基于智能手机感知数据的心理压力评估方法

Translated title of the contribution: Mental Stress Assessment Approach Based on Smartphone Sensing Data
  • Feng Wang
  • , Yasha Wang
  • , Jiangtao Wang
  • , Haoyi Xiong
  • , Junfeng Zhao
  • , Daqing Zhang

Research output: Contribution to journalArticlepeer-review

Abstract

Mental stress is harmful on individuals' physical and mental well-being. It is often easy to be overlooked in the early stage, leading to serious problems. Therefore, it is crucial to detect stress before it evolves into severe problems. Traditional stress detection methods are based on either questionnaires or professional devices, which are time-consuming, costly and intrusive. With the popularity of smartphones with various embedded sensors, which can capture users' context data contains movement, sound, location and so on, it is an alternative way to access users' behavior by smartphones, which is less intrusive. This paper proposes an automatic and non-intrusive stress detection approach based on mobile sensing data captured by smartphones. By extracting reasonable features from the perceived data, a more efficient psychological stress assessment method is proposed. First, we generate lots of features represent users' behavior and explore the correlation between mobile sensing data and stress, then identify discriminative features. Second, we further develop a semi-supervised learning based stress detection model. Specifically, we use techniques such as co-training and random forest to deal with insufficient data. Finally, we evaluate our model based on the StudentLife dataset, and the experimental results verify the advantages of our approach over other baselines.

Translated title of the contributionMental Stress Assessment Approach Based on Smartphone Sensing Data
Original languageChinese (Traditional)
Pages (from-to)611-622
Number of pages12
JournalJisuanji Yanjiu yu Fazhan/Computer Research and Development
Volume56
Issue number3
DOIs
Publication statusPublished - 1 Mar 2019
Externally publishedYes

Keywords

  • Automatic detection
  • Context awareness
  • Feature engineering
  • Machine learning
  • Mental stress

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