MusicAgent: An AI Agent for Music Understanding and Generation with Large Language Models
AI-empowered music processing is a diverse field that encompasses dozens of tasks, ranging from generation tasks (e.g., timbre synthesis) to comprehension tasks (e.g., music classification). For developers and amateurs, it is very difficult to grasp all of these task to satisfy their requirements in...
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Main Authors | , , , , , , , |
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Format | Journal Article |
Language | English |
Published |
18.10.2023
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Subjects | |
Online Access | Get full text |
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Summary: | AI-empowered music processing is a diverse field that encompasses dozens of
tasks, ranging from generation tasks (e.g., timbre synthesis) to comprehension
tasks (e.g., music classification). For developers and amateurs, it is very
difficult to grasp all of these task to satisfy their requirements in music
processing, especially considering the huge differences in the representations
of music data and the model applicability across platforms among various tasks.
Consequently, it is necessary to build a system to organize and integrate these
tasks, and thus help practitioners to automatically analyze their demand and
call suitable tools as solutions to fulfill their requirements. Inspired by the
recent success of large language models (LLMs) in task automation, we develop a
system, named MusicAgent, which integrates numerous music-related tools and an
autonomous workflow to address user requirements. More specifically, we build
1) toolset that collects tools from diverse sources, including Hugging Face,
GitHub, and Web API, etc. 2) an autonomous workflow empowered by LLMs (e.g.,
ChatGPT) to organize these tools and automatically decompose user requests into
multiple sub-tasks and invoke corresponding music tools. The primary goal of
this system is to free users from the intricacies of AI-music tools, enabling
them to concentrate on the creative aspect. By granting users the freedom to
effortlessly combine tools, the system offers a seamless and enriching music
experience. |
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DOI: | 10.48550/arxiv.2310.11954 |