论文标题

在室内环境中的贝叶斯惊喜

Bayesian Surprise in Indoor Environments

论文作者

Feld, Sebastian, Sedlmeier, Andreas, Friedrich, Markus, Franz, Jan, Belzner, Lenz

论文摘要

本文提出了一种新的方法,可以使用贝叶斯惊喜的概念在2D楼平面图中识别出意外的结构。考虑到一个人的期望是空间感知的重要方面,我们利用了贝叶斯惊喜理论来稳健地建模期望,因此在建筑结构的背景下感到惊讶。我们使用的是流行的空间语法技术,将定性对象属性转变为定量环境信息。由于Isovists是特定于位置的可见性模式,因此,一系列Isovists描述了沿着空间多个点运动过程中的空间感知。然后,我们在由这些Isovist读数组成的功能空间中使用贝叶斯惊喜。为了证明我们的方法的适用性,我们采用代理当地环境的“快照”,以提供一系列图像,这些图像通过2D室内环境来表征遍历轨迹的图像。这些指纹代表了巡回演出的令人惊讶的地区,描述了遍历的地图,并使室内LB可以更多地专注于重要区域。鉴于这个想法,我们建议将“惊喜”用作基于室内位置的服务(LBS)中上下文的新维度。 LBS的代理商(例如移动机器人或计算机游戏中的非玩家角色)可能会使用上下文惊喜将更多的精力集中在地图的重要区域上,以更好地利用或理解平面图。

This paper proposes a novel method to identify unexpected structures in 2D floor plans using the concept of Bayesian Surprise. Taking into account that a person's expectation is an important aspect of the perception of space, we exploit the theory of Bayesian Surprise to robustly model expectation and thus surprise in the context of building structures. We use Isovist Analysis, which is a popular space syntax technique, to turn qualitative object attributes into quantitative environmental information. Since isovists are location-specific patterns of visibility, a sequence of isovists describes the spatial perception during a movement along multiple points in space. We then use Bayesian Surprise in a feature space consisting of these isovist readings. To demonstrate the suitability of our approach, we take "snapshots" of an agent's local environment to provide a short list of images that characterize a traversed trajectory through a 2D indoor environment. Those fingerprints represent surprising regions of a tour, characterize the traversed map and enable indoor LBS to focus more on important regions. Given this idea, we propose to use "surprise" as a new dimension of context in indoor location-based services (LBS). Agents of LBS, such as mobile robots or non-player characters in computer games, may use the context surprise to focus more on important regions of a map for a better use or understanding of the floor plan.

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