IP Library › Granted Patent US 9,571,254
Granted Patent B2
US 9,571,254 · App. 15/013,772 · Granted Feb 14, 2017

Method for allocating physical hybrid automatic repeat request indicator channel

Inventors: Jung Hoon Lee (Anyang-si, KR); Joon Kui Ahn (Anyang-si, KR)
Assignee: LG ELECTRONICS INC.
H04L5/0055H04J11/00H04L1/04H04L1/1692H04L1/1812H04L5/0021H04L5/0023H04L5/0053H04L5/0058H04B7/068H04W28/04
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Quick Facts
Patent No.
US 9,571,254
App. No.
15/013,772
Granted
Feb 14, 2017
Kind
B2
Abstract

A method and apparatus are presented for transmitting acknowledgement (ACK)/negative acknowledgement (NACK) signals in a wireless communication system. ACK/NACKs are spread using spreading codes of a spreading factor, the spreading factor being one of a first spreading factor equal to 2 and a second spreading factor equal to 4. One or more physical hybrid automatic repeat request (ARQ) indicator channel (PHICH) groups allocated in units of four resource elements are transmitted, each PHICH group carrying up to four ACK/NACK signals for the first spreading factor, and up to eight ACK/NACK signals for the second spreading factor. A total number of allocated PHICH groups for the first spreading factor is determined as twice a total number of allocated PHICH groups for the second spreading factor. A PHICH group index for an ACK/NACK is determined using a first function. A spreading code index for the ACK/NACK is determined using a second function.

Claims (40)

1. A method for transmitting acknowledgement (ACK)/negative acknowledgement (NACK) signals by an apparatus in a wireless communication system, the method comprising:

spreading ACK/NACKs using spreading codes of a spreading factor, the spreading factor being a first spreading factor equal to 2 or a second spreading factor equal to 4; and

transmitting one or more physical hybrid automatic repeat request (HARQ) indicator channel (PHICH) groups allocated in units of four resource elements, each of the one or more PHICH groups carrying up to four ACK/NACK signals for the first spreading factor, and up to eight ACK/NACK signals for the second spreading factor,

wherein a first total number of allocated PHICH groups for the first spreading factor is determined as being twice a second total number of allocated PHICH groups for the second spreading factor,

wherein a PHICH group index for an ACK/NACK is determined using a first function, and a spreading code index for the ACK/NACK is determined using a second function,

wherein the first function and the second function include a common variable,

wherein the first function changes the PHICH group index within the first total number of allocated PHICH groups for the first spreading factor or the second total number of allocated PHICH groups for the second spreading factor as the common variable increases by one, and

wherein the second function changes the spreading code index as the common variable increases by the first total number of allocated PHICH groups for the first spreading factor or the second total number of allocated PHICH groups for the second spreading factor.

2. The method of claim 1 , wherein each of the one or more PHICH groups is transmitted via a plurality of antenna pairs.

3. The method of claim 2 , wherein space frequency block coding (SFBC) is applied to each of the antenna pairs, and frequency switching transmit diversity (FSTD) is applied between different antenna pairs of the plurality of antenna pairs.

4. A method for receiving acknowledgement (ACK)/negative acknowledgement (NACK) signals by an apparatus in a wireless communication system, the method comprising:

receiving one or more physical hybrid automatic repeat request (HARQ) indicator channel (PHICH) groups allocated in units of four resource elements, each of the one or more PHICH groups carrying up to four ACK/NACK signals for a first spreading factor equal to 2, and up to eight ACK/NACK signals for a second spreading factor equal to 4,

wherein received ACK/NACK signals are generated by using spreading codes of a spreading factor, the spreading factor being the first spreading factor or the second spreading factor,

wherein a first total number of allocated PHICH groups for first the spreading factor is determined as being twice a second total number of allocated PHICH groups for the second spreading factor,

wherein a PHICH group index for an ACK/NACK is determined using a first function, and a spreading code index for the ACK/NACK is determined using a second function,

wherein the first function and the second function include a common variable,

wherein the first function changes the PHICH group index within the first total number of allocated PHICH groups for the first spreading factor or the second total number of allocated PHICH groups for the second spreading factor as the common variable increases by one, and

wherein the second function changes the spreading code index as the common variable increases by the first total number of allocated PHICH groups for the first spreading factor or the second total number of allocated PHICH groups for the second spreading factor.

5. An apparatus for use in a wireless communication system, the apparatus comprising:

a radio frequency unit; and

a processor configured to:

spread acknowledgement (ACK)/negative acknowledgement (NACK) signals using spreading codes of a spreading factor, the spreading factor being a first spreading factor equal to 2 or a second spreading factor equal to 4, and

control the radio frequency unit to transmit one or more physical hybrid automatic repeat request (HARQ) indicator channel (PHICH) groups allocated in units of four resource elements, each of the one or more PHICH groups carrying up to four ACK/NACK signals for the first spreading factor, and up to eight ACK/NACK signals for the second spreading factor,

wherein a first total number of allocated PHICH groups for the first spreading factor is determined as being twice a second total number of allocated PHICH groups for the second spreading factor,

wherein a PHICH group index for an ACK/NACK is determined using a first function, and a spreading code index for the ACK/NACK is determined using a second function,

wherein the first function and the second function include a common variable,

wherein the first function has changes the PHICH group index within the first total number of allocated PHICH groups for the first spreading factor or the second total number of allocated PHICH groups for the second spreading factor as the common variable increases by one, and

wherein the second function changes the spreading code index as the common variable increases by the first total number of allocated PHICH groups for the first spreading factor or the second total number of allocated PHICH groups for the second spreading factor.

6. The apparatus of claim 5 , wherein each of the one or more PHICH groups is transmitted via a plurality of antenna pairs.

7. The apparatus of claim 6 , wherein space frequency block coding (SFBC) is applied to each of the antenna pairs, and frequency switching transmit diversity (FSTD) is applied between different antenna pairs of the plurality of antenna pairs.

8. An apparatus for use in a wireless communication system, the apparatus comprising:

a radio frequency unit; and

a processor configured to:

control the radio frequency unit to receive one or more physical hybrid automatic repeat request (HARQ) indicator channel (PHICH) groups allocated in units of four resource elements, each of the one or more PHICH groups carrying up to four acknowledgement (ACK)/negative acknowledgement (NACK) signals for a first spreading factor equal to 2, and up to eight ACK/NACK signals for a second spreading factor equal to 4,

wherein received ACK/NACK signals are generated by using spreading codes of a spreading factor, the spreading factor being the first spreading factor or the second spreading factor,

wherein a first total number of allocated PHICH groups for first the spreading factor is determined as being twice a second total number of allocated PHICH groups for the second spreading factor,

wherein a PHICH group index for an ACK/NACK is determined using a first function, and a spreading code index for the ACK/NACK is determined using a second function,

wherein the first function and the second function include a common variable,

wherein the first function changes the PHICH group index within the first total number of allocated PHICH groups for the first spreading factor or the second total number of allocated PHICH groups for the second spreading factor as the common variable increases by one, and

wherein the second function changes the spreading code index as the common variable increases by the first total number of allocated PHICH groups for the first spreading factor or the second total number of allocated PHICH groups for the second spreading factor.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 28, 2022
From: WILD GUARD LTD.
To: VIVO MOBILE COMMUNICATION CO., LTD.
Reel/Frame 060894/0941 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 28, 2019
From: LG ELECTRONICS INC.
To: WILD GUARD LTD.
Reel/Frame 048469/0550 →
Priority Claims (1)
KR 10-2008-0124085 · Dec 8, 2008 · national
Continuity (7)
Continuation 14245809 · Apr 4, 2014
Continuation 13850141 · Mar 25, 2013
Continuation 12987896 · Jan 10, 2011
Continuation 12767616 · Apr 26, 2010
Continuation 12361185 · Jan 28, 2009
Provisional Application 61023895 · Jan 28, 2008
Related Publication 20160156449A1 · Jun 2, 2016