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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >On hidden Markov models and cyclic strings for shape recognition
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On hidden Markov models and cyclic strings for shape recognition

机译:在隐马尔可夫模型和循环字符串中进行形状识别

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摘要

Shape descriptions and the corresponding matching techniques must be robust to noise and invariant to transformations for their use in recognition tasks. Most transformations are relatively easy to handle when contours are represented by strings. However, starting point invariance is difficult to achieve. One interesting possibility is the use of cyclic strings, which are strings that have no starting and final points. We propose new methodologies to use Hidden Markov Models to classify contours represented by cyclic strings. Experimental results show that our proposals outperform other methods in the literature.
机译:形状描述和相应的匹配技术必须对噪声具有鲁棒性,并且对于变换在识别任务中的使用必须具有不变性。当轮廓由字符串表示时,大多数转换相对容易处理。但是,起点不变性很难实现。一种有趣的可能性是使用循环字符串,这是没有起点和终点的字符串。我们提出了使用隐马尔可夫模型对循环字符串表示的轮廓进行分类的新方法。实验结果表明,我们的建议优于文献中的其他方法。

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