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A high-speed color-based object detection algorithm for quayside crane operator assistance system

机译:用于码头起重机操作员辅助系统的高速颜色对象检测算法

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Improvement to user interface technology for port crane operators can lead to safer and more ergonomie environments for cargo transport. An accurate and responsive container-handling guidance system can increase productivity and reduces costs. In this work, a vision-based assistive system for quayside crane operator is developed for collision warning. The system applies a new object edge detection algorithm, called Edge Approaching, to achieve faster detection rate in real-time using a stand-alone embedded system that can be easily integrated to an existing crane interface. Experiments are conducted on a scaled testbed to validate the concept. The proposed algorithms significantly increase the detection rate from as compared to the conventional Canny edge detection and Hough transform method, while maintaining a high accuracy rate of 99%.
机译:对港口起重机运营商的用户界面技术的改进可能导致货物运输更安全和更多的人体组织环境。准确和响应于响应的容器处理引导系统可以提高生产率并降低成本。在这项工作中,开发了一种用于码头起重机操作员的视觉辅助系统,用于碰撞警告。该系统应用一个新的对象边缘检测算法,称为边缘接近,使用独立的嵌入式系统实时实现更快的检测率,这些系统可以很容易地集成到现有的起重机接口。实验在缩放测试平台上进行,以验证该概念。与传统的罐头边缘检测和霍夫变换方法相比,所提出的算法显着增加了检测率,同时保持高精度率为99 %。

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