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Llama 3 8B Instruct Finance RAG

Developed by curiousily
A financial domain RAG model fine-tuned based on Llama 3 8B Instruct, specifically optimized for financial Q&A scenarios
Downloads 1,850
Release Time : 6/30/2024

Model Overview

This model is a fine-tuned version of Llama 3 8B Instruct, specifically optimized for retrieval augmented generation (RAG) tasks in the financial domain. It can accurately answer financial-related questions based on the given context

Model Features

Optimized for the Financial Domain
Specifically fine-tuned for financial Q&A scenarios, improving the understanding of financial terms and the accuracy of answers
Retrieval Augmented Generation
Optimized for RAG use cases, capable of effectively utilizing the given context information to generate accurate answers
LoRA Fine-tuning
Efficient fine-tuning using LoRA adapters, enhancing the performance of specific tasks while maintaining the capabilities of the base model

Model Capabilities

Financial Question Answering
Context-based Text Generation
Financial Term Understanding
Financial Data Analysis

Use Cases

Financial Analysis
Financial Report Interpretation
Analyze the company's financial report data and answer related questions
Accurately extract financial data such as net income, asset impairment and other information
Financial Regulation Inquiry
Answer questions about financial regulations and approval processes
Provide accurate regulation names and process descriptions
Enterprise Information Inquiry
Executive Background Inquiry
Extract the educational background and professional experience of executives from the given information
Accurately identify and summarize educational background information
Company Operation Information
Answer questions about the company's operation strategies and agreements
Accurately describe the terms and duration of operation agreements
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