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Functional Workspace Optimization via Learning Personal Preferences from Virtual Experiences

机译:通过从虚拟体验中学习个人偏好,功能工作区优化

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摘要

The functionality of a workspace is one of the most important considerations in both virtual world design and interior design. To offer appropriate functionality to the user, designers usually take some general rules into account, e.g., general workflow and average stature of users, which are summarized from the population statistics. Yet, such general rules cannot reflect the personal preferences of a single individual, which vary from person to person. In this paper, we intend to optimize a functional workspace according to the personal preferences of the specific individual who will use it. We come up with an approach to learn the individual's personal preferences from his activities while using a virtual version of the workspace via virtual reality devices. Then, we construct a cost function, which incorporates personal preferences, spatial constraints, pose assessments, and visual field. At last, the cost function is optimized to achieve an optimal layout. To evaluate the approach, we experimented with different settings. The results of the user study show that the workspaces updated in this way better fit the users.
机译:工作空间的功能是虚拟世界设计和室内设计中最重要的考虑之一。为了向用户提供适当的功能,设计人员通常考虑一些一般规则,例如,从人口统计中总结的用户的一般工作流和平均身材。然而,这种一般规则无法反映单个个人的个人偏好,这些人因人民而异。在本文中,我们打算根据将使用它的特定个人的个人偏好优化功能工作空间。我们提出了一种方法来通过虚拟现实设备使用虚拟版本的工作空间,从他的活动中了解个人的个人喜好。然后,我们构建一个成本函数,它包含个人偏好,空间约束,姿势评估和视野。最后,优化成本函数以实现最佳布局。为了评估方法,我们尝试了不同的设置。用户学习的结果表明,工作区以这种方式更新更好地适合用户。

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