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Understanding Compatibility-based Classifier Personalization in Activity Recognition

机译:了解活动识别中基于兼容性的分类器个性化

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摘要

Personalization related research has been conducted for decades with the objective of investigating personal-level effectiveness in irregular or abnormal cases among many types of domains. However, the activity recognition community generally investigates one-fits-all model, i.e., a single recognition model for all people and suffers from poor performance generalization or a huge amount of training data for high generalization. In this paper, we propose Compatibility-based classifier personalization (CbCP) as a subject-dependent activity recognition method that uses the classifier with the highest compatibility (similarity) with a particular user. Furthermore, we explore the effectiveness of classifier personalization through a particular group of activities, which results in a hierarchical recognition model. We present a comparative evaluation of 1) the traditional one-fits-all classifier vs. CbCP models and 2) compatibility evaluation through all activities (non-hierarchical classification) vs. a group of activities (hierarchical classification). The results of the two public datasets imply the effectiveness of compatibility-based approach for a hierarchical classifier formation.
机译:个性化的相关研究已经几十年,其目的调查许多类型的域间不规则或不正常的情况下,个人层面的有效性已经进行。然而,活动识别界普遍调查一个一劳永逸的模式,即,从性能泛化差或一个巨大的训练数据的高度概括量所有的人和患有单一识别模型。在本文中,我们提出了一种基于兼容性分类器个性化(CBCP),其使用具有与特定用户的最高兼容性(相似性)分类受试者依赖性活性识别方法。此外,我们通过一个特定群体的活动,导致分级识别模型探索分类个性化的有效性。我们提出的1对比评测)传统的一个一劳永逸的分类与CBCP模型和2)兼容性评估通过对一组活动(分级分类)的所有活动(非分层分类)。两个公共数据集的结果意味着基于兼容性的方法的用于分层分类器形成的有效性。

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