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홀로그래픽 데이터 저장장치에서 2차원 심볼 간 간섭을 완화하기 위한 4-레벨 균형 변조부호

4-Level Balanced Modulation Code for the Mitigation of Two-Dimensional Intersymbol Interference in Holographic Data-Storage Systems

  • 박근환 (숭실대학교 전자정보공학) ;
  • 이재진 (숭실대학교 전자정보공학)
  • Park, Keunhwan (School of Electronics Engineering, Soongsil University) ;
  • Lee, Jaejin (School of Electronics Engineering, Soongsil University)
  • 투고 : 2016.08.12
  • 심사 : 2016.08.31
  • 발행 : 2016.09.25

초록

홀로그래픽 데이터 저장 장치(HDSS)는 페이지 단위로 저장 매체의 체적에 데이터를 저장 및 판독하고 2차원으로 데이터를 처리하기 때문에 데이터 전송 속도 및 저장 용량이 증가한다. 게다가, 멀티레벨 HDSS는 한 픽셀에 한 비트이상을 저장할 수 있다. 하지만 2차원으로 페이지를 처리하므로 기존의 데이터 저장 시스템과 달리 2차원으로 인접한 심볼 간 간섭(ISI) 및 인접 페이지 간 간섭(IPI)가 발생한다. 기존에 발표된 논문들은 멀티레벨 HDSS 환경에서 2차원 ISI 완화에 관한 연구에 초점을 두었지만 멀티레벨 HDSS 환경에서 2차원 ISI와 IPI를 동시에 완화하는 연구는 진행되지 않았다. 본 논문에서는 2차원 ISI 및 IPI를 동시에 완화하는 4-레벨 균형 변조부호를 제안하였다.

In the holographic data storage system (HDSS), the data regarding the volume of a storage medium are recorded and read by the page, and the transmission rate and storage capacity can be increased because of two-dimensional, page-oriented data processing; furthermore, the multi-level HDSS can store more than one bit per pixel. For this same reason, however, and unlike conventional data-storage systems, the HDSS is hampered by two-dimensional (2D) intersymbol interference (ISI) and interpage interference (IPI). Progress regarding the published papers on 2D ISI, which is more severe in the multi-level HDSS, continues; however, mitigation of both 2D ISI and IPI in terms of the multi-level HDSS has not yet been studied. In this paper, we therefore propose a 4-level balanced-modulation code that simultaneously mitigates 2D ISI and IPI.

키워드

참고문헌

  1. L. Hesselink, S. S. Orlov, and M. C. Bashaw, "Holographic data storage systems," Proc. IEEE, Vol. 92, no. 8, pp. 1231-1280, August. 2004. https://doi.org/10.1109/JPROC.2004.831212
  2. S. Kim and J. Lee, "A Simple 2/3 Modulation Code for Multi-Level Holographic Data Storage," Jpn. J. Appl Phys, Vol. 52, no. 9 pp. 09LE04, April 2013. https://doi.org/10.7567/JJAP.52.09LE04
  3. S. Jeong and J. Lee, "Multilevel Modulation Codes for Holographic Data Storage," Journal of The Institute of Electronics and Information Engineers, Vol. 52, no. 6, pp. 1581-1586, September 2015.
  4. G. Burr, G. Barking, H. Coufal, J. Hoffnagle, C. Jefferson, and M. Neifeld, "Gray-scale data pages for digital holographic data storage," Opt. Lett, Vol. 23, no. 15, pp. 1218, August. 1998. https://doi.org/10.1364/OL.23.001218
  5. B. King, G. Burr, and M. Neifeld, "Experimental demonstration of gray-scale sparse modulation codes in volume holographic storage," Appl. Opt., Vol. 42, no. 14, pp. 2546-2559, May. 2003. https://doi.org/10.1364/AO.42.002546
  6. K. Park, B. Kim and J. Lee, "A 6/9 Four-Ary Modulation Code for Four-Level Holographic Data Storage," Jpn. J. Appl Phys, Vol. 52, no. 9 pp. 09LE05, April 2013. https://doi.org/10.7567/JJAP.52.09LE05
  7. R. M. Shelby, J. A. Hoffnagle, G. W. Burr, C. M. Jefferson, M.-P. Bernal, H. Coufal, R. K. Grygier, H. Gunter, R. M. Macfalane and G. T. Sincerbox, "Pixel-matched holographic data storage with megabit pages," Opt. Lett, Vol. 22, no. 19, pp. 1509, August. 1997. https://doi.org/10.1364/OL.22.001509
  8. S. Jeong and J. Lee, "4-level 3/4 Modulation Code for Holographic Data Storage," Journal of The Institute of Electronics and Information Engineers, Vol. 52, no. 9, pp. 8-12, September 2015. https://doi.org/10.5573/ieie.2015.52.9.008
  9. N. Kim and J. Lee, "Two-dimensional codes for holographic data storage systems," J. KICS, Vol. 31, no. 11, pp. 1037-1043, November. 2006.
  10. D. Park and J. Lee, "Modeling of the inter-page interference on the holographic data storage systems," J. KICS, Vol. 35, no. 7, pp. 581-586, Jul. 2010
  11. J. Kim and J. Lee, "Two-dimensional 5:8 modulation code for holographic data storage," Jpn. J. Appl. Phys., Vol. 48, no. 3, pp.03A031, Mar. 2009.
  12. J. Kim and J. Lee, "Performance of Two-Dimensional Soft Output Viterbi Algorithm for Holographic Data Storage," J. KICS, Vol. 37A, no. 10 pp. 815-820, October 2012.
  13. J. Kim, J. Wee, and J. Lee, "Error correcting 4/6 modulation codes for holographic data storage," Jpn. J. Appl. Phys., Vol. 49, no. 8, pp. 08KB04, August. 2010.
  14. J. Lee and J. Lee, "4-level Error Correcting Modulation Codes for Holographic Data Storage System," J. KICS, Vol. 39, no. 10 pp. 610-612, September 2014.
  15. K. Yang, J. Kim and J. Lee, "Mis-alignment Channel Performance of Error Correcting 4/6 Modulation Codes for Holographic Data Storage," J. KICS, Vol. 35, no. 12 pp. 971-976, December 2010.
  16. J. Kim and J. Lee, "Iterative two-dimensional soft output Viterbi algorithm for patterned media," IEEE, Trans. Magn., Vol. 47, no. 3, pp. 594-597, March 2011. https://doi.org/10.1109/TMAG.2010.2100371
  17. B. Kim and J. Lee, "2-D Non-Isolated Pixel 6/8 Modulation Code," IEEE, Trans. Magn., Vol. 50, no. 7, pp. 3501404, Jul 2014.
  18. J. Kim and J. Lee, "Modified two-dimensional soft output Viterbi algorithm for holographic data storage," Jpn. J. Appl. Phys., Vol. 49, no. 8, pp. 08KB03-1-08KB03-5, 2010.
  19. N. Kim, J. Lee, and J. Lee, "Rate 5/9 two-dimensional pseudo-balanced code for holographic data storage systems," Jpn. J. Appl. Phys., Vol. 45, no. 2B, pp. 1293-1296, 2006. https://doi.org/10.1143/JJAP.45.1293