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A histogram based method for multiclass classification using SVMs.

机译:一种基于直方图的支持向量机分类的方法。

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摘要

SVMs were primarily proposed to deal with binary classification. In this work an alternative O(log(2)(n)) method for multiple classes classification using SVMs is proposed. Experimental results showed that it can be 23 times faster than the one vs one method, and 1.3 times faster than the one vs all classic methods, with the same error rate. Tests were performed on a speaker independent, isolated word speech recognition scenario.
机译:支持向量机主要用于处理二进制分类。在这项工作中,提出了使用SVM进行多类分类的另一种O(log(2)(n))方法。实验结果表明,在错误率相同的情况下,它可以比一种方法快23倍,比一种方法快1.3倍。测试是在与说话者无关的孤立单词语音识别场景下进行的。

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