Datasets:
				
			
			
	
			
			
	
		Tasks:
	
	
	
	
	Object Detection
	
	
	Size:
	
	
	
	
	1K - 10K
	
	
	Commit 
							
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								Parent(s):
							
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dataset uploaded by roboflow2huggingface package
Browse files- README.md +40 -2
- data/test.zip +1 -1
- data/train.zip +1 -1
- data/valid-mini.zip +3 -0
- data/valid.zip +1 -1
- split_name_to_num_samples.json +1 -0
- thumbnail.jpg +3 -0
- valorant-object-detection.py +45 -14
    	
        README.md
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            - object-detection
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            tags:
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            - roboflow
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            ---
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            ### Roboflow Dataset Page
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            -
            [https://universe.roboflow.com/daniels-magonis-0pjzx/valorant-9ufcp](https://universe.roboflow.com/daniels-magonis-0pjzx/valorant-9ufcp?ref=roboflow2huggingface)
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            ### Citation
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            ```
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            @misc{ valorant-9ufcp_dataset,
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                title = { valorant Dataset },
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                publisher = { Roboflow },
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                year = { 2022 },
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                month = { nov },
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                note = { visited on  | 
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            }
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            ```
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            - object-detection
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            tags:
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            - roboflow
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            - roboflow2huggingface
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            ---
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            <div align="center">
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              <img width="640" alt="keremberke/valorant-object-detection" src="https://huggingface.co/datasets/keremberke/valorant-object-detection/resolve/main/thumbnail.jpg">
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            </div>
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            ### Dataset Labels
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            ```
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            ['dropped spike', 'enemy', 'planted spike', 'teammate']
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            ```
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            ### Number of Images
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            ```json
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            {'valid': 1983, 'train': 6927, 'test': 988}
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            ```
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            ### How to Use
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            - Install [datasets](https://pypi.org/project/datasets/):
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            ```bash
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            pip install datasets
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            ```
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            - Load the dataset:
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            ```python
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            from datasets import load_dataset
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            ds = load_dataset("keremberke/valorant-object-detection", name="full")
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            example = ds['train'][0]
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            ```
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            ### Roboflow Dataset Page
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            [https://universe.roboflow.com/daniels-magonis-0pjzx/valorant-9ufcp/dataset/3](https://universe.roboflow.com/daniels-magonis-0pjzx/valorant-9ufcp/dataset/3?ref=roboflow2huggingface)
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            ### Citation
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            +
             | 
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            ```
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| 51 | 
             
            @misc{ valorant-9ufcp_dataset,
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                title = { valorant Dataset },
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                publisher = { Roboflow },
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                year = { 2022 },
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                month = { nov },
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            +
                note = { visited on 2023-01-27 },
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            }
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            ```
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        data/test.zip
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            size 175503866
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            version https://git-lfs.github.com/spec/v1
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            oid sha256:b7a747b1af1fb6ccf3f604fb84bc0e4f665252f533c43c556d6e4f6aa464b25c
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            size 75235
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            size 50166533
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        split_name_to_num_samples.json
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            {"valid": 1983, "train": 6927, "test": 988}
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        thumbnail.jpg
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        valorant-object-detection.py
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    | @@ -5,7 +5,7 @@ import os | |
| 5 | 
             
            import datasets
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| 6 |  | 
| 7 |  | 
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            -
            _HOMEPAGE = "https://universe.roboflow.com/daniels-magonis-0pjzx/valorant-9ufcp"
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            _LICENSE = "CC BY 4.0"
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            _CITATION = """\
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            @misc{ valorant-9ufcp_dataset,
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                publisher = { Roboflow },
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                year = { 2022 },
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                month = { nov },
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                note = { visited on  | 
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            }
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            """
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                "train": "https://huggingface.co/datasets/keremberke/valorant-object-detection/resolve/main/data/train.zip",
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                "validation": "https://huggingface.co/datasets/keremberke/valorant-object-detection/resolve/main/data/valid.zip",
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                "test": "https://huggingface.co/datasets/keremberke/valorant-object-detection/resolve/main/data/test.zip",
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            }
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            _CATEGORIES = ['enemy', 'dropped spike', 'planted spike', 'teammate']
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            _ANNOTATION_FILENAME = "_annotations.coco.json"
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            class VALORANTOBJECTDETECTION(datasets.GeneratorBasedBuilder):
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                VERSION = datasets.Version("1.0.0")
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                def _info(self):
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                    features = datasets.Features(
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                    )
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                def _split_generators(self, dl_manager):
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            -
                    data_files = dl_manager.download_and_extract( | 
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                    return [
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                        datasets.SplitGenerator(
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                            name=datasets.Split.TRAIN,
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                    image_id_to_image = {}
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                    idx = 0
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            -
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                    annotation_filepath = os.path.join(folder_dir, _ANNOTATION_FILENAME)
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                    with open(annotation_filepath, "r") as f:
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                        annotations = json.load(f)
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                    image_id_to_annotations = collections.defaultdict(list)
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                    for annot in annotations["annotations"]:
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                        image_id_to_annotations[annot["image_id"]].append(annot)
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            -
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                    for filename in os.listdir(folder_dir):
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                        filepath = os.path.join(folder_dir, filename)
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                        if filename in  | 
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                            image =  | 
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                            objects = [
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                                process_annot(annot, category_id_to_category) for annot in image_id_to_annotations[image["id"]]
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                            ]
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|  | |
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            import datasets
         | 
| 6 |  | 
| 7 |  | 
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            +
            _HOMEPAGE = "https://universe.roboflow.com/daniels-magonis-0pjzx/valorant-9ufcp/dataset/3"
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            _LICENSE = "CC BY 4.0"
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            _CITATION = """\
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            @misc{ valorant-9ufcp_dataset,
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                publisher = { Roboflow },
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                year = { 2022 },
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                month = { nov },
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                note = { visited on 2023-01-27 },
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            }
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            """
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            _CATEGORIES = ['dropped spike', 'enemy', 'planted spike', 'teammate']
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            _ANNOTATION_FILENAME = "_annotations.coco.json"
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            class VALORANTOBJECTDETECTIONConfig(datasets.BuilderConfig):
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                """Builder Config for valorant-object-detection"""
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                def __init__(self, data_urls, **kwargs):
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                    """
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                    BuilderConfig for valorant-object-detection.
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                    Args:
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                      data_urls: `dict`, name to url to download the zip file from.
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                      **kwargs: keyword arguments forwarded to super.
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                    """
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                    super(VALORANTOBJECTDETECTIONConfig, self).__init__(version=datasets.Version("1.0.0"), **kwargs)
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                    self.data_urls = data_urls
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            +
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            +
             | 
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            class VALORANTOBJECTDETECTION(datasets.GeneratorBasedBuilder):
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                """valorant-object-detection object detection dataset"""
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            +
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                VERSION = datasets.Version("1.0.0")
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                BUILDER_CONFIGS = [
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                    VALORANTOBJECTDETECTIONConfig(
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                        name="full",
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                        description="Full version of valorant-object-detection dataset.",
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                        data_urls={
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                            "train": "https://huggingface.co/datasets/keremberke/valorant-object-detection/resolve/main/data/train.zip",
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            +
                            "validation": "https://huggingface.co/datasets/keremberke/valorant-object-detection/resolve/main/data/valid.zip",
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            +
                            "test": "https://huggingface.co/datasets/keremberke/valorant-object-detection/resolve/main/data/test.zip",
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                        },
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                    ),
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                    VALORANTOBJECTDETECTIONConfig(
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                        name="mini",
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                        description="Mini version of valorant-object-detection dataset.",
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                        data_urls={
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            +
                            "train": "https://huggingface.co/datasets/keremberke/valorant-object-detection/resolve/main/data/valid-mini.zip",
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            +
                            "validation": "https://huggingface.co/datasets/keremberke/valorant-object-detection/resolve/main/data/valid-mini.zip",
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            +
                            "test": "https://huggingface.co/datasets/keremberke/valorant-object-detection/resolve/main/data/valid-mini.zip",
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            +
                        },
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            +
                    )
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            +
                ]
         | 
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                def _info(self):
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                    features = datasets.Features(
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                    )
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                def _split_generators(self, dl_manager):
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            +
                    data_files = dl_manager.download_and_extract(self.config.data_urls)
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                    return [
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                        datasets.SplitGenerator(
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                            name=datasets.Split.TRAIN,
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                    image_id_to_image = {}
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                    idx = 0
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            +
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                    annotation_filepath = os.path.join(folder_dir, _ANNOTATION_FILENAME)
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                    with open(annotation_filepath, "r") as f:
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                        annotations = json.load(f)
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                    image_id_to_annotations = collections.defaultdict(list)
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                    for annot in annotations["annotations"]:
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                        image_id_to_annotations[annot["image_id"]].append(annot)
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            +
                    filename_to_image = {image["file_name"]: image for image in annotations["images"]}
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                    for filename in os.listdir(folder_dir):
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                        filepath = os.path.join(folder_dir, filename)
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            +
                        if filename in filename_to_image:
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            +
                            image = filename_to_image[filename]
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                            objects = [
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                                process_annot(annot, category_id_to_category) for annot in image_id_to_annotations[image["id"]]
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                            ]
         | 
