Metric sifting in breadth-first decoding of convolutional coded data

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United States of America Patent

PATENT NO 5901182
SERIAL NO

08824417

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Abstract

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A metric sifting, i.e., sorting or selection, method which can efficiently provide a sorted set of survivor metrics during breadth-first reduced-search decoding of convolutional codes. The preferred embodiment efficiently implements the M algorithm by providing a sorted set of M survivor metrics using a linear-time (O(M)) number of comparisons. To obtain this efficiency, the method employs partitioning of branch metrics into implicitly sorted subsets, and employs efficient merging of these subsets. Compared to the prior art, the number of comparisons for metric sifting during M algorithm decoding of typical rate 1/n binary convolutional codes is reduced by 30-40%; more specifically, the number of comparisons is reduced from (2n-1)M-(n-1) to n(M-1)+2.sup.n -1.

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Patent Owner(s)

Patent OwnerAddress
RAKUTEN INC1-14-1 TAMAGAWA SETAGAYA-KU TOKYO 1580094 ?1580094

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Inventor(s)

Inventor Name Address # of filed Patents Total Citations
Kot, Alan D Vancouver, WA 3 76

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