IP Library Granted Patent US 11,234,270
Granted Patent B2
US 11,234,270 · App. 16/924,142 · Granted Jan 25, 2022

Channel access method, device and system in unlicensed band

Inventors: Minseok Noh (Seoul, KR); Jinsam Kwak (Gyeonggi-do, KR); Juhyung Son (Gyeonggi-do, KR)
Assignee: WILUS INSTITUTE OF STANDARDS AND TECHNOLOGY INC.
H04W74/0808H04L1/1812H04L1/1887H04L5/0078H04L27/0006H04L27/26H04W72/0413H04W72/0446H04L27/2613H04W16/14H04W84/12
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Quick Facts
Patent No.
US 11,234,270
App. No.
16/924,142
Granted
Jan 25, 2022
Kind
B2
Abstract

The present invention provides a method, device, and system for adjusting a contention window size for performing channel access. The method includes: receiving uplink scheduling information on the uplink transmission including a new data indicator (NDI) associated with a specific subframe in a first uplink transmission burst; determining a contention window size based on the NDI; generating a random number N (N≥0) in the determined contention window size based on the NDI associated with the specific subframe; and performing the uplink transmission on the specific cell after sensing a channel on the specific cell at least for N slots while the channel on the specific cell is idle. If the NDI is toggled, the contention window size is reset to a minimum value, and if the NDI is not toggled, the contention window size is increased to a next higher allowed value.

Claims (41)

1. A method for a user equipment to perform uplink transmission on a specific cell in a cellular wireless communication system, the method comprising:

receiving uplink scheduling information on the uplink transmission including a new data indicator (NDI) associated with a specific subframe in a first uplink transmission burst, wherein the first uplink transmission burst is an uplink transmission burst that is a most recent uplink transmission burst successfully transmitted before receiving the uplink scheduling information;

determining a contention window size based on the NDI;

generating a random number N (N≥0) in the determined contention window size; and

performing the uplink transmission on the specific cell after sensing a channel on the specific cell at least for N slots while the channel on the specific cell is idle,

wherein the contention window size is determined independently for each of every channel access priority class,

wherein when the NDI is toggled, the NDI associated with the specific subframe indicates a new data transmission, and each of a contention window size for every channel access priority class is reset to a minimum value for each of every channel access priority class,

wherein when the NDI is not toggled, the NDI associated with the specific subframe indicates a data retransmission, and each of the contention window size for every channel access priority class is increased to a next higher allowed value for each of every channel access priority class, and

when a hybrid automatic repeat request (HARQ)-process Identity (ID) corresponding to the specific subframe and a HARQ-process ID included in the uplink scheduling information are not same, each of the contention window size for every channel access priority class is increased to the next higher allowed value for each of every channel access priority class.

2. The method of claim 1 , wherein the first uplink transmission burst comprises one or more subframes, and the specific subframe is a starting subframe in the first uplink transmission burst.

3. The method of claim 2 , wherein the uplink scheduling information comprises a plurality of NDIs associated with the specific subframe, and

if at least one of the plurality of NDIs is toggled, each of the contention window size for every channel access priority class is reset to the minimum value for each of every channel access priority class.

4. The method of claim 1 , wherein the first uplink transmission burst is an uplink transmission burst that is the most recent uplink transmission burst successfully transmitted after performing a channel access using the contention window size and before receiving the uplink scheduling information.

5. The method of claim 1 , wherein the specific subframe corresponds to a subframe transmitted before at least three subframes than a subframe in which the uplink scheduling information is received.

6. A user equipment used in a cellular wireless communication system, the user equipment comprising:

a wireless communication module; and

a processor,

wherein the processor is configured to:

receive uplink scheduling information on the uplink transmission including a new data indicator (NDI) associated with a specific subframe in a first uplink transmission burst, wherein the first uplink transmission burst is an uplink transmission burst that is a most recent uplink transmission burst successfully transmitted before receiving the uplink scheduling information;

determine a contention window size based on the NDI;

generate a random number N (N≥0) in the determined contention window size; and

perform the uplink transmission on the specific cell after sensing a channel on the specific cell at least for N slots while the channel on the specific cell is idle,

wherein the contention window size is determined independently for each of every channel access priority class,

wherein when the NDI is toggled, the NDI associated with the specific subframe indicates a new data transmission, and each of a contention window size for every channel access priority classes is reset to a minimum value for each of every channel access priority class,

wherein when the NDI is not toggled, the NDI associated with the specific subframe indicates a data retransmission, and each of the contention window size for every channel access priority class is increased to a next higher allowed value for each of every channel access priority class, and

when a hybrid automatic repeat request (HARQ)-process Identity (ID) corresponding to the specific subframe and a HARQ-process ID included in the uplink scheduling information are not same, each of the contention window size for every channel access priority class is increased to the next higher allowed value for each of every channel access priority class.

7. The user equipment of claim 6 , wherein the first uplink transmission burst comprises one or more subframes, and the specific subframe is a starting subframe in the first uplink transmission burst.

8. The user equipment of claim 7 , wherein the uplink scheduling information comprises a plurality of NDIs associated with the specific subframe, and

if at least one of the plurality of NDIs is toggled, each of the contention window size for every channel access priority class is reset to the minimum value for each of every channel access priority class.

9. The user equipment of claim 6 , wherein the first uplink transmission burst is an uplink transmission burst that is the most recent uplink transmission burst successfully transmitted after performing the most recent a channel access using the contention window size and before receiving the uplink scheduling information.

10. The user equipment of claim 6 , wherein the specific subframe corresponds to a subframe transmitted before at least three subframes than a subframe in which the uplink scheduling information is received.

11. A cellular wireless communication system comprising a user equipment comprising,

wherein the user equipment is configured to:

receive uplink scheduling information on the uplink transmission including a new data indicator (NDI) associated with a specific subframe in a first uplink transmission burst, wherein the first uplink transmission burst is an uplink transmission burst that is a most recent uplink transmission burst successfully transmitted before receiving the uplink scheduling information;

determine a contention window size based on the NDI;

generate a random number N (N≥0) in the determined contention window size; and

perform the uplink transmission on the specific cell after sensing a channel on the specific cell at least for N slots while the channel on the specific cell is idle,

wherein the contention window size is determined independently for each of every channel access priority class,

wherein when the NDI is toggled, the NDI associated with the specific subframe indicates a new data transmission, and each of a contention window size for every channel access priority classes is reset to a minimum value for each of every channel access priority classes,

wherein when the NDI is not toggled, the NDI associated with the specific subframe indicates a data retransmission, and each of the contention window size for every channel access priority classes is increased to a next higher allowed value for each of every channel access priority classes, and

when a hybrid automatic repeat request (HARQ)-process Identity (ID) corresponding to the specific subframe and a HARQ-process ID included in the uplink scheduling information are not same, each of the contention window size for every channel access priority class is increased to the next higher allowed value for each of every channel access priority class.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 17, 2021
From: NOH, MINSEOK; KWAK, JINSAM; SON, JUHYUNG
To: WILUS INSTITUTE OF STANDARDS AND TECHNOLOGY INC.
Reel/Frame 058144/0505 →
Priority Claims (8)
KR 10-2016-0038771 · Mar 30, 2016 · national
KR 10-2016-0039811 · Mar 31, 2016 · national
KR 10-2016-0044470 · Apr 11, 2016 · national
KR 10-2016-0045238 · Apr 13, 2016 · national
KR 10-2016-0057025 · May 10, 2016 · national
KR 10-2016-0065156 · May 27, 2016 · national
KR 10-2016-0079634 · Jun 24, 2016 · national
KR 10-2016-0088279 · Jul 12, 2016 · national
Continuity (3)
Continuation 16147577 · Sep 29, 2018
Continuation PCTKR2017003529 · Mar 30, 2017
Related Publication 20200344803A1 · Oct 29, 2020
Cited By (2)
US 12,192,126 US 12,501,445