An IDE Support for Validating Machine Learning Applications in Bioengineering Text Corpora

Published: 01 Jan 2022, Last Modified: 22 Jul 2024BIBM 2022EveryoneRevisionsBibTeXCC BY-SA 4.0
Abstract: Modeling in machine learning (ML) is critical for software systems in practice. ML applications are required to validate their models and implementations but quality validation is a challenging and time-consuming process for developers. To address this limitation, we present a novel validation technique for ML applications to help developers or researchers (e.g., bioengineering domain) inspect (1) software code (ML API usages) and (2) ML model (extracted features).
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