Low-Power, Neuromorphic, Acoustic Anomaly Detection for Persistent Machine Monitoring

📅 2026-08-18
📈 Citations: 0
Influential: 0
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🤖 AI Summary
研究使用基于自编码器的神经形态处理器进行声学异常检测,解决了持续机器监控中的能耗、延迟和部署复杂性问题。
📝 Abstract
Persistent acoustic monitoring can detect machine faults without physical contact, but always-on inference is constrained by power, latency, and deployment complexity. We demonstrate autoencoder-based acoustic anomaly detection on an Intel Loihi 2 neuromorphic processor under clean and noisy conditions. Log-mel features are computed off chip; normalization, autoencoder inference, L1 reconstruction scoring, and thresholding run on chip. In a clean, microphone-position-invariant ToyADMOS ToyCar benchmark, the on-chip model achieves 0.9959 AUC and 0.9785 standardized pAUC at maximum false-positive rate 0.1. In the DCASE 2026 Task 2 ToyCar noisy benchmark, the model achieves source AUC 0.7990, target AUC 0.6466, and pAUC 0.6426, exceeding reported baseline metrics. Power profiling on a 16-chip Loihi 2 VPX system shows real-time throughput with 0.0406$\unicode{x2013}$0.0426 mJ dynamic energy per sample, two orders of magnitude lower than both a CPU and GPU. These results support neuromorphic acoustic anomaly detection as a practical candidate for low-power, persistent machine monitoring.
Problem

Research questions and friction points this paper is trying to address.

Low-Power
Neuromorphic
Acoustic Anomaly Detection
Persistent Machine Monitoring
Innovation

Methods, ideas, or system contributions that make the work stand out.

neuromorphic processor
acoustic anomaly detection
low-power
autoencoder
real-time
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