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Intelligent all-day vehicle detection based on decision-level fusion using color and thermal sensors

机译:基于使用颜色和热传感器的决策级融合的智能万天车辆检测

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Recently, research topics involving vehicle detection become popular for the automotive advanced driver assistance systems (ADAS). Vehicle detection is an important part of unmanned vehicle driving. It is particularly challenging in real-world scenarios due to several uncontrollable factors, such as variances in light, weather, and unpredictable scenes. Most vehicle detection techniques focus on using a visible spectrum color camera to carry out day-time vehicle detection, or using an infrared thermal imaging camera to carry out night-time vehicle detection. However, fewer researches for all-day vehicle detection have been done so far. In this paper, we present a novel all-day vehicle detection method, in which both visible and thermal information are used to detect the vehicles separately, and the final decision is made by decision-level fusion. The experimental results demonstrate that the proposed method can effectively detect vehicles in different environments and achieve robust recognition rates.
机译:最近,涉及车辆检测的研究主题是汽车先进驾驶员辅助系统(ADA)的流行。车辆检测是无人驾驶车辆驾驶的重要组成部分。由于几个无法控制的因素,例如光明,天气和不可预测的场景等几个无法控制的因素,它在现实世界方案中尤其具有挑战性。大多数车辆检测技术专注于使用可见光谱彩色相机进行日间时间车辆检测,或者使用红外线热成像相机进行夜间车辆检测。然而,到目前为止已经完成了对全天车辆检测的研究更少。在本文中,我们介绍了一种新的全天车辆检测方法,其中可见和热信息均用于分开检测车辆,并通过决策级融合进行最终决定。实验结果表明,该方法可以有效地检测不同环境中的车辆并实现稳健的识别率。

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