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Bert Base Cased Trec Coarse

Developed by aychang
A text classification model based on the BERT base model, fine-tuned on the TREC dataset for coarse-grained question classification
Downloads 163
Release Time : 3/2/2022

Model Overview

This model is a text classification model fine-tuned on the TREC dataset using the bert-base-cased architecture, specifically designed to categorize questions into 6 coarse-grained classes.

Model Features

High Accuracy
Achieves 97.4% accuracy on the TREC test set
Coarse-grained Classification
Optimized specifically for 6 coarse-grained question categories
BERT-based
Utilizes BERT's powerful language understanding capabilities for question classification

Model Capabilities

Text Classification
Question Classification
Natural Language Understanding

Use Cases

Question Answering Systems
Question Routing
Classify user questions into different processing modules
97.4% accuracy
Information Retrieval
Query Intent Classification
Identify the intent category of user search queries
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