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High-performance FPGA implementation of equivariant adaptive separation via independence algorithm for Independent Component Analysis

High-performance FPGA implementation of equivariant adaptive separation via independence algorithm for Independent Component Analysis

Independent Component Analysis (ICA) is a dimensionality reduction technique that can boost efficiency of machine learning models that deal with probability density functions, e.g. Bayesian neural networks. Algorithms that implement adaptive ICA converge slower than their nonadaptive counterparts, however, they are capable of tracking changes in underlying distributions of input …