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在常规蚊虫(双翅目:蚊科)样本处理过程中,使用ImageJ进行数字化光学计数的比较弹性和精度。

Comparative resilience and precision of digitized optical counting using ImageJ during routine mosquito (Diptera: Culicidae) sample processing.

作者信息

Faraji Ayla, Fairbanks Kelsey A, Faraji Ary, Bibbs Christopher S

机构信息

Salt Lake City Mosquito Abatement District, Salt Lake City, UT, USA.

出版信息

J Insect Sci. 2025 Mar 14;25(2). doi: 10.1093/jisesa/ieaf026.

Abstract

Surveillance is integral for the targeted and effective function of integrated vector management. However, the scale of surveillance efforts can be prohibitive on manpower, given the large number of traps set, collected, processed, and enumerated. For many public health agencies, the sheer effort of weekly trapping, combined with the processing of numerous traps, is a major capacity challenge. To reduce employee fatigue and increase throughput, estimation methods are used in a diagnostic capacity to determine threshold numbers of mosquitoes (Diptera: Culicidae) for operational decision-making. Historically, volume and mass measures correlated to a known number of mosquitoes are the oldest and most widely used within mosquito control programs. Image processing methods using digital counting software, such as ImageJ, have not been tested rigorously in the context of high throughput usage experienced in mosquito operations. We stress-tested volume, mass, and image processing methods using sample calibrations from early in the year and applied them throughout a mosquito active season. We additionally tested resilience with samples that had been frozen, desiccated, old, or from an excessively large trap collection. Furthermore, we compared magnitudes of error after intentionally deviating from best practices. In all cases, mass and volume encountered significant errors. In contrast, the digitized-optical counting method was resilient to going long periods of use without recalibrating, handling different species compositions, and processing aged or damaged samples. If a program has limited logistical power, the aforementioned image-processing method confers the best balance of accuracy and expediency for time-sensitive workloads and efficient operational decision making.

摘要

监测是综合病媒管理实现目标并有效发挥作用所不可或缺的一部分。然而,鉴于设置、收集、处理和计数的诱捕器数量众多,监测工作的规模在人力方面可能令人望而却步。对于许多公共卫生机构而言,每周进行诱捕工作的巨大工作量,再加上处理大量诱捕器,是一项重大的能力挑战。为了减轻员工疲劳并提高工作效率,在诊断工作中采用估算方法来确定用于操作决策的蚊子(双翅目:蚊科)阈值数量。历史上,与已知蚊子数量相关的体积和质量测量方法是蚊虫控制项目中最古老且使用最广泛的方法。使用数字计数软件(如图像J)的图像处理方法,尚未在蚊虫操作中所经历的高通量使用背景下进行严格测试。我们使用年初的样本校准对体积、质量和图像处理方法进行了压力测试,并在整个蚊虫活跃季节应用这些方法。我们还使用冷冻、干燥、陈旧或来自过大诱捕器收集量的样本测试了其适应性。此外,我们在故意偏离最佳实践后比较了误差幅度。在所有情况下,质量和体积都出现了显著误差。相比之下,数字化光学计数方法在长时间使用而无需重新校准、处理不同物种组成以及处理老化或受损样本方面具有适应性。如果一个项目的后勤能力有限,上述图像处理方法在准确性和便利性之间实现了最佳平衡,适用于对时间敏感的工作量和高效的操作决策。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4463/11908421/be0fb96806ef/ieaf026_fig1.jpg

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