Finetuning Bm25 Small
This is a sentence similarity calculation model based on sentence-transformers, capable of mapping text to a 768-dimensional vector space
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Release Time : 12/3/2023
Model Overview
This model is specifically designed to convert sentences and paragraphs into dense vector representations, suitable for tasks such as semantic search, clustering, and sentence similarity calculation
Model Features
High-dimensional Vector Representation
Converts text into 768-dimensional dense vectors, preserving rich semantic information
Semantic Similarity Calculation
Accurately calculates semantic similarity between different sentences
Easy Integration
Can be easily integrated into existing systems through the sentence-transformers library
Model Capabilities
Text 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 documents with similar content
Achieves unsupervised document classification
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