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Question Classification using Convolutional Neural Networks
Question classification using Convolutional Neural Networks -
DocVQA and ChartQA Datasets
The dataset used for testing the Vary-base model, containing DocVQA and ChartQA datasets. -
Training Language Models to Perform Tasks
A dataset for training language models to perform tasks such as question answering and text classification. -
Visual Genome
The Visual Genome dataset is a large-scale visual question answering dataset, containing 1.5 million images, each with 15-30 annotated entities, attributes, and relationships. -
SimpleQuestion dataset for Wikidata
The dataset used in this paper is a reinforcement learning dataset, specifically the SimpleQuestion dataset, which contains questions answerable using Wikidata as the knowledge... -
WikiTableQuestions
Semantic parsing maps a user-issued natural language (NL) utterance to a machine-executable meaning representation (MR), such as λ−calculus (Zettlemoyer and Collins, 2005), SQL... -
ToolWriter: Generating query-specific tools for tabular question answering
Tabular question answering (TQA) presents a challenging setting for neural systems by requiring joint reasoning of natural language with large amounts of semi-structured data. -
AlpacaFarm
The AlpacaFarm dataset is a large-scale dataset for preference optimization, which consists of a set of instructions and their corresponding responses. -
EntailmentBank
The dataset used in the paper to evaluate the REFLEX system, consisting of multiple-choice questions with entailment relationships.