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Personalizable Long-Context Symbolic Music Infilling with MIDI-RWKV

Personalizable Long-Context Symbolic Music Infilling with MIDI-RWKV

来源:Arxiv_logoArxiv
英文摘要

Existing work in automatic music generation has primarily focused on end-to-end systems that produce complete compositions or continuations. However, because musical composition is typically an iterative process, such systems make it difficult to engage in the back-and-forth between human and machine that is essential to computer-assisted creativity. In this study, we address the task of personalizable, multi-track, long-context, and controllable symbolic music infilling to enhance the process of computer-assisted composition. We present MIDI-RWKV, a novel model based on the RWKV-7 linear architecture, to enable efficient and coherent musical cocreation on edge devices. We also demonstrate that MIDI-RWKV admits an effective method of finetuning its initial state for personalization in the very-low-sample regime. We evaluate MIDI-RWKV and its state tuning on several quantitative and qualitative metrics, and release model weights and code at https://github.com/christianazinn/MIDI-RWKV.

Christian Zhou-Zheng、Philippe Pasquier

计算技术、计算机技术

Christian Zhou-Zheng,Philippe Pasquier.Personalizable Long-Context Symbolic Music Infilling with MIDI-RWKV[EB/OL].(2025-06-15)[2025-07-16].https://arxiv.org/abs/2506.13001.点此复制

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