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Setfit Finetuned Financial Text Classification

Developed by nickmuchi
This is a model based on sentence-transformers, specifically fine-tuned for financial text classification tasks, capable of mapping sentences and paragraphs into a 768-dimensional vector space.
Downloads 20
Release Time : 10/23/2022

Model Overview

This model is primarily used for text classification tasks in the financial domain, capable of generating high-quality sentence embeddings suitable for downstream tasks such as clustering and semantic search.

Model Features

Optimized for Financial Domain
Specially fine-tuned for financial texts, delivering superior performance in financial text classification tasks.
High-Quality Sentence Embeddings
Capable of generating high-quality 768-dimensional sentence embedding vectors.
Versatile Applications
The generated embeddings can be used for various downstream tasks such as clustering and semantic search.

Model Capabilities

Financial Text Classification
Sentence Similarity Calculation
Text Feature Extraction
Semantic Search

Use Cases

Financial Analysis
Financial News Classification
Automatic classification of financial news into categories such as market analysis and corporate earnings reports.
Financial Document Similarity Calculation
Calculate semantic similarity between financial documents for retrieval or deduplication purposes.
Information Retrieval
Financial Knowledge Base Search
Build a semantic search engine for the financial domain to improve search result relevance.
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