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Machine Reading Comprehension

Machine Reading Comprehension is one of the key problems in Natural Language Understanding, where the task is to read and comprehend a given text passage, and then answer questions based on it.

Source: Making Neural Machine Reading Comprehension Faster

Papers

Showing 211220 of 555 papers

TitleStatusHype
Machine Reading Comprehension: Generative or Extractive Reader?0
CodeQA: A Question Answering Dataset for Source Code ComprehensionCode1
Numerical reasoning in machine reading comprehension tasks: are we there yet?0
Context-NER : Contextual Phrase Generation at ScaleCode1
An MRC Framework for Semantic Role LabelingCode1
Abstract, Rationale, Stance: A Joint Model for Scientific Claim VerificationCode0
RoR: Read-over-Read for Long Document Machine Reading ComprehensionCode1
KELM: Knowledge Enhanced Pre-Trained Language Representations with Message Passing on Hierarchical Relational GraphsCode1
Self- and Pseudo-self-supervised Prediction of Speaker and Key-utterance for Multi-party Dialogue Reading ComprehensionCode1
Relying on Discourse Analysis to Answer Complex Questions by Neural Machine Reading Comprehension0
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