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Mobilebert Uncased Mnli

Developed by typeform
This model is a fine-tuned version of the uncased MobileBERT model on the Multi-Genre Natural Language Inference (MNLI) task, suitable for zero-shot classification tasks.
Downloads 285
Release Time : 3/2/2022

Model Overview

A lightweight variant of BERT, optimized for resource-constrained devices, performing well on multi-genre natural language inference tasks.

Model Features

Lightweight Design
A BERT variant optimized for resource-constrained devices, maintaining high performance while reducing computational resource requirements
Zero-shot Classification Capability
Capable of performing classification tasks without task-specific training
MNLI Fine-tuning
Specifically fine-tuned on the Multi-Genre Natural Language Inference dataset

Model Capabilities

Zero-shot classification
Natural language inference
Text classification

Use Cases

Text Analysis
Sentiment Analysis
Classify text sentiment without training
Topic Classification
Automatically classify text content
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