arXiv:2509.11183cs.SDeess.AS2025-09中稿 · Large Language Mod…被引 1

WeaveMuse让多模态音乐创作与理解更智能可控

WeaveMuse: An Open Agentic System for Multimodal Music Understanding and Generation

  • 用多个专业代理协同处理文本、乐谱、音频等多模态任务
  • 支持跨格式交互,实现分析-生成-渲染闭环,输出可验证
  • 开源可扩展,适配不同硬件,适合音乐研究与创作人群

我们提出WeaveMuse,一个用于音乐理解、符号作曲和音频合成的多智能体系统。每个专用代理解析用户请求,提取可执行要求(模态、格式、约束),并验证自身输出;管理代理负责工具选择与调度、用户交互协调及多轮状态维护。系统支持本地部署(通过量化与推理策略适应不同硬件)或通过HFApi调用开放模型,保障社区免费访问。除开箱即用外,系统通过约束模式、结构化解码、基于策略的推理及参数高效适配器或蒸馏版本,增强可控性与任务定制能力。核心设计目标是实现文本、符号记谱、可视化与音频间的跨模态交互,支持分析-生成-渲染循环,并解决跨格式约束问题。框架旨在通过支持可互换的开源模型、灵活内存管理与可复现部署路径,推动音乐信息检索(MIR)工具的普及与可及性。

原文摘要 · Abstract (English)

Agentic AI has been standardized in industry as a practical paradigm for coordinating specialized models and tools to solve complex multimodal tasks. In this work, we present WeaveMuse, a multi-agent system for music understanding, symbolic composition, and audio synthesis. Each specialist agent interprets user requests, derives machine-actionable requirements (modalities, formats, constraints), and validates its own outputs, while a manager agent selects and sequences tools, mediates user interaction, and maintains state across turns. The system is extendable and deployable either locally, using quantization and inference strategies to fit diverse hardware budgets, or via the HFApi to preserve free community access to open models. Beyond out-of-the-box use, the system emphasizes controllability and adaptation through constraint schemas, structured decoding, policy-based inference, and parameter-efficient adapters or distilled variants that tailor models to MIR tasks. A central design goal is to facilitate intermodal interaction across text, symbolic notation and visualization, and audio, enabling analysis-synthesis-render loops and addressing cross-format constraints. The framework aims to democratize, implement, and make accessible MIR tools by supporting interchangeable open-source models of various sizes, flexible memory management, and reproducible deployment paths.

多模态音乐生成智能体

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