JOURNAL ARTICLE

Detracking Autoencoding Conditional Generative Adversarial Network: Improved Generative Adversarial Network Method for Tabular Missing Value Imputation

Jingrui LiuZixin DuanXinkai HuJingxuan ZhongYunfei Yin

Year: 2024 Journal:   Entropy Vol: 26 (5)Pages: 402-402   Publisher: Multidisciplinary Digital Publishing Institute

Abstract

Due to various reasons, such as limitations in data collection and interruptions in network transmission, gathered data often contain missing values. Existing state-of-the-art generative adversarial imputation methods face three main issues: limited applicability, neglect of latent categorical information that could reflect relationships among samples, and an inability to balance local and global information. We propose a novel generative adversarial model named DTAE-CGAN that incorporates detracking autoencoding and conditional labels to address these issues. This enhances the network’s ability to learn inter-sample correlations and makes full use of all data information in incomplete datasets, rather than learning random noise. We conducted experiments on six real datasets of varying sizes, comparing our method with four classic imputation baselines. The results demonstrate that our proposed model consistently exhibited superior imputation accuracy.

Keywords:
Categorical variable Computer science Imputation (statistics) Generative grammar Generative adversarial network Missing data Adversarial system Artificial intelligence Machine learning Generative model Data mining Pattern recognition (psychology) Deep learning

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1
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0.53
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33
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0.51
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Citation History

Topics

Generative Adversarial Networks and Image Synthesis
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Machine Learning in Healthcare
Physical Sciences →  Computer Science →  Artificial Intelligence
Anomaly Detection Techniques and Applications
Physical Sciences →  Computer Science →  Artificial Intelligence
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