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Sentence Transformers Multilingual Snli V2 500k

Developed by Pyjay
This is a multilingual sentence embedding model based on sentence-transformers, capable of mapping sentences and paragraphs into a 768-dimensional vector space, suitable for tasks such as clustering and semantic search.
Downloads 21
Release Time : 3/2/2022

Model Overview

This model is a sentence transformer model specifically designed for generating dense vector representations of sentences and paragraphs, supporting multilingual processing, and applicable to scenarios such as sentence similarity calculation and semantic search.

Model Features

Multilingual support
The model supports multilingual processing and can handle sentences and paragraphs in different languages.
High-dimensional vector space
Maps sentences and paragraphs into a 768-dimensional dense vector space, suitable for complex semantic analysis tasks.
Sentence similarity calculation
Efficiently calculates semantic similarity between sentences, suitable for clustering and search tasks.

Model Capabilities

Sentence embedding generation
Semantic similarity calculation
Multilingual text processing
Feature extraction

Use Cases

Information retrieval
Semantic search
Uses sentence embeddings for semantic search to improve the relevance of search results.
Text analysis
Text clustering
Clusters similar sentences or paragraphs for topic modeling or content classification.
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