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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 326350 of 555 papers

TitleStatusHype
Unsupervised Explanation Generation for Machine Reading Comprehension0
Unsupervised Open-Domain Question Answering0
Unsupervised Open-Domain Question Answering with Higher Answerability0
UQuAD1.0: Development of an Urdu Question Answering Training Data for Machine Reading Comprehension0
Using Adversarial Attacks to Reveal the Statistical Bias in Machine Reading Comprehension Models0
Using calibrator to improve robustness in Machine Reading Comprehension0
VAULT: VAriable Unified Long Text Representation for Machine Reading Comprehension0
View Dialogue in 2D: A Two-stream Model in Time-speaker Perspective for Dialogue Summarization and beyond0
ViQA-COVID: COVID-19 Machine Reading Comprehension Dataset for Vietnamese0
Visualizing attention zones in machine reading comprehension models0
Visual Question Answering as Reading Comprehension0
VLSP 2021 - ViMRC Challenge: Vietnamese Machine Reading Comprehension0
Weakly Supervised Neuro-Symbolic Module Networks for Numerical Reasoning0
未登錄詞之向量表示法模型於中文機器閱讀理解之應用 (An OOV Word Embedding Framework for Chinese Machine Reading Comprehension)0
What does BERT Learn from Arabic Machine Reading Comprehension Datasets?0
What If Sentence-hood is Hard to Define: A Case Study in Chinese Reading Comprehension0
What is Missing in Existing Multi-hop Datasets? Toward Deeper Multi-hop Reasoning Task0
What Makes Machine Reading Comprehension Questions Difficult? Investigating Variation in Passage Sources and Question Types0
Why can't memory networks read effectively?0
WikiPossessions: Possession Timeline Generation as an Evaluation Benchmark for Machine Reading Comprehension of Long Texts0
XCMRC: Evaluating Cross-lingual Machine Reading Comprehension0
XLMRQA: Open-Domain Question Answering on Vietnamese Wikipedia-based Textual Knowledge Source0
Yimmon at SemEval-2019 Task 9: Suggestion Mining with Hybrid Augmented Approaches0
YNU\_AI1799 at SemEval-2018 Task 11: Machine Comprehension using Commonsense Knowledge of Different model ensemble0
Zero-Shot Estimation of Base Models' Weights in Ensemble of Machine Reading Comprehension Systems for Robust Generalization0
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