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DeepDrum: An Adaptive Conditional Neural Network

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arxiv 1809.06127 v2 pith:PDJWXTZC submitted 2018-09-17 cs.SD cs.IReess.ASstat.ML

classification cs.SDcs.IReess.ASstat.ML
keywords deepdrummusicalrhythmsadaptiveconditionalconstraintsdrumgiven
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Considering music as a sequence of events with multiple complex dependencies, the Long Short-Term Memory (LSTM) architecture has proven very efficient in learning and reproducing musical styles. However, the generation of rhythms requires additional information regarding musical structure and accompanying instruments. In this paper we present DeepDrum, an adaptive Neural Network capable of generating drum rhythms under constraints imposed by Feed-Forward (Conditional) Layers which contain musical parameters along with given instrumentation information (e.g. bass and guitar notes). Results on generated drum sequences are presented indicating that DeepDrum is effective in producing rhythms that resemble the learned style, while at the same time conforming to given constraints that were unknown during the training process.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Calliope: An Online Generative Music System for Symbolic Multi-Track Composition

    cs.HC 2025-04 conditional novelty 4.0 of 10

    Calliope is a browser-based system that wraps the MMM transformer model in an interface for multi-track MIDI generation, editing, batch sampling, and DAW streaming.

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