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Pegasus Aeslc

Developed by google
PEGASUS is a pretrained model based on gap sentence extraction, specifically designed for abstractive text summarization tasks.
Downloads 21
Release Time : 3/2/2022

Model Overview

PEGASUS is a Transformer-based pretrained model trained through gap sentence extraction, excelling in generating high-quality text summaries.

Model Features

Mixed and Randomized Training
Trained on both C4 and HugeNews datasets, employing random sampling of gap sentence ratios and importance scores with added noise to enhance model performance.
Multi-dataset Support
Performs exceptionally well on multiple summarization datasets, including xsum, cnn_dailymail, and newsroom.
Improved Tokenizer
Updated sentencepiece tokenizer to support newline encoding, improving the handling of text in specific formats.

Model Capabilities

Text Summary Generation
Multi-dataset Adaptation
Abstractive Summarization

Use Cases

News Summarization
News Article Summarization
Generates concise summaries for lengthy news articles
Achieves a ROUGE-1 score of 44.16 on the cnn_dailymail dataset
Academic Paper Summarization
Research Paper Summarization
Generates structured summaries for academic papers
Achieves a ROUGE-1 score of 44.21 on the arxiv dataset
Technical Document Summarization
Patent Summarization
Generates technical summaries for patent documents
Achieves a ROUGE-1 score of 52.29 on the big_patent dataset
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