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PARALLEL SUPPORT VECTOR METHOD AND APPARATUS

机译:并行支持向量方法和装置

摘要

Disclosed is an improved technique for training a support vector machine using a distributed architecture. A training data set is divided into subsets, and the subsets are optimized in a first level of optimizations, with each optimization generating a support vector set. The support vector sets output from the first level optimizations are then combined and used as input to a second level of optimizations. This hierarchical processing continues for multiple levels, with the output of each prior level being fed into the next level of optimizations. In order to guarantee a global optimal solution, a final set of support vectors from a final level of optimization processing may be fed back into the first level of the optimization cascade so that the results may be processed along with each of the training data subsets. This feedback may continue in multiple iterations until the same final support vector set is generated during two sequential iterations through the cascade, thereby guaranteeing that the solution has converged to the global optimal solution. In various embodiments, various combinations of inputs may be used by the various optimizations. The individual optimizations may be processed in parallel.
机译:公开了一种用于使用分布式架构来训练支持向量机的改进技术。将训练数据集划分为子集,并在第一级优化中对子集进行优化,每个优化都会生成支持向量集。然后将第一级优化输出的支持向量集组合起来,并用作第二级优化的输入。此分层处理将持续多个级别,每个先前级别的输出将被馈送到优化的下一个级别。为了保证全局最优解,可以将来自优化处理的最终级别的支持向量的最终集合反馈到优化级联的第一级别,以便可以将结果与每个训练数据子集一起处理。该反馈可以在多次迭代中继续进行,直到在通过级联的两个连续迭代期间生成相同的最终支持向量集为止,从而确保了解已收敛到全局最优解。在各种实施例中,各种优化可以使用输入的各种组合。各个优化可以并行处理。

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