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BICA: a Boolean independent component analysis algorithm

机译:BICA:一个布尔独立分量分析算法

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We introduce a procedure for mapping general data records onto Boolean vectors, in the philosophy of ICA procedures. The task is demanded of a neural network with double duty: i) extracting a compressed version of the data in a tight hidden layer of a self-associative multilayer architecture, and ii) mapping it onto Boolean vectors that optimize an entropic target. We prove that the components of these vectors are approximately independent and appreciate their ability to preserve data information in a statistically driven solution of benchmark classification problems.
机译:我们在ICA程序的哲学中介绍了将常规数据记录映射到布尔矢量的过程。该任务要求具有双重责任的神经网络:i)在自关联多层体系结构的紧密隐藏层中提取压缩版本,II)将其映射到优化熵目标的布尔向量上。我们证明这些载体的组件大致独立,并欣赏它们在基准分类问题的统计驱动解决方案中保留数据信息的能力。

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