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Activity recognition with android phone using mixture-of-experts co-trained with labeled and unlabeled data

机译:使用混合有标签和未标签数据的专家混合技术在Android手机上进行活动识别

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摘要

As the number of smartphone users has grown recently, many context-aware services have been studied and launched. Activity recognition becomes one of the important issues for user adaptive services on the mobile phones. Even though many researchers have attempted to recognize a user's activities on a mobile device, it is still difficult to infer human activities from uncertain, incomplete and insufficient mobile sensor data. We present a method to recognize a person's activities from sensors in a mobile phone using mixture-of-experts (ME) model. In order to train the ME model, we have applied global-local co-training (GLCT) algorithm with both labeled and unlabeled data to improve the performance. The GLCT is a variation of co-training that uses a global model and a local model together. To evaluate the usefulness of the proposed method, we have conducted experiments using real datasets collected from Google Android smartphones. This paper is a revised and extended version of a paper that was presented at HA1S 2011.
机译:随着最近智能手机用户数量的增长,已经研究并推出了许多上下文感知服务。活动识别已成为手机上用户自适应服务的重要问题之一。即使许多研究人员试图在移动设备上识别用户的活动,但仍然难以从不确定,不完整和不足的移动传感器数据中推断出人类活动。我们提出了一种使用专家混合(ME)模型从移动电话中的传感器识别人的活动的方法。为了训练ME模型,我们对标记和未标记的数据都应用了全局局部协同训练(GLCT)算法,以提高性能。 GLCT是共同训练的一种变体,一起使用了全局模型和局部模型。为了评估该方法的有效性,我们使用从Google Android智能手机收集的真实数据集进行了实验。本文是在HA1S 2011上发表的论文的修订和扩展版本。

著录项

  • 来源
    《Neurocomputing》 |2014年第27期|106-115|共10页
  • 作者

    Young-Seol Lee; Sung-Bae Cho;

  • 作者单位

    Department of Computer Science, Yonsei University, 50 Yonsei-ro, Seodaemun-gu, Seoul 120-749, South Korea;

    Department of Computer Science, Yonsei University, 50 Yonsei-ro, Seodaemun-gu, Seoul 120-749, South Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Mixture-of-experts; Co-training; Activity recognition; Android phone;

    机译:专家混合物;联合培训;活动识别;Android手机;

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