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Sentencetransformer Distilbert Base Cased

Developed by aditeyabaral
This is a sentence transformer model based on DistilBERT, which maps text to a 768-dimensional vector space, suitable for semantic search and clustering tasks.
Downloads 47
Release Time : 3/2/2022

Model Overview

The model is built using the sentence-transformers framework and can convert sentences and paragraphs into high-dimensional vector representations, facilitating semantic similarity calculations and information retrieval.

Model Features

Efficient Vector Representation
Converts text into 768-dimensional dense vectors while preserving semantic information.
Lightweight Architecture
Based on DistilBERT, reducing model size while maintaining performance.
Semantic Similarity Calculation
Supports semantic similarity comparison at the sentence and paragraph levels.

Model Capabilities

Text Vectorization
Semantic Similarity Calculation
Information Retrieval
Text Clustering

Use Cases

Information Retrieval
Semantic Search
Build a search engine based on semantics rather than keywords.
Improves the relevance of search results.
Text Analysis
Document Clustering
Automatically group similar documents.
Achieves unsupervised document classification.
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