cs.AI updates on arXiv.org 10月01日 14:02
Panama:基于LSTM与WaveNet的吉他放大器模型训练框架
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本文提出了一种名为Panama的主动学习框架,通过结合LSTM模型和类似WaveNet的架构,实现端到端训练吉他放大器参数模型。采用基于集成学习的主动学习策略,通过记录样本并优化梯度,以最小化所需数据点数量,提高模型性能。

arXiv:2509.26564v1 Announce Type: cross Abstract: We introduce Panama, an active learning framework to train parametric guitar amp models end-to-end using a combination of an LSTM model and a WaveNet-like architecture. With \model, one can create a virtual amp by recording samples that are determined through an ensemble-based active learning strategy to minimize the amount of datapoints needed (i.e., amp knob settings). Our strategy uses gradient-based optimization to maximize the disagreement among ensemble models, in order to identify the most informative datapoints. MUSHRA listening tests reveal that, with 75 datapoints, our models are able to match the perceptual quality of NAM, the leading open-source non-parametric amp modeler.

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主动学习 LSTM WaveNet 吉他放大器模型 参数模型
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