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Information Journal Paper

Title

Human Activity Recognition using Switching Structure Model

Pages

  1-14

Abstract

 To communicate with people interactive systems often need to understand human activities in advance. However, recognizing activities in advance is a very challenging task, because people perform their activities in different ways, also, some activities are simple while others are complex and comprised of several smaller atomic sub-activities. In this paper, we use skeletons captured from low-cost depth RGB-D sensors as high-level descriptions of the human body. We propose a method capable of recognizing simple and complex human activities by formulating it as a structured prediction task using Probabilistic graphical models (PGM). We test our method on three popular datasets: CAD-60, UT-Kinect, and Florence 3D. These datasets cover both simple and complex activities. Also, our method is sensitive to clustering methods that are used to determine the middle states, we evaluate test different clustering, methods.

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    APA: Copy

    Arzani, M.M., FATHY, M., & Azirani, A.A.. (2020). Human Activity Recognition using Switching Structure Model. NASHRIYYAH -I MUHANDISI -I BARQ VA MUHANDISI -I KAMPYUTAR -I IRAN, B- MUHANDISI -I KAMPYUTAR, 18(1 ), 1-14. SID. https://sid.ir/paper/228427/en

    Vancouver: Copy

    Arzani M.M., FATHY M., Azirani A.A.. Human Activity Recognition using Switching Structure Model. NASHRIYYAH -I MUHANDISI -I BARQ VA MUHANDISI -I KAMPYUTAR -I IRAN, B- MUHANDISI -I KAMPYUTAR[Internet]. 2020;18(1 ):1-14. Available from: https://sid.ir/paper/228427/en

    IEEE: Copy

    M.M. Arzani, M. FATHY, and A.A. Azirani, “Human Activity Recognition using Switching Structure Model,” NASHRIYYAH -I MUHANDISI -I BARQ VA MUHANDISI -I KAMPYUTAR -I IRAN, B- MUHANDISI -I KAMPYUTAR, vol. 18, no. 1 , pp. 1–14, 2020, [Online]. Available: https://sid.ir/paper/228427/en

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