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Erschienen in: Advances in Data Analysis and Classification 1/2023

04.04.2022 | Regular Article

Early identification of biliary atresia using subspace and the bootstrap methods

verfasst von: Kuniyoshi Hayashi, Eri Hoshino, Mitsuyoshi Suzuki, Kotomi Sakai, Masayuki Obatake, Osamu Takahashi

Erschienen in: Advances in Data Analysis and Classification | Ausgabe 1/2023

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Abstract

In clinical medicine, physicians often rely on information derived from medical imaging systems, such as image data for diagnosis. To detect disease early, physicians extract essential information from data manually to distinguish accurately between positive and negative cases of disease. In recent years, deep learning (DL) has been used for this purpose, attracting the attention of prominent researchers because of its excellent performance. Consequently, DL and other artificial intelligence (AI) technologies are expected to develop further through integration with statistical and other approaches. Here, we examine biliary atresia (BA), a rare disease that affects primarily infants. Our study focuses on the identification of BA from image data (stool images of BA patients). Using AI and statistical approaches, we propose a machine learning classifier (model) for accurate diagnosis, efficient classification, and early detection of BA after exposure to limited training data. In an initial study, we used the subspace pattern recognition method for the development of a similar classifier. In this study, we propose the development of a filter based on the subspace method and a statistical approach. The filter enables the classifier to extract essential information from image data and discriminate efficiently between BA and non-BA patients.

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Metadaten
Titel
Early identification of biliary atresia using subspace and the bootstrap methods
verfasst von
Kuniyoshi Hayashi
Eri Hoshino
Mitsuyoshi Suzuki
Kotomi Sakai
Masayuki Obatake
Osamu Takahashi
Publikationsdatum
04.04.2022
Verlag
Springer Berlin Heidelberg
Erschienen in
Advances in Data Analysis and Classification / Ausgabe 1/2023
Print ISSN: 1862-5347
Elektronische ISSN: 1862-5355
DOI
https://doi.org/10.1007/s11634-022-00493-8

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