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[Author] Tatsuyuki ISHIKAWA(2hit)

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  • Partially-Parallel LDPC Decoder Achieving High-Efficiency Message-Passing Schedule

    Kazunori SHIMIZU  Tatsuyuki ISHIKAWA  Nozomu TOGAWA  Takeshi IKENAGA  Satoshi GOTO  

     
    PAPER

      Vol:
    E89-A No:4
      Page(s):
    969-978

    In this paper, we propose a partially-parallel LDPC decoder which achieves a high-efficiency message-passing schedule. The proposed LDPC decoder is characterized as follows: (i) The column operations follow the row operations in a pipelined architecture to ensure that the row and column operations are performed concurrently. (ii) The proposed parallel pipelined bit functional unit enables the column operation module to compute every message in each bit node which is updated by the row operations. These column operations can be performed without extending the single iterative decoding delay when the row and column operations are performed concurrently. Therefore, the proposed decoder performs the column operations more frequently in a single iterative decoding, and achieves a high-efficiency message-passing schedule within the limited decoding delay time. Hardware implementation on an FPGA and simulation results show that the proposed partially-parallel LDPC decoder improves the decoding throughput and bit error performance with a small hardware overhead.

  • Power-Efficient LDPC Decoder Architecture Based on Accelerated Message-Passing Schedule

    Kazunori SHIMIZU  Tatsuyuki ISHIKAWA  Nozomu TOGAWA  Takeshi IKENAGA  Satoshi GOTO  

     
    PAPER-VLSI Architecture

      Vol:
    E89-A No:12
      Page(s):
    3602-3612

    In this paper, we propose a power-efficient LDPC decoder architecture based on an accelerated message-passing schedule. The proposed decoder architecture is characterized as follows: (i) Partitioning a pipelined operation not to read and write intermediate messages simultaneously enables the accelerated message-passing schedule to be implemented with single-port SRAMs. (ii) FIFO-based buffering reduces the number of SRAM banks and words of the LDPC decoder based on the accelerated message-passing schedule. The proposed LDPC decoder keeps a single message for each non-zero bit in a parity check matrix as well as a classical schedule while achieving the accelerated message-passing schedule. Implementation results in 0.18 [µm] CMOS technology show that the proposed decoder architecture reduces an area of the LDPC decoder by 43% and a power dissipation by 29% compared to the conventional architecture based on the accelerated message-passing schedule.