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SyncTrack: Rhythmic Stability and Synchronization in Multi-Track Music Generation

arXiv:2603.01101v1h-index: 6
Originality Incremental advance
AI Analysis

This addresses the issue of low-quality multi-track music generation for applications like mixing and remixing, but it appears incremental as it builds on existing models by focusing on rhythmic attributes.

The paper tackled the problem of rhythmic instability and poor synchronization in multi-track music generation by introducing SyncTrack, a model that improved rhythmic consistency, though specific numerical gains were not provided.

Multi-track music generation has garnered significant research interest due to its precise mixing and remixing capabilities. However, existing models often overlook essential attributes such as rhythmic stability and synchronization, leading to a focus on differences between tracks rather than their inherent properties. In this paper, we introduce SyncTrack, a synchronous multi-track waveform music generation model designed to capture the unique characteristics of multi-track music. SyncTrack features a novel architecture that includes track-shared modules to establish a common rhythm across all tracks and track-specific modules to accommodate diverse timbres and pitch ranges. Each track-shared module employs two cross-track attention mechanisms to synchronize rhythmic information, while each track-specific module utilizes learnable instrument priors to better represent timbre and other unique features. Additionally, we enhance the evaluation of multi-track music quality by introducing rhythmic consistency through three novel metrics: Inner-track Rhythmic Stability (IRS), Cross-track Beat Synchronization (CBS), and Cross-track Beat Dispersion (CBD). Experiments demonstrate that SyncTrack significantly improves the multi-track music quality by enhancing rhythmic consistency.

Foundations

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