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Moving Object Detection in Heterogeneous Conditions in Embedded Systems

机译:嵌入式系统异构条件下的运动目标检测

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摘要

This paper presents a system for moving object exposure, focusing on pedestrian detection, in external, unfriendly, and heterogeneous environments. The system manipulates and accurately merges information coming from subsequent video frames, making small computational efforts in each single frame. Its main characterizing feature is to combine several well-known movement detection and tracking techniques, and to orchestrate them in a smart way to obtain good results in diversified scenarios. It uses dynamically adjusted thresholds to characterize different regions of interest, and it also adopts techniques to efficiently track movements, and detect and correct false positives. Accuracy and reliability mainly depend on the overall receipt, i.e., on how the software system is designed and implemented, on how the different algorithmic phases communicate information and collaborate with each other, and on how concurrency is organized. The application is specifically designed to work with inexpensive hardware devices, such as off-the-shelf video cameras and small embedded computational units, eventually forming an intelligent urban grid. As a matter of fact, the major contribution of the paper is the presentation of a tool for real-time applications in embedded devices with finite computational (time and memory) resources. We run experimental results on several video sequences (both home-made and publicly available), showing the robustness and accuracy of the overall detection strategy. Comparisons with state-of-the-art strategies show that our application has similar tracking accuracy but much higher frame-per-second rates.
机译:本文提出了一种在外部,不友好和异构环境中移动物体曝光的系统,重点是行人检测。该系统可操纵并准确合并来自后续视频帧的信息,从而在每个单个帧中进行少量计算。它的主要特征是将几种众所周知的运动检测和跟踪技术相结合,并以一种巧妙的方式对它们进行编排,从而在多种情况下获得良好的效果。它使用动态调整的阈值来表征感兴趣的不同区域,并且还采用了有效跟踪运动,检测和纠正误报的技术。准确性和可靠性主要取决于整体收据,即取决于软件系统的设计和实现方式,不同算法阶段如何传达信息和彼此协作以及并发性如何组织。该应用程序专门设计用于与廉价的硬件设备一起使用,例如现成的摄像机和小型嵌入式计算单元,最终形成了智能城市网格。实际上,本文的主要贡献是介绍了一种用于具有有限计算(时间和内存)资源的嵌入式设备中实时应用程序的工具。我们在几个视频序列(自制的和公开的)上运行了实验结果,显示了整体检测策略的鲁棒性和准确性。与最新技术的比较表明,我们的应用程序具有类似的跟踪精度,但每秒帧率更高。

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