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BTPK-based interpretable method for NER tasks based on Talmudic Public Announcement Logic

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arxiv 2201.09523 v2 pith:UUUXIE2W submitted 2022-01-24 cs.CL cs.AI

BTPK-based interpretable method for NER tasks based on Talmudic Public Announcement Logic

classification cs.CL cs.AI
keywords logicrecognitiontasksannouncementbtpkentitymodelpublic
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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As one of the basic tasks in natural language processing (NLP), named entity recognition (NER) is an important basic tool for downstream tasks of NLP, such as information extraction, syntactic analysis, machine translation and so on. The internal operation logic of current name entity recognition model is black-box to the user, so the user has no basis to determine which name entity makes more sense. Therefore, a user-friendly explainable recognition process would be very useful for many people. In this paper, we propose a novel interpretable method, BTPK (Binary Talmudic Public Announcement Logic model), to help users understand the internal recognition logic of the name entity recognition tasks based on Talmudic Public Announcement Logic. BTPK model can also capture the semantic information in the input sentences, that is, the context dependency of the sentence. We observed the public announcement of BTPK presents the inner decision logic of BRNNs, and the explanations obtained from a BTPK model show us how BRNNs essentially handle NER tasks.

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