DriveLM
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DriveLM: Driving with Graph Visual Question Answering. We facilitate Perception, Prediction, Planning, Behavior, Motion tasks with human-written reasoning logic as a connection. We propose the task of GVQA to connect the QA pairs in a graph-style structure. To support this novel task, we provide the DriveLM-Data. DriveLM-Data comprises two distinct components: DriveLM-nuScenes and DriveLM-CARLA. In the case of DriveLM-nuScenes, we construct our dataset based on the prevailing… See the full description on the dataset page: https://huggingface.co/datasets/OpenDriveLab/DriveLM.
DriveLM:基于图视觉问答的驾驶。本数据集旨在通过人类编写的推理逻辑连接感知、预测、规划、行为和运动等任务。我们提出了图式结构的问答对连接任务(GVQA),并为此新型任务提供了DriveLM-Data数据集。DriveLM-Data数据集包含两个独立的部分:DriveLM-nuScenes和DriveLM-CARLA。在DriveLM-nuScenes的情况下,我们基于当前主流方法构建了我们的数据集...欲了解更多详细信息,请访问数据集页面:https://huggingface.co/datasets/OpenDriveLab/DriveLM。




