用微型机器学习在边缘设备上实时识别犀鸟叫声,助力保护濒危物种。
Edge Intelligence for Wildlife Conservation: Real-Time Hornbill Call Classification Using TinyML
- 在Arduino Nano 33 BLE上部署基于MFE特征的TinyML模型
- 在真实场景中实现犀鸟叫声分类准确率高
- 适合对边缘计算与生态保护感兴趣的开发者
马来西亚的犀鸟作为标志性生物面临栖息地丧失、偷猎和环境变化威胁,传统种群监测方法成本高且难以实现实时性。本文探索微型机器学习(TinyML)在犀鸟叫声分类与监测中的应用,利用Xeno-canto数据库的音频数据,通过提取梅尔频率能量(MFE)特征,在Arduino Nano 33 BLE边缘设备上部署模型。使用Edge Impulse训练并经实地测试验证,系统实现了高精度的犀鸟物种识别。研究展示了TinyML在生态监测中的潜力,为野生动物保护提供低成本、低功耗的智能解决方案。
原文摘要 · Abstract (English)
Hornbills, an iconic species of Malaysia's biodiversity, face threats from habi-tat loss, poaching, and environmental changes, necessitating accurate and real-time population monitoring that is traditionally challenging and re-source intensive. The emergence of Tiny Machine Learning (TinyML) offers a chance to transform wildlife monitoring by enabling efficient, real-time da-ta analysis directly on edge devices. Addressing the challenge of wildlife conservation, this research paper explores the pivotal role of machine learn-ing, specifically TinyML, in the classification and monitoring of hornbill calls in Malaysia. Leveraging audio data from the Xeno-canto database, the study aims to develop a speech recognition system capable of identifying and classifying hornbill vocalizations. The proposed methodology involves pre-processing the audio data, extracting features using Mel-Frequency Energy (MFE), and deploying the model on an Arduino Nano 33 BLE, which is adept at edge computing. The research encompasses foundational work, in-cluding a comprehensive introduction, literature review, and methodology. The model is trained using Edge Impulse and validated through real-world tests, achieving high accuracy in hornbill species identification. The project underscores the potential of TinyML for environmental monitoring and its broader application in ecological conservation efforts, contributing to both the field of TinyML and wildlife conservation.
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