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ROBUST OBJECT DETECTION AND CLASSIFICATION USING RGB + EVENTS

机译:使用RGB +事件的强大对象检测和分类

摘要

Techniques are disclosed to facilitate, in autonomous vehicles, the robust detection and classification of objects in a scene using a static sensors in conjunction with event-based sensors. A trained system architecture may be implemented, and the fusion of both sensors thus allows for the consideration of scenes with overexposure, scenes with underexposure, as well as scenes in which there is no movement. In doing so, the autonomous vehicle may detect and classify objects in conditions in which each sensor, if operating separately, would not otherwise be able to classify (or classify with high uncertainty) due to the sensing environment.
机译:公开技术以促进自主车辆,使用静态传感器与基于事件的传感器结合使用静态传感器的场景中的鲁棒检测和分类。 可以实现训练系统架构,并且两个传感器的融合因此允许考虑具有过度曝光的场景,具有曝光过度的场景,以及没有移动的场景。 在这样做时,自主车辆可以在每个传感器(如果单独操作)中的条件中检测和分类对象,以免由于感测环境而无法对其进行分类(或分类为高不确定性)。

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