IP Library › Granted Patent US 10,863,381
Granted Patent B2
US 10,863,381 · App. 16/337,121 · Granted Dec 8, 2020

Transport block size determination for short transmission time interval

Inventors: Gustav Wikström (Täby, SE); Niklas Andgart (Södra Sandby, SE); Jingya Li (Gothenburg, SE); Henrik Sahlin (Mölnlycke, SE)
Assignee: TELEFONAKTIEBOLAGET LM ERICSSON (PUBL)
H04W28/06H04L1/0003H04L1/0061H04L5/0044H04L5/0053H04L5/0087H04W72/1205H04L1/0025H04L5/0023
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Quick Facts
Patent No.
US 10,863,381
App. No.
16/337,121
Granted
Dec 8, 2020
Kind
B2
Abstract

A method performed by a communication device comprises identifying ( 310 ) a long transmission time interval (TTI) transport block size from a set of long TTI transport block sizes used for transport block transmission within a long TTI. The method further comprises determining ( 320 ) a short TTI transport block size, used for transport block transmission within a short TTI, by downscaling the long TTI transport block size based on a relation between a number of symbols in the short TTI and a number of symbols in the long TTI that is greater than the number of symbols in the short TTI.

Claims (63)

1. A method performed by a communication device, the method comprising:

identifying a long transmission time interval (TTI) transport block size from a set of long TTI transport block sizes used for transport block transmission within a long TTI; and

determining a short TTI transport block size, used for transport block transmission within a short TTI, by downscaling the long TTI transport block size based on:

a relation between a number of symbols in the short TTI and a number of symbols in the long TTI that is greater than the number of symbols in the short TTI; and

a number of bits used for a cyclic redundancy check.

2. The method of claim 1 , wherein the downscaling the long III transport block size comprises downscaling the long III transport block size based on a ratio of the number of symbols in the short III and the number of symbols in the long TTI.

3. The method of claim 1 :

wherein the downscaling the long III based on the number of symbols in the short III is based on the number of symbols used for data transmission in the short TTI; and

wherein the downscaling based on the number of symbols in the long III is based on the number of symbols used for data transmission in the long III.

4. The method of claim 1 , wherein the long TTI transport block size is identified using a set of transmit parameters for transport block transmission.

5. The method of claim 1 , wherein the long TTI transport block size is identified from the set of long TTI transport block sizes based on a set of transmit parameters to be used for an upcoming transport block transmission within the short TTI.

6. The method of claim 5 , wherein the set of transmit parameters comprises a number of assigned physical resource blocks.

7. The method of claim 6 :

wherein the set of transmit parameters comprises a modulation and coding index, and a modulation order;

wherein identifying the long TTI transport block size comprises:

determining a transport block size index based on the modulation and coding index and the modulation order; and

using the number of assigned physical resource blocks and the transport block size index as indices into the set of long TTI transport block sizes to obtain the long TTI transport block size.

8. The method of claim 1 , wherein the downscaling the long III transport block size is further based on a number of resource elements allocated to control channel transmission within the short III.

9. The method of claim 8 , wherein the downscaling is based on a factor of:

N

data

SSF

N

data

SF

⁢

(

1

-

C

N

data

SSF

⁢

12

⁢

M

)

;

wherein N data SSF is the number of symbols in the short TTI;

wherein N data SF is the number of symbols in the long TTI;

wherein C is the number of resource elements allocated to the control channel transmission within the short TTI;

wherein M is a number of subbands allocated to data transmission within the short TTI.

10. The method of claim 1 , wherein the determining the short TTI transport block size by downscaling the long TTI transport block size comprises selecting, as the short TTI transport block size, a further transport block size from the set of long transport block sizes that is closest to the downscaled long TTI transport block size.

11. The method of claim 1 , wherein the short TTI transport block size is selected from a set comprising the long TTI transport block sizes and an additional transport block size.

12. The method of claim 1 , further comprising determining a further short TTI transport block size for each further long TTI transport block size in the set of long TTI transport block sizes by downscaling the further long TTI transport block size based on the relation between the number of symbols in the short TTI and the number of symbols in the long TTI.

13. The method of claim 1 , further comprising configuring transmission circuitry to transmit within the short TTI according to the determined short TTI transport block size.

14. The method of claim 1 , wherein the identifying the long TTI transport block size from a set of long TTI transport block sizes comprises identifying the long TTI transport block size from a table of long TTI transport block sizes used for transport block transmission within a long TTI.

15. A communication device, comprising:

processing circuitry;

memory containing instructions executable by the processing circuitry whereby the communication device is operative to:

identify a long transmission time interval (TTI) transport block size from a set of long TTI transport block sizes used for transport block transmission within a long TTI; and

determine a short TTI transport block size, used for transport block transmission within a short TTI, by downscaling the long TTI transport block size based on:

a relation between a number of symbols in the short TTI and a number of symbols in the long TTI that is greater than the number of symbols in the short TTI; and

a number of bits used for a cyclic redundancy check.

16. The communication device of claim 15 , wherein the downscaling the long TTI transport block size comprises downscaling the long TTI transport block size based on a ratio of the number of symbols in the short TTI and the number of symbols in the long TTI.

17. The communication device of claim 15 , wherein the instructions are such that the communication device is operative to identify the long III transport block size from the set of long III transport block sizes based on a set of transmit parameters to be used for an upcoming transport block transmission within the short III.

18. The communication device of claim 15 , wherein the downscaling is further based on a number of resource elements allocated to control channel transmission within the short III.

19. A non-transitory computer readable recording medium storing a computer program product for controlling a communication device, the computer program product comprising software instructions which, when run on processing circuitry of the communication device, causes the communication device to:

identify a long transmission time interval (TTI) transport block size from a set of long III transport block sizes used for transport block transmission within a long TTI; and

determine a short III transport block size, used for transport block transmission within a short III, by downscaling the long III transport block size based on:

a relation between a number of symbols in the short III and a number of symbols in the long III that is greater than the number of symbols in the short TTI; and

a number of bits used for a cyclic redundancy check.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 27, 2019
From: ANDGART, NIKLAS; LI, JINGYA; SAHLIN, HENRIK; WIKSTRÖM, GUSTAV
To: TELEFONAKTIEBOLAGET LM ERICSSON (PUBL)
Reel/Frame 048715/0114 →
Continuity (2)
Provisional Application 62402381 · Sep 30, 2016
Related Publication 20190223050A1 · Jul 18, 2019