文件名称:cvEucdist
- 所属分类:
- 其他嵌入式/单片机内容
- 资源属性:
- [Matlab] [源码]
- 上传时间:
- 2012-11-26
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- 1kb
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- a*
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In pattern recognition, the k-nearest neighbor algorithm (k-NN) is a method for classifying objects based on closest training examples in the feature space. k-NN is a type of instance-based learning, or lazy learning where the function is only approximated locally and all computation is deferred until classification. The k-nearest neighbor algorithm is amongst the simplest of all machine learning algorithms: an object is classified by a majority vote of its neighbors, with the object being assigned to the class most common amongst its k nearest neighbors (k is a positive integer, typically small). If k = 1, then the object is simply assigned to the class of its nearest neighbor.
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cvEucdist.m