RoleLLM
R
Rolellm
Overview :
RoleLLM is a role-playing framework designed to build and evaluate the role-playing capabilities of large language models. It consists of four stages: role summary construction, context-based instruction generation, role prompting using GPT, and role-based instruction adjustment. Through Context-Instruct and RoleGPT, we created RoleBench, a systematic and fine-grained role-level benchmark dataset containing 168,093 samples. Moreover, RoCIT achieved significant improvements in role-playing ability on RoleBench, producing RoleLLaMA (English) and RoleGLM (Chinese), even comparable to results obtained with GPT-4-based RoleGPT.
Target Users :
A framework for building and evaluating the role-playing capabilities of large language models.
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Use Cases
Use RoleLLM to build a language model capable of imitating Shakespearean style.
Use RoleLLM to evaluate the performance of a large language model on role-playing tasks.
Use RoleLLM to create a role-playing game.
Features
Role Summary Construction
Context-Based Instruction Generation
Role Prompting Using GPT
Role-Based Instruction Adjustment
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