Neural acoustic multipole splatting for room impulse response synthesis

Fuente: arXiv
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Main Authors: Baek, Geonwoo, Choi, Jung-Woo
Format: Preprint
Published: 2025
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author Baek, Geonwoo
Choi, Jung-Woo
author_facet Baek, Geonwoo
Choi, Jung-Woo
contents Room Impulse Response (RIR) prediction at arbitrary receiver positions is essential for practical applications such as spatial audio rendering. We propose Neural Acoustic Multipole Splatting (NAMS), which synthesizes RIRs at unseen receiver positions by learning the positions of neural acoustic multipoles and predicting their emitted signals and directivities using a neural network. Representing sound fields through a combination of multipoles offers sufficient flexibility to express complex acoustic scenes while adhering to physical constraints such as the Helmholtz equation. We also introduce a pruning strategy that starts from a dense splatting of neural acoustic multipoles and progressively eliminates redundant ones during training. Experiments conducted on both real and synthetic datasets indicate that the proposed method surpasses previous approaches on most metrics while maintaining rapid inference. Ablation studies reveal that multipole splatting with pruning achieves better performance than the monopole model with just 20% of the poles.
format Preprint
id arxiv_https___arxiv_org_abs_2509_17410
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Neural acoustic multipole splatting for room impulse response synthesis
Baek, Geonwoo
Choi, Jung-Woo
Audio and Speech Processing
Room Impulse Response (RIR) prediction at arbitrary receiver positions is essential for practical applications such as spatial audio rendering. We propose Neural Acoustic Multipole Splatting (NAMS), which synthesizes RIRs at unseen receiver positions by learning the positions of neural acoustic multipoles and predicting their emitted signals and directivities using a neural network. Representing sound fields through a combination of multipoles offers sufficient flexibility to express complex acoustic scenes while adhering to physical constraints such as the Helmholtz equation. We also introduce a pruning strategy that starts from a dense splatting of neural acoustic multipoles and progressively eliminates redundant ones during training. Experiments conducted on both real and synthetic datasets indicate that the proposed method surpasses previous approaches on most metrics while maintaining rapid inference. Ablation studies reveal that multipole splatting with pruning achieves better performance than the monopole model with just 20% of the poles.
title Neural acoustic multipole splatting for room impulse response synthesis
topic Audio and Speech Processing
url https://arxiv.org/abs/2509.17410