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EagleSense:tracking people and devices in interactive spaces using real-time top-view depth-sensing

机译:EagleSense:使用实时顶视图深度感应在交互式空间中跟踪人员和设备

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摘要

Real-time tracking of people's location, orientation and activities is increasingly important for designing novel ubiquitous computing applications. Top-view camera-based tracking avoids occlusion when tracking people while collaborating, but often requires complex tracking systems and advanced computer vision algorithms. To facilitate the prototyping of ubiquitous computing applications for interactive spaces, we developed EagleSense, a real-time human posture and activity recognition system with a single top-view depth sensing camera. We contribute our novel algorithm and processing pipeline, including details for calculating silhouetteextremities features and applying gradient tree boosting classifiers for activity recognition optimised for top-view depth sensing. EagleSense provides easy access to the real-time tracking data and includes tools for facilitating the integration into custom applications. We report the results of a technical evaluation with 12 participants and demonstrate the capabilities of EagleSense with application case studies.
机译:实时跟踪人们的位置,方向和活动对于设计新颖的普适计算应用程序越来越重要。基于顶视图的摄像机跟踪可在协作时跟踪人员时避免遮挡,但通常需要复杂的跟踪系统和高级计算机视觉算法。为了促进交互式空间中无处不在的计算应用程序的原型制作,我们开发了EagleSense,这是一种具有单个顶视图深度感测摄像头的实时人体姿势和活动识别系统。我们贡献了我们新颖的算法和处理流程,包括用于计算轮廓肢体特征和应用梯度树增强分类器以进行针对顶视图深度感测而优化的活动识别的详细信息。 EagleSense可以轻松访问实时跟踪数据,并提供了有助于集成到自定义应用程序中的工具。我们报告了12位参与者的技术评估结果,并通过应用案例研究演示了EagleSense的功能。

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