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  1. coco.py +189 -0
coco.py ADDED
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+ # Copyright 2022 Lance Developers
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+ #
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+ # Licensed under the Apache License, Version 2.0 (the "License");
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+ # you may not use this file except in compliance with the License.
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+ # You may obtain a copy of the License at
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+ #
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+ # http://www.apache.org/licenses/LICENSE-2.0
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+ #
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+ # Unless required by applicable law or agreed to in writing, software
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+ # distributed under the License is distributed on an "AS IS" BASIS,
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+ # WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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+ # See the License for the specific language governing permissions and
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+ # limitations under the License.
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+
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+ """COCO: Microsoft COCO Dataset.
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+
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+ https://cocodataset.org/#home
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+ """
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+
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+ import os
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+ from typing import List
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+
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+ import datasets
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+ import lance
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+ import pyarrow as pa
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+ import pyarrow.compute as pc
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+
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+ _CLASS_MAP = {
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+ 1: "person",
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+ 2: "bicycle",
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+ 3: "car",
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+ 4: "motorcycle",
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+ 5: "airplane",
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+ 6: "bus",
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+ 7: "train",
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+ 8: "truck",
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+ 9: "boat",
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+ 10: "traffic light",
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+ 11: "fire hydrant",
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+ 13: "stop sign",
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+ 14: "parking meter",
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+ 15: "bench",
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+ 16: "bird",
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+ 17: "cat",
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+ 18: "dog",
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+ 19: "horse",
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+ 20: "sheep",
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+ 21: "cow",
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+ 22: "elephant",
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+ 23: "bear",
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+ 24: "zebra",
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+ 25: "giraffe",
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+ 27: "backpack",
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+ 28: "umbrella",
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+ 31: "handbag",
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+ 32: "tie",
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+ 33: "suitcase",
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+ 34: "frisbee",
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+ 35: "skis",
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+ 36: "snowboard",
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+ 37: "sports ball",
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+ 38: "kite",
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+ 39: "baseball bat",
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+ 40: "baseball glove",
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+ 41: "skateboard",
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+ 42: "surfboard",
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+ 43: "tennis racket",
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+ 44: "bottle",
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+ 46: "wine glass",
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+ 47: "cup",
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+ 48: "fork",
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+ 49: "knife",
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+ 50: "spoon",
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+ 51: "bowl",
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+ 52: "banana",
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+ 53: "apple",
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+ 54: "sandwich",
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+ 55: "orange",
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+ 56: "broccoli",
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+ 57: "carrot",
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+ 58: "hot dog",
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+ 59: "pizza",
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+ 60: "donut",
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+ 61: "cake",
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+ 62: "chair",
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+ 63: "couch",
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+ 64: "potted plant",
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+ 65: "bed",
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+ 67: "dining table",
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+ 70: "toilet",
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+ 72: "tv",
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+ 73: "laptop",
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+ 74: "mouse",
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+ 75: "remote",
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+ 76: "keyboard",
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+ 77: "cell phone",
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+ 78: "microwave",
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+ 79: "oven",
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+ 80: "toaster",
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+ 81: "sink",
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+ 82: "refrigerator",
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+ 84: "book",
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+ 85: "clock",
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+ 86: "vase",
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+ 87: "scissors",
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+ 88: "teddy bear",
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+ 89: "hair drier",
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+ 90: "toothbrush",
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+ }
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+ _DATASET_URI = (
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+ "https://eto-public.s3.us-west-2.amazonaws.com/datasets/coco/coco.lance.tar.gz"
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+ )
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+
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+
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+ class Coco(datasets.ArrowBasedBuilder):
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+ """COCO: Microsoft common object in context dataset"""
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+
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+ def _info(self):
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+ class_names = []
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+ for i in range(0, max(_CLASS_MAP.keys()) + 1):
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+ class_names.append(_CLASS_MAP.get(i, f"N/A-{i}"))
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+ return datasets.DatasetInfo(
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+ description="COCO: Microsoft object detection dataset",
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+ features=datasets.Features(
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+ {
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+ "image": datasets.Image(),
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+ "split": datasets.Value("string"),
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+ "annotations": datasets.Sequence(
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+ {
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+ "bbox": datasets.Sequence(
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+ datasets.Value("float32"), length=4
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+ ),
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+ "category_id": datasets.ClassLabel(names=class_names),
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+ }
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+ ),
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+ }
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+ ),
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+ supervised_keys=None,
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+ homepage="https://github.com/eto-ai/lance/tree/main/python/benchmarks/coco",
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+ )
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+
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+ def _split_generators(
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+ self, dl_manager: datasets.DownloadManager
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+ ) -> List[datasets.SplitGenerator]:
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+ extracted_dir = dl_manager.download_and_extract(_DATASET_URI)
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+ base_uri = os.path.join(extracted_dir, "coco.lance")
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+ return [
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+ datasets.SplitGenerator(
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+ name=datasets.Split.TRAIN,
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+ gen_kwargs={"split": "train", "base_uri": base_uri},
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+ ),
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+ datasets.SplitGenerator(
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+ name=datasets.Split.VALIDATION,
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+ gen_kwargs={"split": "val", "base_uri": base_uri},
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+ ),
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+ datasets.SplitGenerator(
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+ name=datasets.Split.TEST,
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+ gen_kwargs={"split": "test", "base_uri": base_uri},
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+ ),
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+ ]
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+
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+ def _generate_tables(self, split, base_uri):
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+ idx = 0
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+ dataset = lance.dataset(base_uri)
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+ scanner = dataset.scanner(
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+ filter=pc.field("split") == split,
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+ )
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+ for batch in scanner.to_batches(): # type: pa.RecordBatch
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+ cols = []
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+ names = []
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+
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+ annotations = batch.column("annotations")
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+ if len(annotations) == 0:
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+ continue
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+ cols.append(annotations)
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+ names.append("annotations")
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+
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+ # Decode split because Huggingface does not support dictionary yet.
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+ split_arr = batch.column("split").dictionary_decode()
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+ cols.append(split_arr)
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+ names.append("split")
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+
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+ bytes_arr = batch.column("image").storage
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+ arr = pa.StructArray.from_arrays([bytes_arr], ["bytes"])
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+ cols.append(arr)
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+ names.append("image")
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+
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+ yield idx, pa.Table.from_arrays(cols, names)
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+ idx += 1