Protein secondary structure detection based on unsupervised word segmentation

نویسندگان

  • Wang Liang
  • Zhao KaiYong
چکیده

Unsupervised word segmentation methods were applied to analyze protein sequences. Protein sequences, such as “MTMDKSELVQKA...,” were used as input to these methods. Segmented “protein word” sequences, such as “MTM DKSE LVQKA,” were then obtained. We compared the “protein words” derived via unsupervised segmentation and protein secondary structure segmentation. An interesting finding is that unsupervised word segmentation is more efficient than secondary structure segmentation in expressing information. Our experiment also suggests the presence of several “protein ruins” in current non-coding regions.

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تاریخ انتشار 2014