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Voxel51/Coursera_lecture_dataset_test

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Hugging Face2024-07-31 更新2025-04-12 收录
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--- annotations_creators: [] language: en size_categories: - 1K<n<10K task_categories: - object-detection task_ids: [] pretty_name: lecture_dataset_test tags: - fiftyone - image - object-detection dataset_summary: ' This is a [FiftyOne](https://github.com/voxel51/fiftyone) dataset with 4159 samples. ## Installation If you haven''t already, install FiftyOne: ```bash pip install -U fiftyone ``` ## Usage ```python import fiftyone as fo import fiftyone.utils.huggingface as fouh # Load the dataset # Note: other available arguments include ''max_samples'', etc dataset = fouh.load_from_hub("Voxe51/Coursera_lecture_dataset_test") # Launch the App session = fo.launch_app(dataset) ``` ' --- # Dataset Card for Lecture Test Set for Coursera MOOC - Hands Data Centric Visual AI This dataset is the **test dataset for the in-class lectures** of the Hands-on Data Centric Visual AI Coursera course. This is a [FiftyOne](https://github.com/voxel51/fiftyone) dataset with 4159 samples. ## Installation If you haven't already, install FiftyOne: ```bash pip install -U fiftyone ``` ## Usage ```python import fiftyone as fo import fiftyone.utils.huggingface as fouh # Load the dataset # Note: other available arguments include 'max_samples', etc dataset = fouh.load_from_hub("Voxel51/Coursera_lecture_dataset_test") # Launch the App session = fo.launch_app(dataset) ``` ## Dataset Details ### Dataset Description This dataset is a modified subset of the [LVIS dataset](https://www.lvisdataset.org/). The dataset here only contains detections; **NONE** of the test set's labels have been artificially perturbed. This dataset has the following labels: - 'jacket' - 'coat' - 'jean' - 'trousers' - 'short_pants' - 'trash_can' - 'bucket' - 'flowerpot' - 'helmet' - 'baseball_cap' - 'hat' - 'sunglasses' - 'goggles' - 'doughnut' - 'pastry' - 'onion' - 'tomato' ### Dataset Sources [optional] - **Repository:** https://www.lvisdataset.org/ - **Paper:** https://arxiv.org/abs/1908.03195 ## Uses The labels in this dataset have been **NOT** perturbed, unlike the corresponding training dataset. ## Dataset Structure Each image in the dataset comes with detailed annotations in FiftyOne detection format. A typical annotation looks like this: ```python <Detection: { 'id': '66a2f24cce2f9d11d98d39f3', 'attributes': {}, 'tags': [], 'label': 'trousers', 'bounding_box': [ 0.5562343750000001, 0.4614166666666667, 0.1974375, 0.29300000000000004, ], 'mask': None, 'confidence': None, 'index': None, }> ``` ## Dataset Creation ### Curation Rationale The selected labels for this dataset are because these objects can confuse a model. Thus, making them a great choice for demonstrating data centric AI techniques. ### Source Data This is a subset of the [LVIS dataset.](https://www.lvisdataset.org/) ## Citation **BibTeX:** ```bibtex @inproceedings{gupta2019lvis, title={{LVIS}: A Dataset for Large Vocabulary Instance Segmentation}, author={Gupta, Agrim and Dollar, Piotr and Girshick, Ross}, booktitle={Proceedings of the {IEEE} Conference on Computer Vision and Pattern Recognition}, year={2019} } ```
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