Stochastic mutual information gradient estimation for dimensionality reduction networks

被引:0
|
作者
Oezdenizci, Ozan [1 ,2 ,3 ]
Erdogmus, Deniz [1 ]
机构
[1] Northeastern Univ, Dept Elect & Comp Engn, Boston, MA 02115 USA
[2] Graz Univ Technol, Inst Theoret Comp Sci, Graz, Austria
[3] Graz Univ Technol, SAL Dependable Embedded Syst Lab, Silicon Austria Labs, Graz, Austria
关键词
Feature projection; Dimensionality reduction; Neural networks; Information theoretic learning; Mutual information; Stochastic gradient estimation; MMINet; FEATURE-SELECTION; FEATURE-EXTRACTION; CLASSIFICATION; PROBABILITY; EEG;
D O I
10.1016/j.ins.2021.04.066
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Feature ranking and selection is a widely used approach in various applications of supervised dimensionality reduction in discriminative machine learning. Nevertheless there exists significant evidence on feature ranking and selection algorithms based on any criterion leading to potentially sub-optimal solutions for class separability. In that regard, we introduce emerging information theoretic feature transformation protocols as an end-to end neural network training approach. We present a dimensionality reduction network (MMINet) training procedure based on the stochastic estimate of the mutual information gradient. The network projects high-dimensional features onto an output feature space where lower dimensional representations of features carry maximum mutual information with their associated class labels. Furthermore, we formulate the training objective to be estimated non-parametrically with no distributional assumptions. We experimentally evaluate our method with applications to high-dimensional biological data sets, and relate it to conventional feature selection algorithms to form a special case of our approach. (c) 2021 Elsevier Inc. All rights reserved.
引用
收藏
页码:298 / 305
页数:8
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