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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 approx
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CNN(CondensedNearestNeighbor)是最早的基于近邻分类的实例选择算法。本程序实现了CNN算法,能很好的实现近邻分类的实例选择。-CNN (CondensedNearestNeighbor) is the earliest instance selection algorithm based on nearest neighbor classification. The core idea of the algorithm is that if the instance c
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ML-KNN,这是来自传统的K-近邻(KNN)算法。详细地,为每一个看不见的实例中,首先确定了训练集中的k近邻。之后,基于从标签集获得的统计信息。这些相邻的实例,即属于每个可能类的相邻实例的数量,最大后验(MAP)原理。用于确定不可见实例的标签集。三种不同现实世界中多标签学习问题的实验研究,即酵母基因功能分析、自然场景分类和网页自动分类,表明ML-KNN实现了卓越的性能(ML-KNN which is derived from the traditional K-nearest neighbo
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