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Poster abstract: EIL: an environment-independent device-free passive localization approach

Published: 15 April 2014 Publication History

Abstract

Most previous Device-free Passive Localization (DFL) methods are learning based and they assume the distribution of Received Radio Signal (RSS) distorted by an object is fixed across time. However, the signals significantly vary over time and the pre-obtained radio map (or prior knowledge) outdated in the localization phase, thus causing the localization accuracy decrease. To cope with this problem, this poster proposes, EIL, an environment-independent DFL approach which can improve the system robustness and localization accuracy by eliminating the interference of environment on RSS over time in both the training phase and the localization phase. Through both the extensive experiments and simulations, EIL keeps a range of 0.5m to 0.6m localization errors for 90% locations over time.

References

[1]
M. Youssef, M. Mah, and A. Agrawala, ''Challenges: device-free passive localization for wireless environments,'' in Proceedings of the 13th annual ACM international conference on Mobile computing and networking, pp. 222--229, ACM, 2007.
[2]
D. Zhang, Y. Liu, and L. M. Ni, ''Rass: A real-time, accurate and scalable system for tracking transceiver-free objects,'' in PerCom'11, pp. 197--204, IEEE, 2011.
[3]
K. W. Kolodziej and J. Hjelm, Local positioning systems: LBS applications and services. CRC press, 2010.
[4]
T. S. Rappaport et al., Wireless communications: principles and practice, vol. 2. Prentice Hall PTR New Jersey, 1996.
[5]
Z. Wang, E. K. Tameh, and A. Nix, ''Simulating correlated shadowing in mobile multihop relay/ad-hoc networks,'' 2006.
[6]
S. Salvador and P. Chan, ''Toward accurate dynamic time warping in linear time and space,'' Intelligent Data Analysis, vol. 11, no. 5, pp. 561--580, 2007.

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  1. Poster abstract: EIL: an environment-independent device-free passive localization approach

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      Published In

      cover image ACM Conferences
      IPSN '14: Proceedings of the 13th international symposium on Information processing in sensor networks
      April 2014
      368 pages
      ISBN:9781479931460

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      IEEE Press

      Publication History

      Published: 15 April 2014

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      Author Tags

      1. dfl
      2. environment-independent

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      IPSN '14 Paper Acceptance Rate 23 of 111 submissions, 21%;
      Overall Acceptance Rate 143 of 593 submissions, 24%

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