IP Library › Granted Patent US 12,015,478
Granted Patent B2
US 12,015,478 · App. 17/283,609 · Granted Jun 18, 2024

Defining a condition based on a reference time interval

Inventors: Ajit Nimbalker (Fremont, CA); Jung-Fu Cheng (Fremont, CA)
Assignee: Telefonaktiebolaget LM Ericsson (Publ)
H04L1/0005H04L1/0016H04L5/0046H04L27/26025
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Quick Facts
Patent No.
US 12,015,478
App. No.
17/283,609
Granted
Jun 18, 2024
Kind
B2
Abstract

A method performed by a network entity in which the method includes transmitting or receiving a transmission of data, wherein the transmission is scheduled with a Modulation and Coding Scheme, MCS, level indicated by an MCS index, I MCS , and wherein the transmitting or receiving is based on a first condition being used for a first subset of MCS levels being a subset of all possible MCS levels.

Claims (93)

1. A method performed by a network entity, the method comprising:

one of transmitting and receiving a transmission of data, the transmission being scheduled with a Modulation and Coding Scheme, MCS, level indicated by an MCS index, I MCS , and having an assigned modulation order and resource allocation, and the one of the transmitting and receiving being based on a first restriction of a transport block size being used for a first subset of MCS levels being a subset of all possible MCS levels for which the transport block size is determined independently of the assigned modulation order and resource allocation.

2. The method according to claim 1 , wherein the first subset of MCS levels consists of those for which an associated target code rate is reserved.

3. The method according to claim 1 , wherein the first subset of MCS levels correspond to MCS levels associated with a “reserved” label in an MCS index table in section 5.1.3.1 of the 3GPP specification TS 38.214.

4. The method according to claim 1 , wherein the first subset of MCS levels contain MCS levels with an I MCS being one of 29, 30 and 31 when 64 QAM, Quadrature Amplitude Modulation, is applied.

5. The method according to claim 1 , wherein the network entity is a user equipment, UE.

6. The method according to claim 1 , wherein the first restriction restricts the transport block size to be equal to or less than

DataRate*durationSCH,

where DataRate is a data rate of a carrier and durationSCH is an assigned duration of a downlink or uplink shared channel.

7. The method according to claim 6 , wherein the duration SCH is calculated according to:

T s μ ·L j , where L j denotes the number of shared channel symbols and

T

s

μ

=

1

⁢

0

-

3

2

μ

·

N

s

⁢

y

⁢

m

⁢

b

s

⁢

l

⁢

o

⁢

t

,

where μ denoted numerology and N symb slot denotes number of symbols per slot.

8. The method according to claim 6 , wherein the data rate is a data rate per component carrier.

9. The method according to claim 8 , wherein the data rate is derived from UE band/band-combination signaling.

10. The method according to claim 8 , wherein the data rate includes a scaling factor.

11. The method according to claim 1 , wherein a second restriction of transport block size, TBS, is applied for a second subset of MCS levels for one or more serving cells.

12. The method according to claim 11 , wherein the second subset can include all MCS levels.

13. The method according to claim 11 , wherein the first restriction defines a peak data rate over which the UE is not required to handle transmissions.

14. A network entity comprising:

a processor; and

a memory storing instructions that, when executed by the processor, cause the network entity to:

one of transmit and receive a transmission of data, the transmission being scheduled with a Modulation and Coding Scheme, MCS, level indicated by an MCS index, I MCS , and having an assigned modulation order and resource allocation, and the one of the transmitting and receiving being based on a first restriction of a transport block size being used for a first subset of MCS levels being a subset of all possible MCS levels for which the transport block size is determined independently of the assigned modulation order and resource allocation.

15. The network entity according to claim 14 , wherein the first subset of MCS levels consists of those for which an associated target code rate is reserved.

16. The network entity according to claim 14 , wherein the first subset of MCS levels correspond to MCS levels associated with a “reserved” label in an MCS index table in section 5.1.3.1 of the 3GPP specification TS 38.214.

17. The network entity according to claim 14 , wherein the first subset of MCS levels contain MCS levels with an I MCS being one of 29, 30 or 31 when 64 QAM, Quadrature Amplitude Modulation, is applied.

18. The network entity according to claim 14 , wherein the network entity is a user equipment, UE.

19. The network entity according to claim 14 , wherein the first restriction restricts the transport block size to be equal to or less than

DataRate*durationSCH,

where DataRate is a data rate of a carrier and durationSCH is an assigned duration of a downlink or uplink shared channel.

20. The network entity according to claim 19 , wherein the duration SCH is calculated according to:

T s μ ·L j , where L j denotes the number of shared channel symbols and

T

s

μ

=

1

⁢

0

-

3

2

μ

·

N

s

⁢

y

⁢

m

⁢

b

s

⁢

l

⁢

o

⁢

t

,

where μ denoted numerology and N symb slot denotes number of symbols per slot.

21. The network entity according to claim 19 , wherein the data rate is a data rate per component carrier.

22. The network entity according to claim 21 , wherein the data rate is derived from UE band/band-combination signaling.

23. The network entity according to claim 21 , wherein the data rate includes a scaling factor.

24. A non-transitory computer storage medium storing a computer program comprising computer program code which, when run on a network entity causes the network entity to:

one of transmit and receive a transmission of data, the transmission being scheduled with a Modulation and Coding Scheme, MCS, level indicated by an MCS index, I MCS , and having an assigned modulation order and resource allocation, and the one of the transmitting receiving being based on a first restriction of a transport block size being used for a first subset of MCS levels being a subset of all possible MCS levels for which the transport block size is determined independently of the assigned modulation order and resource allocation.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 12, 2021
From: CHENG, JUNG-FU; NIMBALKER, AJIT
To: TELEFONAKTIEBOLAGET LM ERICSSON (PUBL)
Reel/Frame 055889/0542 →
Continuity (2)
Provisional Application 62742528 · Oct 8, 2018
Related Publication 20210351861A1 · Nov 11, 2021