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Effect of Equality Constraints to Unconstrained Large Margin Distribution Machines

机译:平等限制对无约束大型边缘配电器的影响

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Unconstrained large margin distribution machines (ULDMs) maximize the margin mean and minimize the margin variance without constraints. In this paper, we first reformulate ULDMs as a special case of least squares (LS) LDMs, which are a least squares version of LDMs. By setting a hyperparameter to control the trade-off between the generalization ability and the training error to zero, LS LDMs reduce to ULDMs. In the computer experiments, we include the zero value of the hyperparameter as a candidate value for model selection. According to the experiments using two-class problems, in most cases LS LDMs reduce to ULDMs and their generalization abilities are comparable. Therefore, ULDMs are sufficient to realize high generalization abilities without equality constraints.
机译:无约束的大型边缘分配机(ULDMS)最大化边缘均值,并最大限度地减少不受限制的边缘方差。在本文中,我们首先将ULDM重新重新重新重新重新格式化为最小二乘(LS)LDMS的特殊情况,这是LDM的最小二乘范围。通过设置普遍的参数来控制泛型能力与训练错误之间的权衡,LS LDM减少到ULDM。在计算机实验中,我们将HyperParameter的零值包括为模型选择的候选值。根据使用两级问题的实验,在大多数情况下,LS LDM减少到ULDM,其概括能力是可比的。因此,ULDM足以实现没有平等约束的高概括能力。

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