Learnable: Theory vs Applications
Two different views on machine learning problem: Applied learning (machine learning with business applications) and Agnostic PAC learning are formalized and compared here. I show that, under some conditions, the theory of PAC Learnable provides a way to solve the Applied learning problem. However, t...
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Zusammenfassung: | Two different views on machine learning problem: Applied learning (machine
learning with business applications) and Agnostic PAC learning are formalized
and compared here. I show that, under some conditions, the theory of PAC
Learnable provides a way to solve the Applied learning problem. However, the
theory requires to have the training sets so large, that it would make the
learning practically useless. I suggest shedding some theoretical
misconceptions about learning to make the theory more aligned with the needs
and experience of practitioners. |
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DOI: | 10.48550/arxiv.1807.10681 |