arXiv:2605.03541cs.SDcs.IR2026-05

打造音乐表演分析的高效流水线工具,统一多语言算法与数据格式

Cosmodoit: A Python Package for Adaptive, Efficient Pipelining of Feature Extraction from Performed Music

论文配图:Cosmodoit: A Python Package for Adaptive, Efficient Pipelining of Feature Extraction from Performed Music
图 1 · 摘自论文原文
  • 模块化流水线整合演奏对齐与音符/音频特征提取
  • 支持选择性处理与增量更新,提升大规模分析效率
  • 兼容多语言算法,适合音乐信息研究与开发人员

performed music 的计算分析是音乐信息研究的关键,因为演奏塑造了我们所听的大部分音乐。音乐演奏分析关注演奏者引入的声学变化及其如何反映音乐诠释与结构。尽管已有多种用于演奏-乐谱对齐及符号或音频特征提取的算法和工具,但它们分散在不同编程语言和数据格式中,难以高效组合。为此,我们提出 Cosmodoit,一个新型 Python 包,旨在简化从演奏音乐中提取特征的过程。Cosmodoit 将演奏-乐谱对齐与符号及音频特征提取集成在一个模块化、灵活的流水线中,支持选择性处理、依赖感知计算和增量更新。其可扩展设计减少了重复工作,降低了错误率,并支持大规模高效处理。通过兼容多种语言实现的算法并允许参数调优以确保特征提取一致性,Cosmodoit 为音乐演奏分析的研究与开发提供了通用且实用的工具。

原文摘要 · Abstract (English)

Computational analysis of performed music is a key component of music information research, as performance shapes much of the music we hear. Music performance analysis studies the acoustic variations introduced by performers and how these variations reflect musical interpretation and structure. Although many algorithms and tools exist for tasks such as performance-to-score alignment and symbolic or audio feature extraction, they are spread across different programming languages and data formats, making them difficult to combine efficiently. To address this problem, we present Cosmodoit, a novel Python package designed to streamline feature extraction from performed music. Cosmodoit integrates performance-to-score alignment with symbolic and audio feature extraction in a modular, flexible pipeline that supports selective processing, dependency-aware computation, and incremental updates. Its extensible design reduces duplicated work, minimizes errors, and enables efficient large-scale processing. By accommodating algorithms implemented in multiple languages and allowing parameter tuning for consistent feature extraction, Cosmodoit provides a versatile and practical tool for both research and development in music performance analysis.

音乐分析特征提取流水线Python工具

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