ZooCAMNet : plankton images captured with the ZooCAM
Plankton was sampled with a Continuous Underway Fish Egg Sampler (CUFES, 315µm mesh size) at 4 m below the surface, and a WP2 net (200µm mesh size) from 100m to the surface, or 5 m above the sea floor to the surface when the depth was < 100 m, in the Bay of Biscay. The full images were processed...
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Zusammenfassung: | Plankton was sampled with a Continuous Underway Fish Egg Sampler (CUFES, 315µm mesh size) at 4 m below the surface, and a WP2 net (200µm mesh size) from 100m to the surface, or 5 m above the sea floor to the surface when the depth was < 100 m, in the Bay of Biscay. The full images were processed with the ZooCAM software and the embedded Matrox Imaging Library (Colas et a., 2018) which generated regions of interest (ROIs) around each individual object and a set of features measured on the object. The same objects were re-processed to compute features with the scikit-image library http://scikit-image.org. The 1, 286, 590 resulting objects were sorted by a limited number of operators, following a common taxonomic guide, into 93 taxa, using the web application EcoTaxa http://ecotaxa.obs-vlfr.fr. For the purpose of training machine learning classifiers, the images in each class were split into training, validation, and test sets, with proportions 70%, 15% and 15%.
The archive contains :
taxa.csv.gz Table of the classification of each object in the dataset, with columns :
- objid : unique object identifier in EcoTaxa (integer number).
- taxon_level1 : taxonomic name corresponding to the level 1 classification
- lineage_level1 : taxonomic lineage corresponding to the level 1 classification
- taxon_level2 : name of the taxon corresponding to the level 2 classification
- plankton : if the object is a plankton or not (boolean)
- set : class of the image corresponding to the taxon (train : training, val : validation, or test)
- img_path : local path of the image corresponding to the taxon (of level 1), named according to the object id
features_native.csv.gz Table of morphological features computed by ZooCAM. All features are computed on the object only, not the background. All area/length measures are in pixels. All grey levels are in encoded in 8 bits (0=black, 255=white). With columns :
- area : object's surface
- area_exc : object surface excluding white pixels
- area_based_diameter : object's Area Based Diameter: 2 * (object_area/pi)^(1/2)
- meangreyobjet : mean image grey level
- modegreyobjet : modal object grey level
- sigmagrey : object grey level standard deviation
- mingrey : minimum object grey level
- maxgrey : maximum object grey level
- sumgrey : object grey level integrated density: object_mean*object_area
- breadth : breadth of the object along the best fitting ellipsoid minor axis
- length : breadth of the object along the best fitting ellipsoid maj |
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DOI: | 10.17882/101928 |