Indoor 3D pedestrian tracking algorithm based on PDR using smarthphone

In this paper, we develop the indoor navigation system based on PDR (Pedestrian Dead Reckoning) using various sensors in smartphone. Usually PDR is consisted of step detection, step length estimation and heading estimation. The issue of PDR is step length estimation and to enhance the accuracy of st...

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Published in2012 12th International Conference on Control, Automation and Systems pp. 1442 - 1445
Main Authors Beomju Shin, Jung Ho Lee, Hyunho Lee, Eungyeong Kim, Jeahun Kim, Seok Lee, Young-su Cho, Sangjoon Park, Taikjin Lee
Format Conference Proceeding
LanguageEnglish
Published IEEE 01.10.2012
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Abstract In this paper, we develop the indoor navigation system based on PDR (Pedestrian Dead Reckoning) using various sensors in smartphone. Usually PDR is consisted of step detection, step length estimation and heading estimation. The issue of PDR is step length estimation and to enhance the accuracy of step length, we apply the walking status recognition algorithm using ANN (Artificial Neuron Network). The features used in ANN are extracted through sensor signals of accelerometer and gyroscope. After recognizing the walking status, it is applied to estimate the step length. And when the status is recognized as stop, even if sensor signal is generated by redundant motion or movement of pedestrian, the moved distance is not calculated additionally and distance error is not increased. We use the barometric pressure sensor to extend the positioning area to whole building. To verify the proposed indoor navigation system, we implemented the application for android and conducted the experiment. Through the results, we demonstrated the accuracy of our system.
AbstractList In this paper, we develop the indoor navigation system based on PDR (Pedestrian Dead Reckoning) using various sensors in smartphone. Usually PDR is consisted of step detection, step length estimation and heading estimation. The issue of PDR is step length estimation and to enhance the accuracy of step length, we apply the walking status recognition algorithm using ANN (Artificial Neuron Network). The features used in ANN are extracted through sensor signals of accelerometer and gyroscope. After recognizing the walking status, it is applied to estimate the step length. And when the status is recognized as stop, even if sensor signal is generated by redundant motion or movement of pedestrian, the moved distance is not calculated additionally and distance error is not increased. We use the barometric pressure sensor to extend the positioning area to whole building. To verify the proposed indoor navigation system, we implemented the application for android and conducted the experiment. Through the results, we demonstrated the accuracy of our system.
Author Taikjin Lee
Jung Ho Lee
Young-su Cho
Jeahun Kim
Hyunho Lee
Eungyeong Kim
Sangjoon Park
Seok Lee
Beomju Shin
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  surname: Beomju Shin
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  surname: Jung Ho Lee
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  surname: Hyunho Lee
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  surname: Eungyeong Kim
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  surname: Jeahun Kim
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  surname: Seok Lee
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  surname: Young-su Cho
  fullname: Young-su Cho
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  organization: Vehicle/Ship-IT Convergence Res. Dept., Electron. & Telecommun. Res. Inst., Daejeon, South Korea
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  surname: Sangjoon Park
  fullname: Sangjoon Park
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  organization: Vehicle/Ship-IT Convergence Res. Dept., Electron. & Telecommun. Res. Inst., Daejeon, South Korea
– sequence: 9
  surname: Taikjin Lee
  fullname: Taikjin Lee
  email: taikjin@kist.re.kr
  organization: Sensor Syst. Res. Center, Korea Inst. of Sci. & Technol. (KIST), Seoul, South Korea
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Snippet In this paper, we develop the indoor navigation system based on PDR (Pedestrian Dead Reckoning) using various sensors in smartphone. Usually PDR is consisted...
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StartPage 1442
SubjectTerms Accelerometers
android smartphone
ANN
Artificial neural networks
Estimation
Floors
Gyroscopes
Indoor navigation system
Legged locomotion
Navigation
PDR
Title Indoor 3D pedestrian tracking algorithm based on PDR using smarthphone
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