot duration with 120 kHz SCS, 16 slots corresponding to 2 slot durations with 120 kHz SCS, or 4 slots corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 960 kHz, the value of the first parameter comprises 112 symbols corresponding to 1 slot duration with 120 kHz SCS, 224 symbols corresponding to 2 slot durations with 120 kHz SCS, or 56 symbols corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 960 kHz, the value of the first parameter comprises 0.25 millisecond corresponding to 1 slot duration with 120 kHz SCS, 0.5 millisecond corresponding to 2 slot durations with 120 kHz SCS, or 0.125 millisecond corresponding to a half slot duration with 120 kHz SCS;
when the first SCS value is equal to 480 kHz, the value of the first parameter comprises least one of the followings: 2 slots, 4 slots, or 8 slots, and/or the value of the second parameter comprises least one of the followings: 2 symbols, 3 symbols, 6 symbols, 9 symbols, 12 symbols, a half slot, 1 slot, or 2 slots; or
when the first SCS value is equal to 960 kHz, the value of the first parameter comprises least one of the followings: 4 slots, 8 slots, or 16 slots, and/or the value of the second parameter comprises least one of the followings: 2 symbols, 3 symbols, 6 symbols, 9 symbols, 12 symbols, a half slot, 1 slot, or 2 slots.
10 . The method of claim 6 , further comprising controlling the UE to determine a span from a set of span combinations.
11 . A user equipment (UE), comprising:
a memory;
a transceiver; and
a processor coupled to the memory and the transceiver;
wherein the processor is configured to determine a span combination comprising a first parameter and a second parameter for subcarrier spacing higher than 60 kHz, wherein the first parameter is a distance between two consecutive spans, and the second parameter is a span length, wherein
the first parameter and the second parameter define a physical downlink control channel (PDCCH) monitoring capability, the PDCCH monitoring capability comprises a number of PDCCH candidates and a number of non-overlapped control channel elements (CCEs), and wherein
for a given value of the first parameter, when a value of the second parameter is equal to or less than a threshold value, there is a first PDCCH monitoring capability, and for the given value of the first parameter, when the value of the second parameter is greater than the threshold value, there is a second PDCCH monitoring capability, wherein the threshold value comprises 3 symbols or a half slot, and wherein the number of PDCCH candidates and the number of non-overlapped CCEs in the first PDCCH monitoring capability are different from the number of PDCCH candidates and the number of non-overlapped CCEs in the second PDCCH monitoring capability.
12 . The UE of claim 11 , wherein the processor is configured, by a base station, with one or more PDCCH monitoring occasions; and
the processor is configured to determine a span from the one or more PDCCH monitoring occasions.
13 . The UE of claim 12 , wherein the processor is further configured to:
report, to the base station, about one or more supporting span combinations of the UE, wherein the one or more PDCCH monitoring occasions are configured according to the one or more supporting span combinations of the UE;
determine the span combination that the PDCCH monitoring occasion fits in; and
use the span combination that gives a maximum number of PDCCH candidates and/or a maximum number of CCEs for PDCCH monitoring.
14 . A base station, comprising:
a memory;
a transceiver; and
a processor coupled to the memory and the transceiver;
wherein the processor is configured to control a user equipment (UE) to determine a span combination comprising a first parameter and a second parameter for subcarrier spacing higher than 60 kHz, wherein the first parameter is a distance between two consecutive spans, and the second parameter is a span length, wherein
the first parameter and the second parameter define a physical downlink control channel (PDCCH) monitoring capability, the PDCCH monitoring capability comprises a number of PDCCH candidates and a number of non-overlapped control channel elements (CCEs), and wherein
for a given value of the first parameter, when a value of the second parameter is equal to or less than a threshold value, there is a first PDCCH monitoring capability, and for the given value of the first parameter, when the value of the second parameter is greater than the threshold value, there is a second PDCCH monitoring capability, wherein the threshold value comprises 3 symbols or a half slot, and wherein the number of PDCCH candidates and the number of non-overlapped CCEs in the first PDCCH monitoring capability are different from the number of PDCCH candidates and the number of non-overlapped CCEs in the second PDCCH monitoring capability.
15 . The base station of claim 14 , wherein the processor is further configured to:
configure, to the UE, one or more PDCCH monitoring occasions; and
control the UE to determine a span from the one or more PDCCH monitoring occasions.
16 . The base station of claim 15 , wherein the transceiver is further configured to receiving a report, from the UE, about one or more supporting span combinations of the UE, the one or more PDCCH monitoring occasions are configured according to the one or more supporting span combinations of the UE;
wherein the processor is further configured to: control the UE to determine the span combination that the PDCCH monitoring occasion fits in; and control the UE to use the span combination that gives a maximum number of PDCCH candidates and/or a maximum number of CCEs for PDCCH monitoring.