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Sequential pattern mining of geo-tagged photos with an arbitrary regions-of-interest detection method

机译:带有感兴趣区域检测方法的地理标记照片的顺序模式挖掘

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摘要

Geo-tagged photos leave trails of movement that form trajectories. Regions-of-interest detection identifies interesting hot spots where many trajectories visit and large geo-tagged photos are uploaded. Extraction of exact shapes of regions-of-interest is a key step to understanding these trajectories and mining sequential trajectory patterns. This article introduces an efficient and effective grid-based regions-of-interest detection method that is linear to the number of grid cells, and is able to detect arbitrary shapes of regions-of-interest. The proposed algorithm is combined with sequential pattern mining to reveal sequential trajectory patterns. Experimental results reveal quality regions-of-interest and promising sequential trajectory patterns that demonstrate the benefits of our algorithm.
机译:带有地理标签的照片会留下形成轨迹的运动轨迹。感兴趣区域检测可识别有趣的热点,许多轨迹会在该热点上访问并上传带有地理标签的大型照片。提取感兴趣区域的精确形状是了解这些轨迹和挖掘顺序轨迹模式的关键步骤。本文介绍了一种高效且基于网格的感兴趣区域检测方法,该方法与网格单元的数量呈线性关系,并且能够检测感兴趣区域的任意形状。该算法与顺序模式挖掘相结合,揭示了顺序轨迹模式。实验结果表明,高质量的关注区域和有希望的顺序轨迹模式证明了我们算法的优势。

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