Commit
·
4d7de12
1
Parent(s):
fb0d8d8
adadads
Browse files
case.py
ADDED
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| 1 |
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from uuid import uuid1
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| 2 |
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| 3 |
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import pytest
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from aidisdk import AIDIClient
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from aidisdk.algo_house.algorithm_module import AlgoConfig, AlgoFieldEnum
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from aidisdk.compute.job_abstract import (
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JobType,
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RunningResourceConfig,
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StartUpConfig,
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)
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from aidisdk.compute.package_abstract import (
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CodePackageConfig,
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LocalPackageItem,
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)
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from aidisdk.model import ModelFramework
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@pytest.mark.skip("unused")
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def test_create_algo_for_eval_detection3d(unittest_client):
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client: AIDIClient = unittest_client
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# create a algorithm with a raw config file
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algorithm = client.algo_house.create(
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algo_name="eval_for_detection3d_" + str(uuid1()).replace("-", "_"),
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field=AlgoFieldEnum.AUTO,
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scene="高速",
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module="感知",
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task_types=["2D检测"],
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framework=ModelFramework.pytorch,
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startup="cd ${WORKING_PATH} && python3 local_example.py ", # noqa
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code_package="test/test_data/eval_experiment",
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docker_image="docker.hobot.cc/auto/eval-traincli:v1.0.36test",
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desc="算法仓库发起评测使用,请勿删除.",
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tags=["test", "unittest"],
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config_files=[
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AlgoConfig(
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name="eval_setting",
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local_path="test/test_data/"
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+ "eval_experiment/setting_example.yaml",
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),
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],
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)
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client.algo_house.__delete__(algorithm.algo_id)
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@pytest.mark.skip("unused")
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def test_update_algo(unittest_client):
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client: AIDIClient = unittest_client
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algo_name = "eval_for_Semantic_Segmentation"
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algorithm = client.algo_house.update(
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algo_name=algo_name,
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field=AlgoFieldEnum.AUTO,
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scene="高速",
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module="感知",
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task_types=["2D检测"],
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framework=ModelFramework.pytorch,
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startup="python3 local_example.py --task_type ${TASK_TYPE} "
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+ "--endpoint"
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+ " 'http://aidi-test.hobot.cc' "
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+ "--group_name ${GROUP_NAME} "
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+ "--experiment_name ${EXPERIMENT_NAME} --run_name '${RUN_NAME}' "
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+ "--gt_dataset_id "
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+ "'${GT_DATASET_ID}' "
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+ "--images_dataset_id " # detection 3d & 分割
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+ "'${IMAGES_DATASET_ID}' "
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+ "--prediction_name '${PREDICTION_NAME}' "
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+ "--predictions_dataset_id '${PREDICTIONS_DATASET_ID}' " # 分割
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+ "--labels_dataset_id '${LABELS_DATASET_ID}' " # 分割
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+ "--setting_file_name ${EVAL_SETTING}",
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| 72 |
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code_package="test/test_data/eval_experiment",
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docker_image="docker.hobot.cc/auto/eval-traincli:v1.0.36test",
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desc="算法仓库发起评测使用,请勿删除.",
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| 76 |
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tags=["test", "unittest"],
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config_files=[
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AlgoConfig(
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name="eval_setting",
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local_path="test/test_data/eval_experiment/wk_setting.yaml", # 分割
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# local_path="test/test_data/eval_experiment/setting_example.yaml",
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placeholder="${EVAL_SETTING}",
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),
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],
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)
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print(algorithm)
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| 88 |
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# @pytest.mark.skip("unused")
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def test_create_eval_task_env_test(unittest_client):
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client: AIDIClient = unittest_client
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# algo_name = "eval_for_detection3d"
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algo_name = "eval_for_Semantic_Segmentation"
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algo = client.algo_house.get(
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algo_name=algo_name, download_config=True, download_package=True
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)
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# experiment group name + experiment name + prediction in experiment
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# 参数会替换cmd命令中的占位符,默认cmd_args_dict的key大写为占位符,如 task_type -> ${TASK_TYPE}
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cmd_args_dict = {
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"task_type": "Semantic_Segmentation",
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"predictions_dataset_id": "dataset://25616",
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"labels_dataset_id": "dataset://25615",
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# "gt_dataset": "dataset://25575",
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"gt_dataset": "",
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"images_dataset_id": "dataset://25613",
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"group_name": "train-withBN",
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"experiment_name": "wjx_test_095",
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| 109 |
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"run_name": "test_run_name_wjx_003",
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# "prediction_name": "wjx_test_023/prediction.json",
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"prediction_name": "",
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}
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config_files = [
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AlgoConfig(
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name="eval_setting",
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local_path="test/test_data/eval_experiment/wk_setting.yaml", # 分割
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# local_path="test/test_data/eval_experiment/setting_example.yaml",
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placeholder="${EVAL_SETTING}",
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),
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]
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algo.update_config(config_files)
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algo.update_cmd(cmd_args_dict)
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| 126 |
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# TODO gen job obj
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# job = algo.gen_job()
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cpu_count = 6
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cpu_mem_ratio = 6
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queue = "svc-aip-cpu"
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project = "PD20210425"
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job = client.single_job.create(
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| 133 |
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job_name="eval_from_algo_%s_%s"
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% (algo.name, str(uuid1()).replace("-", "_")),
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| 135 |
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job_type=JobType.APP_EVAL,
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ipd_number=project,
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queue_name=queue,
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running_resource=RunningResourceConfig(
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docker_image=algo.docker_image,
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instance=1,
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cpu=cpu_count,
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gpu=0,
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| 143 |
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cpu_mem_ratio=cpu_mem_ratio,
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| 144 |
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),
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mount=[],
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startup=StartUpConfig(
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command=algo.startup_command, # noqa
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| 148 |
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),
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code_package=CodePackageConfig(
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| 150 |
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raw_package=LocalPackageItem(
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| 151 |
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lpath=algo.package_path,
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| 152 |
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encrypt_passwd="12345",
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| 153 |
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follow_softlink=True,
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| 154 |
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).set_as_startup_dir(),
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),
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# subscribers=["dan.song", "shulan.shen"],
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)
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print(job)
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k.yaml
ADDED
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@@ -0,0 +1,70 @@
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| 1 |
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class:
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- color: [128,64,128]
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ignore: false
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label: 0
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name: road
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| 6 |
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- color: [70,70,70]
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| 7 |
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ignore: false
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label: 1
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| 9 |
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name: background
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| 10 |
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- color: [153,153,190]
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ignore: false
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| 12 |
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label: 2
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| 13 |
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name: fence
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- color: [153,153,153]
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ignore: false
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| 16 |
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label: 3
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name: pole
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- color: [30,170,250]
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ignore: false
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label: 4
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name: traffic
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- color: [60,20,220]
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ignore: false
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label: 5
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| 25 |
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name: person
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| 26 |
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- color: [142,0,0]
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ignore: false
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| 28 |
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label: 6
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| 29 |
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name: vehicle
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| 30 |
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- color: [70,0,0]
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ignore: false
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label: 7
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name: two-wheel
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| 34 |
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- color: [200,200,200]
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| 35 |
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ignore: false
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| 36 |
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label: 8
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| 37 |
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name: lane_marking
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| 38 |
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- color: [0,192,64]
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| 39 |
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ignore: false
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| 40 |
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label: 9
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| 41 |
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name: crosswalk
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| 42 |
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- color: [192,0,128]
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ignore: false
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| 44 |
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label: 10
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| 45 |
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name: traffic_arrow
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- color: [128,200,200]
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ignore: false
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| 48 |
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label: 11
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| 49 |
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name: sign_line
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| 50 |
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- color: [192,192,0]
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| 51 |
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ignore: false
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| 52 |
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label: 12
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| 53 |
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name: guide_line
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| 54 |
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- color: [64,64,0]
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| 55 |
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ignore: false
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| 56 |
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label: 13
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| 57 |
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name: cone
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| 58 |
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- color: [0,0,255]
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ignore: false
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label: 14
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name: stop_line
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- color: [0,220,220]
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ignore: false
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| 64 |
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label: 15
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| 65 |
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name: speed_bump
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| 66 |
+
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freespace:
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- freespace_id: [0,8,9,10,11,12,14,15]
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margin: [5,10]
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thredshold: [0.5,0.7]
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