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Sentence Roberta Large Kor Sts

Developed by ys7yoo
This is a sentence embedding model based on sentence-transformers that can convert text into 1024-dimensional dense vectors, suitable for tasks such as semantic search and text similarity calculation.
Downloads 175
Release Time : 3/31/2023

Model Overview

This model is specifically designed to generate vector representations of sentences and paragraphs, supporting application scenarios such as text similarity calculation, clustering, and information retrieval.

Model Features

High-dimensional Vector Representation
Generate 1024-dimensional dense vectors that can capture the deep semantic features of sentences
Semantic Similarity Calculation
Optimized for semantic similarity calculation at the sentence and paragraph levels
Easy Integration
Can be easily integrated into existing systems through the sentence-transformers library

Model Capabilities

Text Vectorization
Semantic Similarity Calculation
Text Clustering
Information Retrieval

Use Cases

Information Retrieval
Document Similarity Search
Find semantically similar documents in the document library
Improve retrieval accuracy and recall rate
Text Analysis
Text Clustering
Automatically group semantically similar texts
Implement unsupervised text classification
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