构建首个大规模表达性音乐数据集,助力音乐生成与分析研究
The GigaMIDI Dataset with Features for Expressive Music Performance Detection
- 提出三种基于速度、起始时间与节拍位置的表达性检测算法
- 从180亿音符中筛选出超165万条表达性演奏轨道,占总量31%
- 为音乐信息检索和生成模型提供高质量符号化音乐数据
MIDI自1983年问世以来,极大推动了音乐制作的发展,以紧凑格式编码音乐指令,便于共享。该技术在音乐信息检索(MIR)领域广泛应用,支持音乐理解、计算音乐学及生成音乐研究。本文发布的GigaMIDI数据集包含超过140万份唯一MIDI文件,涵盖180亿个音符事件和超过530万条音轨,是目前研究用途下规模最大的符号化音乐资源。由于原始MIDI无法区分非表达性与表达性演奏,本文提出三项创新启发式方法:区别性音符速度比(DNVR)、区别性起始偏差比(DNODR)及音符起始中位数节拍级数(NOMML),用于识别表达性演奏特征。评估表明这些方法能有效区分两类音轨。基于此,我们构建了当前最庞大的表达性MIDI数据集,其中采用NOMML检测到的表达性演奏音轨覆盖所有通用MIDI乐器,共计1,655,649条,占原始数据集31%。
原文摘要 · Abstract (English)
The Musical Instrument Digital Interface (MIDI), introduced in 1983, revolutionized music production by allowing computers and instruments to communicate efficiently. MIDI files encode musical instructions compactly, facilitating convenient music sharing. They benefit Music Information Retrieval (MIR), aiding in research on music understanding, computational musicology, and generative music. The GigaMIDI dataset contains over 1.4 million unique MIDI files, encompassing 1.8 billion MIDI note events and over 5.3 million MIDI tracks. GigaMIDI is currently the largest collection of symbolic music in MIDI format available for research purposes under fair dealing. Distinguishing between non-expressive and expressive MIDI tracks is challenging, as MIDI files do not inherently make this distinction. To address this issue, we introduce a set of innovative heuristics for detecting expressive music performance. These include the Distinctive Note Velocity Ratio (DNVR) heuristic, which analyzes MIDI note velocity; the Distinctive Note Onset Deviation Ratio (DNODR) heuristic, which examines deviations in note onset times; and the Note Onset Median Metric Level (NOMML) heuristic, which evaluates onset positions relative to metric levels. Our evaluation demonstrates these heuristics effectively differentiate between non-expressive and expressive MIDI tracks. Furthermore, after evaluation, we create the most substantial expressive MIDI dataset, employing our heuristic, NOMML. This curated iteration of GigaMIDI encompasses expressively-performed instrument tracks detected by NOMML, containing all General MIDI instruments, constituting 31% of the GigaMIDI dataset, totalling 1,655,649 tracks.
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