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Recognizing interleaved and concurrent activities using qualitative and quantitative temporal relationships

机译:使用定性和定量的时间关系识别交错和并发的活动

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The majority of approaches to activity recognition in sensor environments are either based on manually constructed rules for recognizing activities or lack the ability to incorporate complex temporal dependencies. Furthermore, in many cases, the rather unrealistic assumption is made that the subject carries out only one activity at a time. In this paper, we describe the use of Markov logic as a declarative framework for recognizing interleaved and concurrent activities incorporating both input from pervasive lightweight sensor technology and common-sense background knowledge. In particular, we assess its ability to learn statistical-temporal models from training data and to combine these models with background knowledge to improve the overall recognition accuracy. We also show the viability and the benefit of exploiting both qualitative and quantitative temporal relationships like the duration of the activities and their temporal order. To this end, we propose two Markov logic formulations for inferring the foreground activity as well as each activities' start and end times. We evaluate the approach on an established dataset where it outperforms state-of-the-art algorithms for activity recognition.
机译:传感器环境中活动识别的大多数方法要么基于手动构造的用于识别活动的规则,要么缺乏合并复杂的时间依赖性的能力。此外,在许多情况下,做出了不切实际的假设,即对象一次仅执行一项活动。在本文中,我们描述了使用马尔可夫逻辑作为一种识别框架,该框架结合了普及的轻量级传感器技术的输入和常识背景知识来识别交错和并发的活动。特别是,我们评估其从训练数据中学习统计时间模型并将这些模型与背景知识结合起来以提高总体识别准确性的能力。我们还展示了利用定性和定量时间关系(如活动的持续时间及其时间顺序)的可行性和益处。为此,我们提出了两种马尔可夫逻辑公式来推断前景活动以及每个活动的开始和结束时间。我们在已建立的数据集上评估该方法,该方法优于用于活动识别的最新算法。

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