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A Plane Tracker for AEC-automation Applications

机译:用于AEC自动化应用程序的平面跟踪器

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Purpose We propose a new registration algorithm and computing framework, the keg tracker, for estimating a camera's position and orientation for a general class of mobile context-aware applications in architecture, engineering, and construction (AEC). Method By studying two classic types of natural marker-based registration algorithms, homography-from-detection and homography-from-tracking, and overcoming their specific limitations of jitter and drift, our method applies two global constraints (geometric and appearance) to prevent tracking errors from propagating between consecutive frames. Results & Discussion: The proposed method is able to achieve an increase in both stability and accuracy, while being fast enough for real-time applications. Experiments on both synthesized and real world test cases demonstrate that our method is superior to existing state-of-the-art registration algorithms. The paper also explores several AEC-applications of our method in context-aware computing and desktop augmented reality.
机译:目的,我们提出了一个新的注册算法和计算框架,小桶跟踪器,用于估计摄像机的位置和方向的一般类的建筑,工程,施工(AEC)的移动情境感知应用。方法通过研究两个典型类型的天然基于标记的配准算法,单应性-从检测和单应性-从跟踪,并克服抖动和漂移的其特定的限制,我们的方法应用于两个全局约束(几何和外观),以防止跟踪从连续帧之间传播的误差。结果和讨论:该方法能够实现在稳定性和精度的提高,而足够快的实时应用。在两个合成和现实世界的测试用例实验表明我们的方法优于国家的最先进的现有配准算法。本文还探讨了在上下文感知计算和桌面增强现实我们的方法的几个AEC-应用。

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