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Roberta Base Squad2

Developed by ydshieh
This is a RoBERTa-based extractive question answering model, specifically trained on the SQuAD 2.0 dataset, suitable for English Q&A tasks.
Downloads 31
Release Time : 3/23/2022

Model Overview

This model is primarily used to extract answers from given texts to respond to user questions, supporting the handling of unanswerable cases.

Model Features

Unanswerable Detection Support
Capable of identifying cases where no answer exists in the context.
Efficient Training
Trained using 4 Tesla v100 GPUs, optimizing training efficiency.
Distilled Model Version
Offers a tinyroberta-squad2 distilled version with comparable prediction quality but faster speed.

Model Capabilities

Text Understanding
Answer Extraction
Unanswerable Detection

Use Cases

Q&A Systems
Document Q&A
Extract answers to specific questions from technical documents.
Accuracy 79.87%
Knowledge Base Retrieval
Search for answers to related questions in knowledge base content.
F1 Score 82.91%
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