• Title/Summary/Keyword: s-랜덤 인터리버

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Performance Analysis of Turbo-Code with Random (and s-random) Interleaver based on 3-Dimension Algorithm (3차원 알고리듬을 이용한 랜덤(or s-랜덤) 인터리버를 적용한 터보코드의 성능분석)

  • Kong, Hyung-Yun;Choi, Ji-Woong
    • The KIPS Transactions:PartA
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    • v.9A no.3
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    • pp.295-300
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    • 2002
  • In this paper, we apply the 3-dimension algorithm to the random interleaver and s-random interleaver and analyze the performance of the turbo code system with random interleaver (or s-random interleaver). In general, the performance of interleaver is determined by minimum distance between neighbor data, thus we could improve the performance of interleaver by increasing the distance of the nearest data. The interleaver using 3-dimension algorithm has longer minimum distance and average distance compared to existing random-interleaver (s-random interleaver) because the output data is generated randomly from 3-dimension storage. To verify and compare the performance of our proposed system, the computer simulations have been performed in turbo code system under gaussian noise environment.

The Performance Estiamtion of Turbo Internal Interleaver Using Weight Distribution of Codewords (부호어의 무게 분포를 통한 터보 인터리버의 성능 분석)

  • 고태환;김주민;정덕진
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.27 no.3A
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    • pp.173-179
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    • 2002
  • In this paper, we suggest more precise performance analysis method of turbo interleavers based on two criteria; performance bounds like Union Bound and weight frequency of codewords. In order to present our new method, we employ block pseudo random, and so-called prime interleavers in compliance of 3GPP standard, respectively, We also applied this method to S-random interleavers that have different window size, S. 3GPP complied turbo encoder, decoder, and AWGN channel are implemented by using MATLAB for our performance analysis. According to our analysis, both criteria should be taken into account coincidently to predict the performance of newly designed interleavers.

Performance Analysis of eHDR-WPAN System Using Interleaver (인터리버를 이용한 eHDR-WPAN 시스템의 성능 분석)

  • Jeong, Seung-Hee;Lee, Hyun-Jae;Oh, Chang-Heon
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • v.9 no.1
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    • pp.788-791
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    • 2005
  • In this paper, We propose performance of improvement method for eHDR-WPAN system using Interleaver. Burst error pattern caused by fading in indoor wireless channel. for the reason, using of Interleave method (make burst error to random error) can be enhance to error-rate in system. This paper is used Convolutional, Block, Random Interleaver. We make use of 9 and 27 for symbol spacing. Block-Interleaver is show that performance about 0.6dB of E$_b$/N$_o$ at $10^{-4}$. In result, the suitable Interleaver for eHDR-WPAN system is Block Interleaver of 9 symbol spacing.

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A study on Puncturing and Interleaver Design for Wireless LAN base on Single Clock (단일클럭 기반의 무선랜을 위한 Puncturing과 Interleaver 설계에 관한 연구)

  • Kim, Tae-Ghi;Kil, Min-Su;Cheong, Cha-Keun
    • Proceedings of the Korea Institute of Convergence Signal Processing
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    • 2005.11a
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    • pp.310-313
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    • 2005
  • 5GHz를 사용하고 최소6Mbps에서 최대 54Mbps까지 지원하는 IEEE 802.11a 무선 랜 에서는 데이터의 전송중에 발생하는 랜덤오류 및 연집오류의 정정을 위해서 길쌈부호기와 인터리버를 규정하고 있다. 길쌈부호기에서 다양하고 높은 데이터 전송율을 확보하기 위해서 변조방식과 전송율에 따라 높은 부호율을 얻기 위해 여러 개의 펑쳐링 기법을 사용해서 2/3와 3/4과 같은 높은 부호율이 얻어지도록 하고 있다. 펑쳐링을 거친 데이터는 Coding rate만큼의 비율로 데이터가 많아지고 이 데이터를 처리하기 위해서 가변클럭을 사용해야 한다. 가변클럭의 사용은 동기화 및 back-end 작업 시 여러 가지 문제를 발생시킨다. 본 논문에서 펑쳐링의 출력 비트를 바꾸고 인터리버에서 사용되는 메모리를 8x1의 메모리로 세분화 함으로써 Code rate에 상관없이 하나의 클럭으로 데이터의 병목현상을 처리 할 수 있다.

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An interleaver to reduce the edge-effect in turbo codes with CRC (CRC를 사용한 터보부호에서 edge-effect를 감소시키기 위한 인터리버)

  • Lee, Byeong-Gil;Bae, Sang-Jae;Jeong, Geon-Hyeon;Ju, Eon-Gyeong
    • Journal of the Institute of Electronics Engineers of Korea TC
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    • v.39 no.4
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    • pp.165-172
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    • 2002
  • In the next generation mobile communications, powerful channel coding is essential in order to obtain high quality multimedia services. Turbo code can achieve good error performance by iterative decoding, but more iterations result in additional computational complexity and delay. Thus, a method to reduce the number of iterations without additional performance degradation is needed. Turbo code with CRC is known to be the most efficient method to reduce the number of iterations. In this scheme, the performance may be degraded by the edge-effect like the conventional turbo code without CRC. In this paper, a method to eliminate the edge-effect is proposed by adopting D-parameter to the conventional s-random interleaver. As results of simulation, the edge-effect of the turbo code with CRC is shown to be successfully eliminated by using the new interleaver designed with D-parameter.

The Analysis about Channel Code Performance of Underwater Channel (수중통신채널에서 고려되는 채널 부호의 성능 분석)

  • Bae, Jong-Tae;Kim, Min-Hyuk;Choi, Suk-Soon;Jung, Ji-Won;Chun, Seung-Yong;Dho, Kyeong-Cheol
    • The Journal of the Acoustical Society of Korea
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    • v.27 no.6
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    • pp.286-295
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    • 2008
  • Underwater acoustic communication has multi path error because of reflection by sea-level and sea-bottom. The multipath of underwater channel causes signal distortion and error floor. In this paper, we consider the use of various channel coding schemes such as RS code, convolutional code, cross-layer code and LDPC code in order to compensate the multipath effect in underwater channel. As shown in simulation results, characteristic of multipath error is similar to that of random error, so interleaver has little effect for error correcting. For correcting of error floor by multipath error, it is necessary strong channel codes like LDPC code that is similar to Shannon's limit. And the performance of concatenated codes including RS codes has better performance than using singular channel codes.