Literature DB >> 26477633

Combining Fourier and lagged k-nearest neighbor imputation for biomedical time series data.

Shah Atiqur Rahman1, Yuxiao Huang2, Jan Claassen3, Nathaniel Heintzman4, Samantha Kleinberg5.   

Abstract

Most clinical and biomedical data contain missing values. A patient's record may be split across multiple institutions, devices may fail, and sensors may not be worn at all times. While these missing values are often ignored, this can lead to bias and error when the data are mined. Further, the data are not simply missing at random. Instead the measurement of a variable such as blood glucose may depend on its prior values as well as that of other variables. These dependencies exist across time as well, but current methods have yet to incorporate these temporal relationships as well as multiple types of missingness. To address this, we propose an imputation method (FLk-NN) that incorporates time lagged correlations both within and across variables by combining two imputation methods, based on an extension to k-NN and the Fourier transform. This enables imputation of missing values even when all data at a time point is missing and when there are different types of missingness both within and across variables. In comparison to other approaches on three biological datasets (simulated and actual Type 1 diabetes datasets, and multi-modality neurological ICU monitoring) the proposed method has the highest imputation accuracy. This was true for up to half the data being missing and when consecutive missing values are a significant fraction of the overall time series length.
Copyright © 2015 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Biomedical data; Imputation; Missing data; Time series

Mesh:

Year:  2015        PMID: 26477633      PMCID: PMC4755282          DOI: 10.1016/j.jbi.2015.10.004

Source DB:  PubMed          Journal:  J Biomed Inform        ISSN: 1532-0464            Impact factor:   6.317


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