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Annotated IFCB plankton images from the Mediterranean Sea
Melpomeni Sofia Mente1, Emilie Houliez2, Eleonora Scalco1
1Stazione Zoologica Anton Dohrn, Villa Comunale, 80121, Napoli, Italy.
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The Imaging FlowCytobot (IFCB), supported by machine learning-based classifications, has revolutionized plankton research by automating plankton monitoring and considerably increasing sampling resolution. However, building a training set of labeled IFCB images to train the machine learning algorithms remains time-consuming and challenging. Consequently, there is a growing demand within the IFCB user community for shared datasets of taxonomically annotated IFCB images. Currently, such datasets are scarce and lack Mediterranean coverage. This data descriptor introduces MedPlanktonSet, a dataset comprising 77,271 taxonomically annotated IFCB images provided with their associated features. Data were collected from November 2022 to February 2025 at six stations in the Gulf of Naples (Western Mediterranean Sea) and the IFCB images were classified into 139 categories. MedPlanktonSet will support the development of various machine learning classifiers, 3D plankton reconstructions, training of plankton taxonomists and trait-based ecological studies. Ultimately, by facilitating the use of IFCBs with their associated classifiers, MedPlanktonSet will contribute to advancing research on plankton biodiversity and ecology.
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