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Sticky Pi -- Machine Learning Data, Configuration and Models

Authors: Geissmann, Quentin;

Sticky Pi -- Machine Learning Data, Configuration and Models

Abstract

Dataset for the Machine Learning section of the Sticky Pi project (https://doc.sticky-pi.com/) Contains the dataset for the three algorithms described in the publication: Universal Insect Detector, Siamese Insect Matcher and Insect Tuboid Classifier. Universal Insect Detector: `universal_insect_detector/` contains training/validation data, configuration files to train the model, and the model as trained and used for publication. `data/` ��� A set of svg images that contain the embedded jpg raw image, and a set of non-intersecting polygon around the labelled insects `output/` `model_final.pth` ��� the model as trained for the publication `config/` `config.yaml `��� The configuration file defining the hyperparameters to train the model `mask_rcnn_R_101_C4_3x.yaml` ��� the base configuration file from which config is derived Siamese Insect Matcher `siamese_insect_matcher/` contains training/validation data, configuration files to train the model, and the model as trained and used for publication. `data/` ��� a set of svg images that contain two embedded jpg raw images vertically stacked corresponding to two frames in a series. Each predicted insect is labelled as a polygon. Insects that are labelled as the same instance, between the two frames, are grouped (i.e. SVG group). The filename of each image is `<device>.<datetime_frame_1>.<datetime_frame_2>.svg` `output/` `model_final.pth` ��� the model as trained for the publication `config/` `config.yaml` ��� The configuration file defining the hyperparameters to train Insect Tuboid Classifier: `insect_tuboid_classifier/` contains images of insect tuboid, a database file describing their taxonomy, a configuration file to train the model, and the model as trained and used for publication. `data/` `database.db`: a sqlite file with a single table `ANNOTATIONS`. The table maps a unique identifier of each tuboid (tuboid_id) to a set of manually annotated taxonomic variables. A directory tree of the form: `<series_id>/<tuboid_id>/`. Each terminal directory contains: `tuboid.jpg` ��� a jpeg image made of 224 x 224 tiles representing all the shots in a tuboid, left to right, top to bottom ��� might be padded with empty images `metadata.txt` ��� a csv text file with columns: parrent_image_id ��� <device>.<UTC_datetime> X ��� the X coordinates of the object centroid Y ��� the Y coordinates of the object centroid scale ��� The scaling factor applied between the original and image and the 224 x 224 tile (>1 => image was enlarged) `context.jpg` ��� a representation of the first whole image of a series, with a box around the first tuboid shot (this is for debugging/labelling purposes) `output/` `model_final.pth` ��� the model as trained for the publication config/ `config.yaml` ��� The configuration file defining the hyperparameters to train the model as well as the taxonomic labels

Second version. Added data to the UID and SIM. Minor changes in the configurations.

Related Organizations
Keywords

instect traps, deep learning, behavioral ecology

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selected citations
These citations are derived from selected sources.
This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Citations provided by BIP!
popularity
This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
BIP!Popularity provided by BIP!
influence
This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Influence provided by BIP!
impulse
This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network.
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