Explanation-Driven Self-Adaptation Using Model-Agnostic Interpretable Machine Learning

Self-adaptive systems increasingly rely on black-box predictive models (e.g., Neural Networks) to make decisions and steer adaptations. The lack of transparency of these models makes it hard to explain adaptation decisions and their possible effects on the surrounding environment. Furthermore, adapt...

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Bibliographic Details
Published in:ICSE Workshop on Software Engineering for Adaptive and Self-Managing Systems (Online) pp. 189 - 199
Main Authors: Negri, Francesco Renato, Nicolosi, Niccolo, Camilli, Matteo, Mirandola, Raffaela
Format: Conference Proceeding
Language:English
Published: ACM 15.04.2024
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ISSN:2157-2321
Online Access:Get full text
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