arXiv:2409.03715cs.SDcs.AI2024-09综述被引 15

系统梳理AI音乐生成最新进展,涵盖技术、应用与挑战。

Applications and Advances of Artificial Intelligence in Music Generation:A Review

  • 按符号生成、音频生成、混合模型分类梳理技术路线
  • 总结多模态数据集与情感表达评估等新兴研究方向
  • 适合想快速掌握该领域全貌的研究者与从业者

近年来,人工智能在音乐生成领域取得显著进展,推动了音乐创作与应用的创新。本文系统回顾了AI音乐生成的最新研究进展,涵盖关键技术、模型、数据集、评估方法及其在各领域的实际应用。主要贡献包括:(1)构建全面的分类框架,系统对比符号生成、音频生成及混合模型等技术路径,帮助读者理解领域全貌;(2)广泛综述现有文献,涵盖多模态数据集与情感表达评估等新兴主题,为相关研究提供参考;(3)深入分析AI音乐生成在实时交互与跨学科应用中的实际影响,提出新视角与洞见;(4)总结现有音乐质量评估方法的局限性,提出未来研究方向,旨在推动评估标准的规范化与广泛应用。本文为研究人员与实践者提供综合性参考,并展望了该领域的未来发展路径。

原文摘要 · Abstract (English)

In recent years, artificial intelligence (AI) has made significant progress in the field of music generation, driving innovation in music creation and applications. This paper provides a systematic review of the latest research advancements in AI music generation, covering key technologies, models, datasets, evaluation methods, and their practical applications across various fields. The main contributions of this review include: (1) presenting a comprehensive summary framework that systematically categorizes and compares different technological approaches, including symbolic generation, audio generation, and hybrid models, helping readers better understand the full spectrum of technologies in the field; (2) offering an extensive survey of current literature, covering emerging topics such as multimodal datasets and emotion expression evaluation, providing a broad reference for related research; (3) conducting a detailed analysis of the practical impact of AI music generation in various application domains, particularly in real-time interaction and interdisciplinary applications, offering new perspectives and insights; (4) summarizing the existing challenges and limitations of music quality evaluation methods and proposing potential future research directions, aiming to promote the standardization and broader adoption of evaluation techniques. Through these innovative summaries and analyses, this paper serves as a comprehensive reference tool for researchers and practitioners in AI music generation, while also outlining future directions for the field.

AI音乐生成模型综述多模态

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