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$Ae^2I$: A Double Autoencoder for Imputation of Missing Values

Published 16 Jan 2023 in cs.LG and stat.ML | (2301.06633v1)

Abstract: The most common strategy of imputing missing values in a table is to study either the column-column relationship or the row-row relationship of the data table, then use the relationship to impute the missing values based on the non-missing values from other columns of the same row, or from the other rows of the same column. This paper introduces a double autoencoder for imputation ($Ae2I$) that simultaneously and collaboratively uses both row-row relationship and column-column relationship to impute the missing values. Empirical tests on Movielens 1M dataset demonstrated that $Ae2I$ outperforms the current state-of-the-art models for recommender systems by a significant margin.

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