鉴定(生物学)
计算机科学
超参数
钥匙(锁)
持续时间(音乐)
女王(蝴蝶)
支持向量机
机器学习
信号(编程语言)
人工智能
语音识别
计算机安全
生态学
生物
膜翅目
程序设计语言
艺术
文学类
作者
Luca Barbisan,Giovanna Turvani,Fabrizio Riente
标识
DOI:10.1109/cafe58535.2023.10291679
摘要
Honeybees are essential for the health of people and the planet. They play a key role in the pollination of most crops. The high mortality observed in the last decade, caused by stress factors among which the climate change, have raised the necessity of remote sensing the beehives to help monitor the health of honeybees and better understand this phenomenon. Several solutions have been proposed in the literature, and some of them include the analysis of in-hive sounds. In this scenario, we explore the potential of machine learning methods for queen bee detection using only the audio signal, being a good indicator of the colony state of health. In particular, we experiment support vector machines and neural network classifiers. We consider the effect of varying the audio chunk duration and the adoption of different hyperparameters.
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