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Domain Correction Based on Kernel Transformation for Drift Compensation in the E-Nose System
This paper proposes a way for drift compensation in electronic noses (e-nose) that often suffers from uncertain and unpredictable sensor drift. Traditional machine learning methods for odor recognition require consistent data distribution, which makes the model trained with previous data less genera...
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主要な著者: | , , , , |
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フォーマット: | Artigo |
言語: | Inglês |
出版事項: |
MDPI AG
2018-09-01
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シリーズ: | Sensors |
主題: | |
オンライン・アクセス: | http://www.mdpi.com/1424-8220/18/10/3209 |
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