Publication | Closed Access
Perceive, Attend, and Drive: Learning Spatial Attention for Safe Self-Driving
33
Citations
45
References
2021
Year
Unknown Venue
Artificial IntelligenceEngineeringCognitionIntelligent SystemsTask PlanningAttentionAttention MaskPsychologySocial SciencesLearning Spatial AttentionDriver BehaviorSelf-supervised LearningRobot LearningPerception SystemCognitive ScienceBehavioral SciencesComputer ScienceAutonomous DrivingSparse Attention ModuleWorld ModelDeep LearningDriver PerformanceMotion PlanningEye TrackingSpatial CognitionPlanning
In this paper, we propose an end-to-end self-driving network featuring a sparse attention module that learns to automatically attend to important regions of the input. The attention module specifically targets motion planning, whereas prior literature only applied attention in perception tasks. Learning an attention mask directly targeted for motion planning significantly improves the planner safety by performing more focused computation. Furthermore, visualizing the attention improves interpretability of end-to-end self-driving.
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