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Incorporating priori knowledge into linear programming support vector regression

机译:将先验知识纳入线性规划支持向量回归

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In order to obtain an accurate regression model from a small dataset, a novel linear program support vector regression with priori knowledge is presented in the paper. The algorithm incorporates the data that is possible biased from a priori simulator into the existing linear programming support vector regression by modifying optimization objectives and inequality constraints. Moreover, multiple kernels are introduced to achieve an accurate modeling for complex and changeful problems. Synthetic examples show that the proposed algorithm is effective, and that the obtained model is sparse and accurate.
机译:为了从一个小的数据集中获得准确的回归模型,本文提出了一种具有先验知识的新型线性程序支持向量回归。该算法通过修改优化目标和不等式约束,将可能由先验仿真器产生偏差的数据合并到现有的线性编程支持向量回归中。此外,引入了多个内核以实现对复杂和多变问题的精确建模。综合算例表明,所提算法是有效的,所获得的模型稀疏准确。

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