论文标题

自我-CH:使用以自我为中心的愿景的访客行为无能为力的数据集和基本任务

EGO-CH: Dataset and Fundamental Tasks for Visitors BehavioralUnderstanding using Egocentric Vision

论文作者

Ragusa, Francesco, Furnari, Antonino, Battiato, Sebastiano, Signorello, Giovanni, Farinella, Giovanni Maria

论文摘要

为文化遗址的访客配备可穿戴设备,可以轻松收集有关其偏好的信息,这些信息可以利用,以改善具有增强现实的文化产品的成果。此外,可以使用计算机视觉和机器学习来处理以自我为中心的视频,以实现对访客行为的自动分析。可以在线使用推论的信息来协助访问者和离线支持该网站的经理。尽管这种技术对文化遗产产生了积极影响,但由于适合研究所考虑的问题的公共数据集数量有限,目前该主题目前被研究了。为了解决这个问题,在本文中,我们建议以自我文化遗产(EGO-CH),这是第一个以自我为中心视频的数据集,以供访客在文化网站中的行为理解。该数据集已在两个文化网站中收集,其中包括$ 70 $主题的27美元以上的视频,标签为26美元,超过$ 200 $ $。由$ 60 $的视频组成的大部分数据集与真实访问者填写的调查有关。为了鼓励对该主题的研究,我们提出了$ 4 $具有挑战性的任务(基于房间的本地化,兴趣点/对象识别,对象检索和调查预测),可用于了解访问者的行为并在数据集中报告基线结果。

Equipping visitors of a cultural site with a wearable device allows to easily collect information about their preferences which can be exploited to improve the fruition of cultural goods with augmented reality. Moreover, egocentric video can be processed using computer vision and machine learning to enable an automated analysis of visitors' behavior. The inferred information can be used both online to assist the visitor and offline to support the manager of the site. Despite the positive impact such technologies can have in cultural heritage, the topic is currently understudied due to the limited number of public datasets suitable to study the considered problems. To address this issue, in this paper we propose EGOcentric-Cultural Heritage (EGO-CH), the first dataset of egocentric videos for visitors' behavior understanding in cultural sites. The dataset has been collected in two cultural sites and includes more than $27$ hours of video acquired by $70$ subjects, with labels for $26$ environments and over $200$ different Points of Interest. A large subset of the dataset, consisting of $60$ videos, is associated with surveys filled out by real visitors. To encourage research on the topic, we propose $4$ challenging tasks (room-based localization, point of interest/object recognition, object retrieval and survey prediction) useful to understand visitors' behavior and report baseline results on the dataset.

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