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Insect Biometrics: Optoacoustic Signal Processing and Its Applications to Remote Monitoring of McPhail Type Traps

机译:昆虫生物识别技术:光声信号处理及其在McPhail型阱的远程监测中的应用

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摘要

Monitoring traps are important components of integrated pest management applied against important fruit fly pests, including Bactrocera oleae (Gmelin) and Ceratitis capitata (Widemann), Diptera of the Tephritidae family, which effect a crop-loss/per year calculated in billions of euros worldwide. Pests can be controlled with ground pesticide sprays, the efficiency of which depends on knowing the time, location and extent of infestations as early as possible. Trap inspection is currently carried out manually, using the McPhail trap, and the mass spraying is decided based on a decision protocol. We introduce the term ‘insect biometrics’ in the context of entomology as a measure of a characteristic of the insect (in our case, the spectrum of its wingbeat) that allows us to identify its species and make devices to help face old enemies with modern means. We modify a McPhail type trap into becoming electronic by installing an array of photoreceptors coupled to an infrared emitter, guarding the entrance of the trap. The beating wings of insects flying in the trap intercept the light and the light fluctuation is turned to a recording. Custom-made electronics are developed that are placed as an external add-on kit, without altering the internal space of the trap. Counts from the trap are transmitted using a mobile communication network. This trap introduces a new automated remote-monitoring method different to audio and vision-based systems. We evaluate our trap in large number of insects in the laboratory by enclosing the electronic trap in insectary cages. Our experiments assess the potential of delivering reliable data that can be used to initialize reliably the spraying process at large scales but to also monitor the impact of the spraying process as it eliminates the time-lag between acquiring and delivering insect counts to a central agency.
机译:监测诱集器是针对重要果蝇害虫进行综合害虫管理的重要组成部分,其中包括油实小实蝇(Bactrocera oleae)(甘美甜蝇)和角实夜蛾(Ceratitis capitata)(卫德曼)(Tephritidae家族的双翅目),每年造成的作物损失以数十亿欧元计。可以用地面农药喷雾剂控制害虫,其效率取决于尽早知道侵染的时间,地点和程度。当前,使用McPhail捕集阱手动进行捕集阱检查,并根据决策协议确定质量喷涂。我们在昆虫学的背景下引入“昆虫生物特征识别”一词,以衡量昆虫的特征(在我们的案例中为其翅膀拍动的频谱),从而使我们能够识别其物种并制造出可以帮助面对现代敌人的设备手段。我们通过安装一系列与红外发射器耦合的感光器来保护McPhail型陷阱成为电子陷阱,以保护陷阱的入口。在诱捕装置中飞行的昆虫拍打着的翅膀拦截了光,并将光的起伏转向了记录。开发了定制电子设备,这些电子设备作为外部附加组件放置,而不会更改疏水阀的内部空间。来自陷阱的计数是使用移动通信网络传输的。该陷阱引入了一种新的自动远程监视方法,该方法不同于基于音频和视觉的系统。通过将电子诱捕器封闭在昆虫笼中,我们可以在实验室中评估我们在大量昆虫中的诱捕器。我们的实验评估了提供可靠数据的潜力,该数据可用于大规模可靠地初始化喷洒过程,但也可以监视喷洒过程的影响,因为它消除了获取和将昆虫计数传递给中央机构之间的时间差。

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