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Marathi Sentence Bert Nli

Developed by l3cube-pune
Marathi sentence BERT model trained on NLI dataset for sentence similarity calculation and feature extraction
Downloads 526
Release Time : 11/11/2022

Model Overview

MahaSBERT is a sentence transformer model trained on the NLI dataset based on the l3cube-pune/marathi-bert-v2 model, which maps sentences to a 768-dimensional dense vector space, suitable for tasks such as sentence similarity calculation, clustering, and semantic search.

Model Features

Multilingual support
Supports Marathi text processing
Sentence embeddings
Converts sentences into 768-dimensional dense vectors
Similarity calculation
Accurately calculates semantic similarity between sentences

Model Capabilities

Sentence feature extraction
Semantic similarity calculation
Text clustering
Semantic search

Use Cases

Text similarity
Semantic search
Used to build Marathi semantic search engines
Improves semantic relevance of search results
Q&A systems
Used to match questions with similar answers
Improves accuracy of Q&A systems
Text clustering
Document classification
Automatically classifies Marathi documents
Improves classification efficiency and accuracy
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