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Sentence Transformer Klue

Developed by hunkim
This is a sentence-transformers-based model that maps sentences and paragraphs into a 768-dimensional dense vector space, suitable for tasks such as clustering or semantic search.
Downloads 17
Release Time : 5/29/2022

Model Overview

This model is based on the sentence-transformers framework and is primarily used to convert text into high-dimensional vector representations, supporting tasks such as sentence similarity calculation, semantic search, and text clustering.

Model Features

High-Dimensional Vector Representation
Maps sentences and paragraphs into a 768-dimensional dense vector space, preserving semantic information.
Semantic Similarity Calculation
Accurately calculates semantic similarity between sentences.
Efficient Feature Extraction
Quickly extracts text features, suitable for large-scale text processing.

Model Capabilities

Sentence vectorization
Semantic similarity calculation
Text feature extraction
Text clustering
Semantic search

Use Cases

Information Retrieval
Semantic Search System
Build a search system based on semantics rather than keywords.
Improves the relevance and accuracy of search results.
Text Analysis
Document Clustering
Automatically classify and cluster large volumes of documents.
Discovers semantic relationships between documents.
Recommendation System
Content Recommendation
Recommendation system based on content similarity.
Improves the relevance and personalization of recommendations.
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