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Testing and Trusting Machine Learning Systems
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Öz
Machine learning systems are now all over the place. These systems provide predictions in a black box mode masking their internal logic from the user. This absence of explanation creates practical and ethical issues. The explanation of a prediction reduces relying on black-box traditional ML classifiers. Trustable Artificial Intelligence is the current area of interest. Testing of such systems has also not been formalized. We highlight these two issues in this paper
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Publication details
- DOI
- 10.33552/ojrat.2021.01.000503
- OpenAlex
- W4286387205
- Document type
- article
- Language
- EN
- Source
- Online Journal of Robotics & Automation Technology
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