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T5 Base Finetuned Span Sentiment Extraction

Developed by mrm8488
This model is a fine-tuned T5-base model on Twitter sentiment extraction dataset, specifically designed for sentiment text segment extraction tasks.
Downloads 11.04k
Release Time : 3/2/2022

Model Overview

The model can accurately identify key segments reflecting specific sentiments (positive/negative/neutral) from text, suitable for scenarios like social media sentiment analysis.

Model Features

Precise Sentiment Segment Localization
Accurately identifies keywords or phrases that best support sentiment judgment in text.
Multi-Sentiment Type Support
Can handle text analysis for positive, negative, and neutral sentiment types.
End-to-End Solution
Directly outputs sentiment segments from raw text input without complex preprocessing.

Model Capabilities

Sentiment Analysis
Text Segment Extraction
Social Media Content Understanding

Use Cases

Social Media Analysis
Brand Public Opinion Monitoring
Identify core content expressing sentiment in user comments.
Example output: 'I love you' (supporting segment for positive sentiment)
Customer Feedback Analysis
Extract key expressions of negative sentiment from complaint texts.
Example output: 'Ugh, this is so frustrating' (supporting segment for negative sentiment)
Market Research
Product Review Analysis
Extract core phrases expressing sentiment from user reviews.
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