S

Sbert Large Mt Ru Retriever

Developed by Den4ikAI
This model maps sentences and paragraphs into a 1024-dimensional vector space, suitable for tasks such as sentence similarity calculation, clustering, and semantic search.
Downloads 139
Release Time : 8/8/2023

Model Overview

Based on the Sentence Transformer architecture, this model can convert input text into high-dimensional vector representations, facilitating semantic similarity calculations and information retrieval.

Model Features

High-dimensional vector representation
Maps sentences and paragraphs into a 1024-dimensional dense vector space to capture semantic information.
Multilingual support
Specially optimized for Russian text, suitable for Russian semantic processing tasks.
Easy integration
Can be easily integrated into existing systems via the sentence-transformers library.

Model Capabilities

Sentence similarity calculation
Text feature extraction
Semantic search
Text clustering

Use Cases

Information retrieval
Q&A systems
Used to match user queries with relevant document passages
Improves the accuracy and response speed of Q&A systems
Text analysis
Document clustering
Automatically groups semantically similar documents
Simplifies the analysis of large document collections
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