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Gaussian-spherical restricted Boltzmann machines

机译:高斯 - 球形受限制的Boltzmann机器

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摘要

We consider a special type of restricted Boltzmann machine (RBM), namely a Gaussian-spherical RBMwhere the visible units have Gaussian priors while the vector of hidden variables is constrained to stay on an L-2 sphere. The spherical constraint having the advantage to admit exact asymptotic treatments, various scaling regimes are explicitly identified based solely on the spectral properties of the coupling matrix (also called weight matrix of the RBM). Incidentally these happen to be formally related to similar scaling behaviors obtained in a different context dealing with spatial condensation of zero range processes. More specifically, when the spectrum of the coupling matrix is doubly degenerated an exact treatment can be proposed to deal with finite size effects. Interestingly the known parallel between the ferromagnetic transition of the spherical model and the Bose-Einstein condensation can be made explicit in that case. More importantly this gives us the ability to extract all needed response functions with arbitrary precision for the training algorithm of the RBM. This allows us then to numerically integrate the dynamics of the spectrum of the weight matrix during learning in a precise way. This dynamics reveals in particular a sequential emergence of modes from the Marchenko-Pastur bulk of singular vectors of the coupling matrix.
机译:我们考虑一种特殊类型的受限制的Boltzmann机器(RBM),即高斯球面RBM在可见单位具有高斯前导者的同时,在隐藏变量的向量被约束以保持L-2球体。具有承认精确的渐近处理的优点的球形约束,仅仅基于耦合矩阵的光谱特性(也称为RBM的重量矩阵),明确地明确识别各种缩放制度。顺便提及,这些恰恰与在处理零范围过程的空间凝结的不同上下文中获得的类似缩放行为。更具体地,当偶联基质的频谱是双重退化的时候,可以提出精确的处理来处理有限尺寸的效果。有趣的是,球形模型的铁磁转变与Bose-Einstein冷凝之间的已知平行可以在这种情况下进行明确。更重要的是,这使我们能够提取所有所需响应函数的能力,以任意精度为RBM的训练算法。这允许我们以精确的方式在学习期间以数值集成重量矩阵频谱的动态。这种动态特别揭示了来自耦合矩阵的奇异谱系的Marchenko - 糊状载体的模式的连续出现。

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