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Albert Fa Base V2 Sentiment Deepsentipers Multi

Developed by m3hrdadfi
Lightweight BERT model designed for self-supervised learning of Persian language representations
Downloads 24
Release Time : 3/2/2022

Model Overview

ALBERT-Persian is the first ALBERT model implemented for Persian, trained based on Google's ALBERT BASE 2.0 version, suitable for Persian text understanding and sentiment analysis tasks.

Model Features

Lightweight Design
Uses ALBERT architecture with fewer parameters than standard BERT models, offering higher computational efficiency
Persian Optimization
Specifically trained for Persian, covering various genres including science, fiction, and news
Large-scale Training Data
Training data includes 3.9 million documents, 73 million sentences, and 1.3 billion words

Model Capabilities

Persian text understanding
Sentiment analysis
Text classification

Use Cases

Sentiment Analysis
E-commerce Review Sentiment Analysis
Analyze sentiment tendencies in user reviews on the Digikala platform
Restaurant Review Sentiment Analysis
Analyze sentiment tendencies in user reviews on the SnappFood platform
Digital Product Review Analysis
Perform sentiment classification on digital product reviews in the DeepSentiPers dataset
Multi-class F1 score 66.12, Binary F1 score 91.09
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