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Recognition of Activities of Daily Living with Egocentric Vision: A Review

机译:自我中心视力对日常生活活动的认可:综述

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Video-based recognition of activities of daily living (ADLs) is being used in ambient assisted living systems in order to support the independent living of older people. However, current systems based on cameras located in the environment present a number of problems, such as occlusions and a limited field of view. Recently, wearable cameras have begun to be exploited. This paper presents a review of the state of the art of egocentric vision systems for the recognition of ADLs following a hierarchical structure: motion, action and activity levels, where each level provides higher semantic information and involves a longer time frame. The current egocentric vision literature suggests that ADLs recognition is mainly driven by the objects present in the scene, especially those associated with specific tasks. However, although object-based approaches have proven popular, object recognition remains a challenge due to the intra-class variations found in unconstrained scenarios. As a consequence, the performance of current systems is far from satisfactory.
机译:基于视频的日常生活活动(ADL)识别正在环境辅助生活系统中使用,以支持老年人的独立生活。然而,基于位于环境中的照相机的当前系统存在许多问题,例如遮挡和有限的视野。近来,可穿戴式相机已经开始被利用。本文介绍了一种以自我为中心的视觉系统的最新发展状况,该系统遵循以下层次结构来识别ADL:运动,动作和活动级别,其中每个级别提供更高的语义信息并涉及更长的时间范围。当前以自我为中心的视觉文献表明,ADL的识别主要由场景中存在的对象(尤其是与特定任务相关的对象)驱动。但是,尽管事实证明基于对象的方法很受欢迎,但是由于在不受约束的场景中发现的类内差异,对象识别仍然是一个挑战。结果,当前系统的性能远远不能令人满意。

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