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◆ IEEE Transactions on Audio Speech and Language Processing2025-12-03· Singing

Recognizing Ornaments in Vocal Indian Art Music With Active Annotation

Sumit Kumar, Parampreet Singh, Vipul Arora

原始摘要(英文原文)· Original abstract
Ornamentations, embellishments, or microtonal inflections are essential to melodic expression across many musical traditions, adding depth, nuance, and emotional impact to performances. Recognizing ornamentations in singing voices is key to MIR, with potential applications in music pedagogy, singer identification, genre classification, and controlled singing voice generation. However, the lack of annotated datasets and specialized modeling approaches remains a major obstacle for progress in this research area. In this work, we introduce Raga Ornamentation Detection (ROD), a novel dataset comprising Indian classical music recordings curated by expert musicians. The dataset is annotated using a custom Human-in-the-Loop tool for six vocal ornaments labelled as events with start and end timestamps. Using this dataset, we develop an ornamentation detection model based on deep time-series analysis, preserving ornament boundaries during the chunking of long audio recordings. We conduct experiments using different train-test configurations within the ROD dataset and also evaluate our approach on a separate, manually annotated dataset of live concert recordings. Experimental results support the superior performance of our proposed approach over the baseline CRNN model.
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