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1.48 kB
| dataset_info: | |
| features: | |
| - name: image | |
| dtype: image | |
| - name: label | |
| dtype: | |
| class_label: | |
| names: | |
| '0': esca | |
| '1': healthy | |
| splits: | |
| - name: train | |
| num_bytes: 1078870058 | |
| num_examples: 1770 | |
| download_size: 943817178 | |
| dataset_size: 1078870058 | |
| configs: | |
| - config_name: default | |
| data_files: | |
| - split: train | |
| path: data/train-* | |
| license: cc-by-4.0 | |
| task_categories: | |
| - image-classification | |
| size_categories: | |
| - 1K<n<10K | |
| # Grapevine Esca Classification | |
| A dataset for disease classification of grapevine leaves. The dataset contains 1,770 images across 2 classes: esca, healthy. | |
| Images per class: | |
| - esca: 888 | |
| - healthy: 882 | |
| This dataset is indexed on https://project-agml.github.io/ as part of the AgML python library. | |
| ## Citation | |
| ```bibtex | |
| @article{alessandrini2021grapevine, | |
| title={A grapevine leaves dataset for early detection and classification of esca disease in vineyards through machine learning}, | |
| author={Alessandrini, M and Rivera, R Calero Fuentes and Falaschetti, L and Pau, D and Tomaselli, V and Turchetti, C}, | |
| journal={Data in Brief}, | |
| volume={35}, | |
| pages={106809}, | |
| year={2021}, | |
| publisher={Elsevier} | |
| } | |
| ``` | |
| Alessandrini, Michele; Calero Fuentes Rivera, Romel ; Falaschetti, Laura; Pau, Danilo; Tomaselli, Valeria; Turchetti, Claudio (2021), “ESCA-dataset”, Mendeley Data, V1, doi: 10.17632/89cnxc58kj.1 | |
| *This dataset was reformatted from its original format to match HuggingFace standards.* |