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Notochord: a Flexible Probabilistic Model for Real-Time MIDI Performance

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arxiv 2403.12000 v1 pith:BHTFOUSQ submitted 2024-03-18 cs.SD cs.AIeess.AS

classification cs.SDcs.AIeess.AS
keywords modelprobabilisticmidinotochorddeepinteractivemusicalperformance
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Deep learning-based probabilistic models of musical data are producing increasingly realistic results and promise to enter creative workflows of many kinds. Yet they have been little-studied in a performance setting, where the results of user actions typically ought to feel instantaneous. To enable such study, we designed Notochord, a deep probabilistic model for sequences of structured events, and trained an instance of it on the Lakh MIDI dataset. Our probabilistic formulation allows interpretable interventions at a sub-event level, which enables one model to act as a backbone for diverse interactive musical functions including steerable generation, harmonization, machine improvisation, and likelihood-based interfaces. Notochord can generate polyphonic and multi-track MIDI, and respond to inputs with latency below ten milliseconds. Training code, model checkpoints and interactive examples are provided as open source software.

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  1. Calliphony: A Calligraphy-Driven Interface for Real-Time Generative Music Performance

    cs.SD 2026-08 conditional novelty 5.0 of 10

    A brush-mounted gyroscope drives a real-time generative music model, mapping writing speed to note density and harmony-layer activation.

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