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For neural networks, function determines form

机译:对于神经网络,功能确定表单

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It is proved that, generically on nets, the I/O (input-output) behavior uniquely determines the internal form, up to simple symmetries. The sets where this conclusion does not hold are thin in the sense that they are included in sets defined by algebraic equalities. It is shown that, under very weak genericity assumptions, the following is true: assume given two nets, whose neurons all have the same nonlinear activation function sigma ; if the two sets have equal behaviors as 'black boxes', then necessarily they must have the same number of neurons and, except at most for sign reversals at each node, the same weights. The results obtained imply unique identifiability of parameters, under all possible I/O experiments. It is also possible to give a result showing that single experiments are (generically) sufficient for identification, in the analytic case. Some partial results can be obtained even if the precise nonlinearities are not known.
机译:事实证明,在网站上,I / O(输入 - 输出)行为唯一地确定内部表单,直至更简单的对称性。 这一结论不持有的套件在意义上是薄的,即它们被包括在由代数平等定义的集合中。 结果表明,在非常弱的透过性假设下,以下是真实的:假设给定的两个网,其神经元都具有相同的非线性激活函数sigma; 如果两组具有平等行为作为“黑匣子”,那么必须具有相同数量的神经元,除了每个节点处的符号逆转,相同的权重。 结果在所有可能的I / O实验下,均得到了唯一的参数可识别性。 还可以给出结果表明,在分析案例中,单一实验(通常)是足以识别的。 即使不知道精确的非线性,也可以获得一些部分结果。

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