Codeformer Java
This is a model based on sentence-transformers that can map sentences and paragraphs to a 768-dimensional dense vector space, suitable for tasks such as sentence similarity calculation and semantic search.
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Release Time : 3/2/2022
Model Overview
This model is specifically designed to handle sentence similarity tasks and can convert input sentences into high-dimensional vector representations for subsequent similarity calculation, clustering, or semantic search applications.
Model Features
High-dimensional vector representation
Map sentences to a 768-dimensional dense vector space to capture semantic information
Sentence similarity calculation
Optimized for calculating semantic similarity between sentences
Easy to integrate
Can be integrated into existing systems through a simple API
Model Capabilities
Sentence embedding generation
Semantic similarity calculation
Text feature extraction
Semantic search
Use Cases
Information retrieval
Semantic search
Return relevant documents based on the semantics of the query sentence rather than keyword matching
Improve the accuracy and relevance of search results
Text analysis
Document clustering
Automatically group documents based on semantic similarity
Discover the thematic structure in the document collection
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