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首页> 外文期刊>IEEJ Transactions on Electrical and Electronic Engineering >A Winner-Take-All Autoencoder Based Pieceswise Linear Model for Nonlinear Regression with Missing Data
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A Winner-Take-All Autoencoder Based Pieceswise Linear Model for Nonlinear Regression with Missing Data

机译:胜利者 - 基于自动编码器的零件零件,用于非线性回归的线性模型,缺少数据

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摘要

Missing data is a prevailing problem in predictive analytics. In this paper, a winner-take-all (WTA) autoencoder-based piecewise linear model is developed to solve the nonlinear regression problem under the missing value scenario, which consists of two parts: an overcomplete WTA autoencoder and a gated linear network. The overcomplete WTA autoencoder is a stacked denoising autoencoder (SDAE) designed to play two roles: (1) to estimate the missing values; (2) to realize a sophisticated partitioning by generating a broad set of binary gate control sequences. Besides, an iterative algorithm with renewed teacher signals is developed to train the SDAE. On the other hand, the gated linear network with the generated binary gate control sequences implements a flexible piecewise linear model for nonlinear regression. By composing a quasi-linear kernel based on the gate control sequences, the piecewise linear model is then identified in the same way as a support vector regression. Experimental results have shown that our proposed hybrid model has a better performance than traditional models. (c) 2021 Institute of Electrical Engineers of Japan. Published by Wiley Periodicals LLC.
机译:缺少数据是预测分析中的一个主要问题。在本文中,开发了基于赢家的全部(WTA)自动编码器线性线性模型,以解决缺失的值方案下的非线性回归问题,该模型由两个部分组成:胜诉的WTA自动编码器和门控线性网络。胜过WTA AutoCododer是一个堆叠的Denoising AutoCoder(SDAE),旨在扮演两个角色:(1)估计缺失值; (2)通过生成一组宽阔的二进制门控制序列来实现复杂的分区。此外,开发了带有新教师信号的迭代算法来训练SDAE。另一方面,具有生成的二进制门控制序列的封闭线性网络实现了非线性回归的灵活分段线性模型。通过基于栅极控制序列组成准线性内核,然后以与支持向量回归相同的方式识别分段线性模型。实验结果表明,我们提出的混合模型的性能比传统模型更好。 (c)2021日本电气工程师研究所。由Wiley Wendericals LLC出版。

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