Data Imputation Techniques Using the Bag of Functions: Addressing Variable Input Lengths and Missing Data in Time Series Decomposition

In time series analysis, the ability to effectively handle data with varying input lengths and missing data is crucial for accurate modeling. This paper presents the Bag-of-Functions-Driven Imputation framework, which leverages sequence-length independent techniques to decompose time series data whi...

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Bibliographic Details
Published in:IEEE International Conference on Industrial Technology (Online) pp. 1 - 7
Main Authors: Salazar Torres, David Orlando, Altinses, Diyar, Schwung, Andreas
Format: Conference Proceeding
Language:English
Published: IEEE 26.03.2025
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ISSN:2643-2978
Online Access:Get full text
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