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Improved knowledge discovery of multiple datasets using multiple support vector machines

机译:使用多个支持向量机改进对多个数据集的知识发现

摘要

A system and method for enhancing knowledge discovery from data using multiple learning machines in general and multiple support vector machines in particular. Training data for a learning machine is pre-processed in order to add meaning thereto. Pre-processing data may involve transforming the data points and/or expanding the data points. By adding meaning to the data, the learning machine is provided with a greater amount of information for processing. With regard to support vector machines in particular, the greater the amount of information that is processed, the better generalizations about the data that may be derived. Multiple support vector machines, each comprising distinct kernels, are trained with the pre-processed training data and are tested with test data that is pre-processed in the same manner. The test outputs from multiple support vector machines are compared in order to determine which of the test outputs if any represents a optimal solution. Selection of one or more kernels may be adjusted and one or more support vector machines may be retrained and retested. Optimal solutions based on distinct input data sets may be combined to form a new input data set to be input into one or more additional support vector machine.
机译:一种用于一般地使用多个学习机并且特别地使用多个支持向量机来增强从数据中发现知识的系统和方法。预处理学习机的训练数据,以便为其添加含义。预处理数据可能涉及变换数据点和/或扩展数据点。通过向数据添加含义,为学习机提供了大量用于处理的信息。特别是对于支持向量机,处理的信息量越大,关于可以导出的数据的概括性就越好。使用预处理的训练数据对每个都包含不同内核的多个支持向量机进行训练,并使用以相同方式进行预处理的测试数据对它们进行测试。比较来自多个支持向量机的测试输出,以确定哪个测试输出(如果有)代表最佳解决方案。可以调整一个或多个内核的选择,并且可以重新训练和重新测试一个或多个支持向量机。可以组合基于不同输入数据集的最佳解决方案,以形成新的输入数据集,以输入到一个或多个其他支持向量机中。

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