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Ying-Lei Song, Ji-Zhen Zhao, Chun-MeiLiu, Kan Liu, Russell Malmberg, Li-MingCai. RNA Structural Homology Search with a Succinct Stochastic Grammar Model[J]. Journal of Computer Science and Technology, 2005, 20(4): 454-464.
Citation: Ying-Lei Song, Ji-Zhen Zhao, Chun-MeiLiu, Kan Liu, Russell Malmberg, Li-MingCai. RNA Structural Homology Search with a Succinct Stochastic Grammar Model[J]. Journal of Computer Science and Technology, 2005, 20(4): 454-464.

RNA Structural Homology Search with a Succinct Stochastic Grammar Model

  • An increasing number of structural homology search tools, mostly based on profile stochastic context-free grammars (SCFGs) have been recently developed for the non-coding RNA gene identification. SCFGs can include statistical biases that often occur in RNA sequences, necessary to profile specific RNA structures for structural homology search. In this paper, a succinct stochastic grammar model is introduced for RNA that has competitive search effectiveness. More importantly, the profiling model can be easily extended to include pseudoknots, structures that are beyond the capability of profile SCFGs. In addition, the model allows heuristics to be exploited, resulting in a significant speed-up for the CYK algorithm-based search.
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