박사

고전송률을 갖는 무선응용시스템에서 반복 부호화된 터보 등화 모델 연구 = An Iterative Coded Turbo Equalization Model in High Data Rate Wireless Application System

백창욱 2019년
논문상세정보
' 고전송률을 갖는 무선응용시스템에서 반복 부호화된 터보 등화 모델 연구 = An Iterative Coded Turbo Equalization Model in High Data Rate Wireless Application System' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • Faster than Nyquist
  • Underwater acoustic communication
  • Unequal error probability
  • multiple-input multiple-output
  • turbo equalization
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
50 0

0.0%

' 고전송률을 갖는 무선응용시스템에서 반복 부호화된 터보 등화 모델 연구 = An Iterative Coded Turbo Equalization Model in High Data Rate Wireless Application System' 의 참고문헌

  • 오류 확률 기반 FTN 전송 기법 연구
    백창욱 비균일 서정현 정지원 한 국통신학회논문지, 44(1), pp.14-21
  • Wu, Y., & Zou, W. Y., 1995. Orthogonal frequency division multiplexing: A multi-carrier modulation scheme. IEEE Transactions on Consumer Electronics, 41(3), pp.392-399.
  • Viterbi, A., 1971. Convolutional codes and their performance in communication systems. IEEE Transactions on Communication Technology, 19(5), pp.751-772.
  • Tuchler, M., & Singer, A. C., 2011. Turbo equalization: An overview. IEEE Transactions on Information Theory, 57(2), pp.920-952.
  • Tarokh, V., Seshadri, N., & Calderbank, A. R., 1998. Space-time codes for high data rate wireless communication: Performance criterion and code construction. IEEE transactions on information theory, 44(2), pp.744-765.
  • Tarokh, V., Jafarkhani, H., & Calderbank, A. R., 1999. Space-time block coding for wireless communications: performance results. IEEE Journal on selected areas in communications, 17(3), pp.451-460.
  • Tanner, R., 1981. A recursive approach to low complexity codes. IEEE Transactions on information theory, 27(5), pp.533-547.
  • Shannon, C. E., 1948. A mathematical theory of communication. Bell system technical journal, 27(3), pp.379-423.
  • Segard, A., Verdier, F., Declercq, D., & Urard, P., 2006. A DVB-S2 compliant LDPC decoder integrating the Horizontal Shuffle Scheduling. Proceeding of 2006 International Symposium on Intelligent Signal Processing and Communications, Tottori, Japan, December 12-15, 2006, pp.1013-1016.
  • Schmidl, T. M., & Cox, D. C., 1997. Robust frequency and timing synchronization for OFDM. IEEE transactions on communications, 45(12), pp.1613-1621.
  • S. M. Alamouti., 1998. A simple transmitter diversity scheme for wireless communications. IEEE Journal of Selected Areas in Communications, 16, pp.1451– -1458.
  • Rusek, F., & Anderson, J. B., 2009. Multistream Faster than Nyquist Signaling. IEEE Transactions on Communications, 57(5), pp.1329-1340.
  • Prlja, A., & Anderson, J. B., 2012. Reduced-complexity receivers for strongly narrowband intersymbol interference introduced by faster-than-Nyquist signaling. IEEE Transactions on Communications, 60(9), pp.2591-2601.
  • Park, H. Y., Kang, J. W., Kim, K. S., & Whang, K. C., 2007. Efficient puncturing method for rate-compatible low-density parity-check codes. IEEE Transactions on Wireless Communications, 6(11), pp.3914-3919.
  • Papadias, C. B., & Foschini, G. J., 2001. A space-time coding approach for systems employing four transmit antennas. Proceeding of 2001 IEEE International Conference on Acoustics, Speech, and Signal Processing, Salt Lake City, UT, USA, May 7-11, 2001, pp.2481-2484.
  • Niyizamwiyitira, C., Kang, C. G., & Oh, C. H., 2009. Low complexity ml detection based on linear detectors in MIMO Systems. Journal of the Korea Institute of Information and Communication Engineering, 13(11), pp.2405-2411.
  • Moose, P. H., 1994. A technique for orthogonal frequency division multiplexing frequency offset correction. IEEE Transactions on communications, 42(10), pp.2908-2914.
  • McEliece, R. J., 1996. On the BCJR trellis for linear block codes. IEEE Transactions on Information Theory, 42(4), pp.1072-1092.
  • Mazo, J. E., 1975. Faster-than-Nyquist signaling. The Bell System Technical Journal, 54(8), pp.1451-1462.
  • Marzetta, T. L., 2015. Massive MIMO: an introduction. Bell Labs Technical Journal, 20, pp.11-22.
  • MacKay, D. J., & Neal, R. M., 1996. Near Shannon limit performance of low density parity check codes. Electronics letters, 32(18), pp.1645-1646.
  • Lu, L., Li, G.Y., Swindlehurst, A.L., Ashikhmin, A. & Zhang, R., 2014. An overview of massive MIMO: Benefits and challenges. IEEE journal of selected topics in signal processing, 8(5), pp.742-758.
  • Lin, X., & Blum, R. S., 2000. Improved space-time codes using serial concatenation. IEEE Communications letters, 4(7), pp.221-223.
  • Lim, B. S., Kim, M. H., & Jung, J. W., 2012. A Study on Horizontal Shuffle Scheduling for High Speed LDPC decoding in DVB-S2. Journal of the Korea Institute of Information and Communication Engineering, 16(10), pp.2143-2149.
  • Larsson, E. G., Edfors, O., Tufvesson, F., & Marzetta, T. L., 2014. Massive MIMO for next generation wireless systems. IEEE Communications Magazine, 52(2), pp.186-195.
  • Kim, Y. M., Shang, P. P., & Kim, S. Y., 2011. Estimation of soft decision channel gain for coded MIMO system. The Journal of Korean Institute of Communications and Information Sciences, 36(6A), pp.577-586.
  • Kim, M. H., Park, T. D., Lim, B. S., Lee, I. K., Oh, D. G., & Jung, J. W., 2011. Analysis of Turbo coding and decoding algorithm for DVB-RCS next generation. The Journal of Korean Institute of Communications and Information Sciences, 36(9C), pp.537-545.
  • IEEE P802.11n/D3.07, Draft Amendment to Standard for Information Technology - Telecommunications and information exchange between systems - Localand Metropolitan networks-Specific requirements-Part 11 : WirelessLAN Medium Access Control (MAC) and Physical Layer (PHY) specifications : Enhancements for Higher Throughput. IEEE Standard. 802.11n, 2008.
  • Hwang, L. M., Lee, B. J., Yeo, B. G., Cho, J. P., & Kim, K. S., 2016. Link Relay H-ARQ mode for Throughput improvement in a Satellite Communication network. The Journal of The Institute of Internet, Broadcasting and Communication, 16(1), pp.121-127.
  • Hamming, R. W., 1950. Error detecting and error correcting codes. The Bell system technical journal, 29(2), pp.147-160.
  • Haccoun, D., & Begin, G., 1989. High-rate punctured convolutional codes for Viterbi and sequential decoding. IEEE Transactions on Communications, 37, pp.1113-1125.
  • Ha, J., Kim, J., & McLaughlin, S. W., 2004. Rate-compatible puncturing of low-density parity-check codes. IEEE Transactions on information Theory, 50(11), pp.2824-2836.
  • Gupta, A., & Jha, R. K., 2015. A survey of 5G network: Architecture and emerging technologies. IEEE access, 3, pp.1206-1232.
  • Golden, G. D., Foschini, C. J., Valenzuela, R. A., & Wolniansky, P. W., 1999. Detection algorithm and initial laboratory results using V-BLAST space-time communication architecture. Electronics letters, 35(1), pp.14-16.
  • Gallager, R. G., 1962. Low-density parity-check codes. IRE Transactions on information theory, 8(1), pp.21-28.
  • Fossorier, M. P., Mihaljevic, M., & Imai, H., 1999. Reduced complexity iterative decoding of low-density parity check codes based on belief propagation. IEEE Transactions on communications, 47(5), pp.673-680.
  • Foschini, G. J., 1996. Layered space‐time architecture for wireless communication in a fading environment when using multi‐element antennas. Bell labs technical journal, 1(2), pp.41-59.
  • Foschini, G. J., & Gans, M. J., 1998. On limits of wireless communications in a fading environment when using multiple antennas. Wireless personal communications, 6(3), pp.311-335.
  • Fettweis, G., & Meyr, H., 1990. High-rate Viterbi processor: A systolic array solution. IEEE Journal on Selected Areas in Communications, 8(8), pp.1520-1534.
  • Fan, J., Guo, S., Zhou, X., Ren, Y., Li, G. Y., & Chen, X., 2017. Faster-than-Nyquist signaling: An overview. IEEE Access, 5, pp.1925-1940.
  • European Telecommunications Standards Institude(ETSI). Digital Video Broadcasting Second generation framing structure for broadband satellite application. EN 302 307 V1.1.1, 2005.
  • European Telecommunications Standards Institude(ETSI). Digital Video Broadcasting (DVB); Interaction Channel for Satellite Distribution Systems. EN 301 790 v. 1.3.1, Mar. 2003.
  • El Hefnawy, M., & Taoka, H., 2013. Overview of faster-than-Nyquist for future mobile communication systems. Proceeding of 2013 IEEE 77th Vehicular Technology Conference (VTC Spring), Dresden, Germany, June 2-5, 2013, pp. 1-5.
  • Douillard, C., & Berrou, C., 2005. Turbo codes with rate-m/(m+1) constituent convolutional codes. IEEE Transactions on Communications, 53(10), pp.1630-1638.
  • Chiani, M., Conti, A., & Ventura, A., 2000. Evaluation of low-density parity-check codes over block fading channels. Proceeding of 2000 IEEE International Conference on Communications, New Orleans, LA, USA, June 18-22, 2000, pp. 1183-1187.
  • Chang, R. W., 1966. Synthesis of band‐limited orthogonal signals for multichannel data transmission. Bell System Technical Journal, 45(10), pp.1775-1796.
  • Berrou, C., Glavieux, A., & Thitimajshima, P., 1993. Near Shannon limit error-correcting coding and decoding: Turbo-codes. Proceedings of ICC'93 - IEEE International Conference on Communications, Geneva, Switzerland, May 23-26, pp.1064-1070.
  • Baro, S., Bauch, G., & Hansmann, A., 2000. Improved codes for space-time trellis-coded modulation. IEEE Communications Letters, 4(1), pp.20-22.
  • Bahl, L., Cocke, J., Jelinek, F., & Raviv, J., 1974. Optimal decoding of linear codes for minimizing symbol error rate (corresp.). IEEE Transactions on information theory, 20(2), pp.284-287.
  • Baek, C. U., Park, G. W., & Jung, J. W., 2017. An efficient receiver structure for faster-than-nyquist signal in MIMO system. Journal of Communications, 12(5), pp.285-290.
  • Baek, C. U., Lee, H. S., Lee, A., H., & Jung, J. W., 2019. A Study on a New P-FTN Method for High Throughput Wireless Communication. Journal of Communications, 14(2), pp.97-103.
  • Baek, C. U., & Jung, J. W., 2017. LDPC coded turbo equalization for MIMO system. Journal of Communications, 12(1), pp.49-54.
  • Baek, C. U., & Jung, J. W., 2016. An Efficient Turbo Equalization for Faster than Nyquist Signal. International Journal of Signal Processing Systems, 4(3), pp.231-234.
  • B. Sklar, 2001. Digital Communications Fundamentals and Applications. 2nd Ed. Prentice Hall PTR : New Jersey.
  • Anderson, J. B., Rusek, F., & wall, V., 2013. Faster-than-Nyquist signaling. Proceedings of the IEEE, 101(8), pp.1817-1830.