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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 151175 of 555 papers

TitleStatusHype
Cross-Lingual Question Answering over Knowledge Base as Reading ComprehensionCode0
Natural Response Generation for Chinese Reading ComprehensionCode0
The Impacts of Unanswerable Questions on the Robustness of Machine Reading Comprehension Models0
KILDST: Effective Knowledge-Integrated Learning for Dialogue State Tracking using Gazetteer and Speaker Information0
Integrating Semantic Information into Sketchy Reading Module of Retro-Reader for Vietnamese Machine Reading Comprehension0
Bridging The Gap: Entailment Fused-T5 for Open-retrieval Conversational Machine Reading Comprehension0
Medical Knowledge Graph QA for Drug-Drug Interaction Prediction based on Multi-hop Machine Reading Comprehension0
Rethinking Label Smoothing on Multi-hop Question AnsweringCode0
From Cloze to Comprehension: Retrofitting Pre-trained Masked Language Model to Pre-trained Machine ReaderCode0
A Comprehensive Survey on Multi-hop Machine Reading Comprehension Approaches0
A Comprehensive Survey on Multi-hop Machine Reading Comprehension Datasets and Metrics0
Feature-augmented Machine Reading Comprehension with Auxiliary Tasks0
IDK-MRC: Unanswerable Questions for Indonesian Machine Reading ComprehensionCode0
Rethinking Annotation: Can Language Learners Contribute?0
CSS: Combining Self-training and Self-supervised Learning for Few-shot Dialogue State Tracking0
U3E: Unsupervised and Erasure-based Evidence Extraction for Machine Reading Comprehension0
Modular Approach to Machine Reading Comprehension: Mixture of Task-Aware Experts0
基于话头话体共享结构信息的机器阅读理解研究(Rearch on Machine reading comprehension based on shared structure information between Naming and Telling)0
基于相似度进行句子选择的机器阅读理解数据增强(Machine reading comprehension data Augmentation for sentence selection based on similarity)0
Document-level Event Factuality Identification via Machine Reading Comprehension Frameworks with Transfer Learning0
DoSEA: A Domain-specific Entity-aware Framework for Cross-Domain Named Entity RecogitionCode0
View Dialogue in 2D: A Two-stream Model in Time-speaker Perspective for Dialogue Summarization and beyond0
DIFM:An effective deep interaction and fusion model for sentence matching0
Aspect-based Sentiment Analysis as Machine Reading Comprehension0
To What Extent Do Natural Language Understanding Datasets Correlate to Logical Reasoning? A Method for Diagnosing Logical Reasoning.0
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