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Towards Automatic Honey Bee Flower-Patch Assays with Paint Marking Re-Identification

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arxiv 2311.07407 v1 pith:MEQJDUH2 submitted 2023-11-13 cs.CV

classification cs.CV
keywords assaysbeesfieldhoneyidentitiesmarkingpaintre-identification
verification ladder T0 review T1 audit T2 compute T3 formal
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In this paper, we show that paint markings are a feasible approach to automatize the analysis of behavioral assays involving honey bees in the field where marking has to be as lightweight as possible. We contribute a novel dataset for bees re-identification with paint-markings with 4392 images and 27 identities. Contrastive learning with a ResNet backbone and triplet loss led to identity representation features with almost perfect recognition in closed setting where identities are known in advance. Diverse experiments evaluate the capability to generalize to separate IDs, and show the impact of using different body parts for identification, such as using the unmarked abdomen only. In addition, we show the potential to fully automate the visit detection and provide preliminary results of compute time for future real-time deployment in the field on an edge device.

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