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Optical remote sensing for monitoring flying mosquitoes gender identification and discussion on species identification

机译:光学遥感监测飞行中的蚊子性别识别和关于物种识别的讨论

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摘要

Mosquito-borne diseases are a major challenge for Human health as they affect nearly 700 million people every year and result in over 1 million deaths. Reliable information on the evolution of population and spatial distribution of key insects species is of major importance in the development of eco-epidemiologic models. This paper reports on the remote characterization of flying mosquitoes using a continuous-wave infrared optical remote sensing system. The system is setup in a controlled environment to mimic long-range lidars, mosquitoes are free flying at a distance of ~ 4 m from the collecting optics. The wing beat frequency is retrieved from the backscattered light from mosquitoes transiting through the laser beam. A total of 427 transit signals have been recorded from three mosquito species, males and females. Since the mosquito species and gender are known a priori, we investigate the use of wing beat frequency as the sole predictor variable for two Bayesian classifications: gender alone (two classes) and species/gender (six classes). The gender of each mosquito is retrieved with a 96.5% accuracy while the species/gender of mosquitoes is retrieved with a 62.3% accuracy. Known to be an efficient mean to identify insect family, we discuss the limitations of using wing beat frequency alone to identify insect species.
机译:蚊媒疾病是人类健康的主要挑战,因为它们每年影响近7亿人,并导致超过100万人死亡。关于关键昆虫物种的种群演变和空间分布的可靠信息对于生态流行病学模型的发展至关重要。本文报道了使用连续波红外光学遥感系统对飞行中的蚊子进行远程表征。该系统设置在可控制的环境中,以模仿远程激光雷达,蚊子可以在距离采集光学系统约4 m的距离内自由飞行。从通过激光束传播的蚊子的反向散射光中检索出机翼的拍频。从三个蚊种中,雄性和雌性共记录了427个过境信号。由于蚊子的种类和性别是先验的,因此我们调查了使用拍打频率作为两个贝叶斯分类的唯一预测变量:单独的性别(两个类别)和物种/性别(六个类别)。每个蚊子的性别均以96.5%的准确度进行检索,而蚊子的物种/性别则以62.3%的准确度进行检索。作为识别昆虫家族的有效方法,我们讨论了仅使用机翼拍频来识别昆虫种类的局限性。

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