Published August 13, 2018
| Version v1
Conference paper
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Enhancing ENIGMA Given Clause Guidance
Description
ENIGMA is an efficient implementation of learning-based guidance for given clause selection in saturation-based automated theorem provers. In this work, we describe several additions to this method. This includes better clause features, adding conjecture features as the proof state characterization, better data pre-processing, and repeated model learning. The enhanced ENIGMA is evaluated on the MPTP2078 dataset, showing significant improvements.
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enhanced-enigma-CICM18.pdf
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