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Remember and transfer what you have learned - recognizing composite activities based on activity spotting

机译:记住并转移您学到的知识-根据活动发现识别复合活动

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Activity recognition approaches have shown to enable good performance for a wide variety of applications. Most approaches rely on machine learning techniques requiring significant amounts of training data for each application. Consequently they have to be retrained for each new application limiting the real-world applicability of today's activity recognition methods. This paper explores the possibility to transfer learned knowledge from one application to others thereby significantly reducing the required training data for new applications. To achieve this transferability the paper proposes a new layered activity recognition approach that lends itself to transfer knowledge across applications. Besides allowing to transfer knowledge across applications this layered approach also shows improved recognition performance both of composite activities as well as of activity events.
机译:活动识别方法已显示为多种应用程序提供良好的性能。大多数方法依赖于机器学习技术,每个应用程序都需要大量的训练数据。因此,必须为每种新应用程序对它们进行重新培训,从而限制了当今活动识别方法在现实世界中的适用性。本文探讨了将学习到的知识从一种应用程序转移到另一种应用程序的可能性,从而显着减少了新应用程序所需的培训数据。为了实现这种可移植性,本文提出了一种新的分层活动识别方法,该方法可使其自身跨应用程序转移知识。除了允许在应用程序之间传递知识外,这种分层方法还显示了复合活动以及活动事件的识别性能得到改善。

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