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Context-Aware Mouse Behavior Recognition Using Hidden Markov Models

  • Zheheng Jiang*
  • , Danny Crookes
  • , Brian D. Green
  • , Yunfeng Zhao
  • , Haiping Ma
  • , Ling Li
  • , Shengping Zhang
  • , Dacheng Tao
  • , Huiyu Zhou
  • *Corresponding author for this work
  • University of Leicester
  • Queen's University Belfast
  • Shaoxing University
  • University of Kent
  • School of Computer Science and Technology, Harbin Institute of Technology
  • The University of Sydney

Research output: Contribution to journalArticlepeer-review

Abstract

Automated recognition of mouse behaviors is crucial in studying psychiatric and neurologic diseases. To achieve this objective, it is very important to analyze the temporal dynamics of mouse behaviors. In particular, the change between mouse neighboring actions is swift in a short period. In this paper, we develop and implement a novel hidden Markov model (HMM) algorithm to describe the temporal characteristics of mouse behaviors. In particular, we here propose a hybrid deep learning architecture, where the first unsupervised layer relies on an advanced spatial-temporal segment Fisher vector encoding both visual and contextual features. Subsequent supervised layers based on our segment aggregate network are trained to estimate the state-dependent observation probabilities of the HMM. The proposed architecture shows the ability to discriminate between visually similar behaviors and results in high recognition rates with the strength of processing imbalanced mouse behavior datasets. Finally, we evaluate our approach using JHuang's and our own datasets, and the results show that our method outperforms other state-of-the-art approaches.

Original languageEnglish
Article number8488486
Pages (from-to)1133-1148
Number of pages16
JournalIEEE Transactions on Image Processing
Volume28
Issue number3
DOIs
StatePublished - Mar 2019
Externally publishedYes

Keywords

  • Fisher vector
  • Mouse behaviors
  • hidden Markov model
  • segment aggregate network
  • spatial-temporal segment

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