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Triggering Imagery with Unattended Seismic/Magnetic Sensing for Vehicle Classification

机译:用无人值守的地震/磁感测到车辆分类触发图像

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Acoustic sensing has traditionally been the preferred method for the detection and classification of ground vehicles. However, environmental conditions such as wind and rain pose a great challenge to prevent false detections and misclassifications. The recent work of McQ System Innovations has demonstrated the ability to successfully detect and classify vehicles with the fusion of seismic and magnetic sensing without false detections and only a small percentage of misclassifications. The algorithms developed were designed to detect single vehicles as well as vehicles in a convoy. Based on the classification of each vehicle, an imager can be triggered to find the best frame of the target, and store the image in onboard memory to send back to an operator display. The methodology of the algorithms designed for seismic / magnetic detection and classification of vehicles is shown, as well as results of testing the algorithms running in a remote sensor.
机译:声学传感传统上是用于检测和分类地面车辆的优选方法。然而,风雨和雨等环境条件构成了极大的挑战,以防止虚假检测和错误分类。最近MCQ系统创新的工作已经证明了能够在没有假检测的情况下成功地检测和分类车辆的融合,并且只有少量的错误分类。该算法设计用于检测单辆车以及车队中的车辆。基于每个车辆的分类,可以触发成像器以找到目标的最佳帧,并将图像存储在板载存储器中以发送回到操作员显示。示出了用于抗震/磁检测和车辆分类的算法的方法,以及测试在遥控器中运行的算法的结果。

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