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NBB

Developed by good-ai-club
This is a model based on sentence-transformers that maps sentences and paragraphs into a 768-dimensional dense vector space, suitable for tasks such as sentence similarity calculation and semantic search.
Downloads 15
Release Time : 6/16/2022

Model Overview

This model is specifically designed for sentence similarity tasks, capable of converting text into high-dimensional vector representations for semantic comparison and clustering analysis.

Model Features

High-dimensional Vector Representation
Maps sentences and paragraphs into a 768-dimensional dense vector space, capturing rich semantic information.
Semantic Similarity Calculation
Accurately calculates semantic similarity between sentences.
Easy Integration
Can be easily integrated into existing systems via the sentence-transformers library.

Model Capabilities

Sentence Vectorization
Semantic Similarity Calculation
Text Clustering
Semantic Search

Use Cases

Information Retrieval
Semantic Search System
Build a search system based on semantics rather than keywords.
Improves the relevance of search results.
Text Analysis
Document Clustering
Automatically group similar documents.
Improves document organization efficiency.
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