On a Simple Minkowski Metric Classifier

G. Toussaint
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引用次数: 5

Abstract

A classifier which, in general, implements a nonlinear decision boundary is shown to be equivalent to a linear discriminant function when the measurements are binary valued; its relation to the Bayes classifier is derived. The classifier requires less computation than a similar one based on the Euclidean distance and can perform equally well.
一个简单的Minkowski度量分类器
当测量值为二值时,通常实现非线性决策边界的分类器等价于线性判别函数;推导了其与贝叶斯分类器的关系。与基于欧几里得距离的分类器相比,该分类器所需的计算量更少,性能也同样好。
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