The Falsificationist View of Machine Learning

INFORMACIOS TARSADALOM(2023)

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Abstract
Machine learning pushes the frontiers of algorithmic achievements, though the decisions amid uncertainty. This paper interprets machine learning within Karl ism and argue that the new interpretation can improve robustness. Though the price is to accept unambiguous decisions, the restriction of the hypothesis space still adds value. The context for our work is established by comparison with similar techniques and highlighting its limitations.
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Key words
machine learning,epistemology,artificial intelligence,falsificationism,Popper,robustness
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