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Bert Finetuned Sem Eval English

Developed by joniponi
A deep learning-based text classification model that demonstrates high F1 score and ROC AUC values on the validation set.
Downloads 16
Release Time : 3/2/2022

Model Overview

This model is designed for text classification tasks, capable of effectively categorizing input text, suitable for various natural language processing scenarios.

Model Features

Efficient Training
The model shows significant performance improvement after just the second training round, with training loss decreasing from 0.115 to 0.070.
Excellent Classification Performance
Achieves an F1 score of 0.911 and ROC AUC of 0.943 on the validation set, demonstrating strong classification capability.
Fast Convergence
After only two training rounds, validation loss decreases from 0.099 to 0.080, showing excellent convergence characteristics.

Model Capabilities

Text Classification
Feature Extraction
Probability Prediction

Use Cases

Sentiment Analysis
Product Review Classification
Automatically classify user reviews as positive, neutral, or negative
With an F1 score of 0.911, it can provide accurate classification results
Content Moderation
Inappropriate Content Identification
Automatically identify and classify inappropriate or non-compliant content
High ROC AUC value of 0.943 indicates excellent performance in distinguishing different content categories
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