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Light Sensor Based Vehicle and Pedestrian Detection Method for Wireless Sensor Network

机译:基于光传感器的车辆和行人检测的无线传感器网络方法

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The paper proposes a method, which utilizes light sensors from wireless nodes, to detect moving objects like vehicles or pedestrians. The method is analyzing light intensity of the general red, green, and blue spectrums of visible light from nodes that are placed on a roadside. The proposed aggregation algorithm, based on justified granulation paradigm, adapts exponential forgetting mechanism to descriptive statistic functions (features). This approach allows to reduce memory utilization of wireless node. The aggregated values are used by lightweight state-of-the-art machine learning methods to build profile of moving objects. The method is tuned using heuristic-based genetic algorithm. Advantages of the introduced method were demonstrated in real-world scenarios. Broad experiments were conducted to test various classification approaches and feature subsets. The experimental results confirm that the introduced method can be adopted for sensor node, which can detect objects independently or in cooperation with other nodes (working as classifier ensemble).
机译:本文提出了一种方法,该方法利用来自无线节点的光传感器来检测车辆或行人等移动物体。该方法正在分析来自路旁节点的可见光的一般红色,绿色和蓝色光谱的光强度。提出的基于合理粒度范例的聚集算法将指数遗忘机制适应于描述性统计功能(特征)。这种方法可以减少无线节点的内存利用率。轻量级的最新机器学习方法使用汇总值来构建移动对象的轮廓。该方法是使用基于启发式的遗传算法进行调整的。在实际场景中演示了引入方法的优点。进行了广泛的实验以测试各种分类方法和特征子集。实验结果证明,该方法可用于传感器节点,该传感器节点可以独立或与其他节点协同(作为分类器集合)进行检测。

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