IP Library Granted Patent US 9,680,558
Granted Patent B2
US 9,680,558 · App. 15/213,359 · Granted Jun 13, 2017

Method for sending and receiving data on a cooperative communications system and a cooperative communications method

Inventors: Kap-Seok Chang (Daejeon, KR); Woo-Yong Lee (Daejeon, KR); Kyeongpyo Kim (Daejeon, KR); Hyoung-Jin Kwon (Cheongju-si, KR); Hyun-Kyu Chung (Daejeon, KR)
Assignee: ELECTRONICS AND TELECOMMUNICATIONS RESEARCH INSTITUTE
H04B7/15592H04B7/026H04B7/0417H04B7/0617H04B7/086H04B7/15521H04L1/0077H04L1/0618H04L2001/0097
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Quick Facts
Patent No.
US 9,680,558
App. No.
15/213,359
Granted
Jun 13, 2017
Kind
B2
Abstract

A data transmission method of a source node in a cooperative communication system includes: performing a beamforming to a relay node; transmitting data to the relay node; performing a beamforming to a destination node; and transmitting data to the destination node.

Claims (37)

1. A data transmission method of a source node, comprising:

transmitting data to a relay node in a first time slot;

transmitting the data to a destination node in a second time slot after the first time slot;

wherein the relay node transmits the data to the destination node in the second time slot, based on FD (Full Duplex) or HD (Half Duplex),

wherein the data includes first symbols and second symbols,

wherein the first symbols are derived by applying a complex conjugation to the second symbols, or the second symbols are derived by applying a complex conjugation to the first symbols,

wherein the first symbols and the second symbols are allocated in other frequency resource, at a same time slot, and

wherein the source node modulates the data using QPSK or 16 QAM, and transmits the modulated data to the relay node in the first time slot.

2. The data transmission method of claim 1 , wherein the first symbols are odd symbols and the second symbols are even symbols.

3. The data transmission method of claim 1 , wherein the first symbols are even symbols and the second symbols are odd symbols.

4. The data transmission method of claim 1 , wherein the relay node performs beamforming by transmitting a training sequence to the destination node, and transmits the data to the destination node after completion of beamforming.

5. A data transmission method of a relay node, comprising:

receiving data from a source node in a first time slot;

transmitting the data to a destination node in a second time slot after the first time slot;

wherein the relay node transmits the data to the destination node in the second time slot, based on FD (Full Duplex) or HD (Half Duplex),

wherein the data includes first symbols and second symbols,

wherein the first symbols are derived by applying a complex conjugation to the second symbols, or the second symbols are derived by applying a complex conjugation to the first symbols,

wherein the first symbols and the second symbols are allocated in other frequency resource, at a same time slot, and

wherein the source node modulates the data using QPSK or 16 QAM, and transmits the modulated data to the relay node in the first time slot.

6. The data transmission method of claim 5 , wherein the first symbols are odd symbols and the second symbols are even symbols.

7. The data transmission method of claim 5 , wherein the first symbols are even symbols and the second symbols are odd symbols.

8. The data transmission method of claim 5 , wherein the relay node performs beamforming by transmitting a training sequence to the destination node, and transmits the data to the destination node after completion of beamforming.

9. A data transmission method of a destination node, comprising:

receiving data from a source node in a second time slot;

receiving a data from a relay node in a second time slot;

wherein the source node transmits the data to the relay node in a first time slot before the second time slot;

wherein the relay node transmits the data to the destination node in the second time slot, based on FD (Full Duplex) or HD (Half Duplex),

wherein the data includes first symbols and second symbols,

wherein the first symbols are derived by applying a complex conjugation to the second symbols, or the second symbols are derived by applying a complex conjugation to the first symbols,

wherein the first symbols and the second symbols are allocated in other frequency resource, at a same time slot, and

wherein the source node modulates the data using QPSK or 16 QAM, and transmits the modulated data to the relay node in the first time slot.

10. The data transmission method of claim 9 , wherein the first symbols are odd symbols and the second symbols are even symbols.

11. The data transmission method of claim 9 , wherein the first symbols are even symbols and the second symbols are odd symbols.

12. The data transmission method of claim 9 , wherein the relay node performs beamforming by transmitting a training sequence to the destination node, and transmits the data to the destination node after completion of beamforming.

13. The data transmission method of claim 1 , wherein the first and second symbols are allocated through different frequency resources at the same time slot.

14. The data transmission method of claim 5 , wherein the first and second symbols are allocated through different frequency resources at the same time slot.

15. The data transmission method of claim 9 , wherein the first and second symbols are allocated through different frequency resources at the same time slot.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 2, 2016
From: CHANG, KAP-SEOK; LEE, WOO-YONG; KIM, KYEONGPYO; KWON, HYOUNG-JIN; CHUNG, HYUN-KYU
To: ELECTRONICS AND TELECOMMUNICATIONS RESEARCH INSTITUTE
Reel/Frame 040497/0149 →
Priority Claims (2)
KR 10-2009-0062295 · Jul 8, 2009 · national
KR 10-2010-0013937 · Feb 16, 2010 · national
Continuity (1)
Related Publication 20160329952A1 · Nov 10, 2016