• DocumentCode
    1765158
  • Title

    Robust Component-Based Localizationin Sparse Networks

  • Author

    Xiaoping Wang ; Yunhao Liu ; Zheng Yang ; Kai Lu ; Jun Luo

  • Author_Institution
    Sch. of Comput. Sci., Nat. Univ. of Defense Technol., Changsha, China
  • Volume
    25
  • Issue
    5
  • fYear
    2014
  • fDate
    41760
  • Firstpage
    1317
  • Lastpage
    1327
  • Abstract
    Accurate localization is crucial for wireless ad-hoc and sensor networks. Among the localization schemes, component-based approaches specialize in localization performance. By grouping nodes into increasingly large rigid components, component-based localization algorithms can properly conquer network sparseness and anchor sparseness. However, such design is sensitive to measurement errors. Existing robust localization methods focus on eliminating the positioning error of a single node. Indeed, a single node has two dimensions of freedom in 2D space and only suffers from one type of transformation: translation. As a rigid 2D structure, a component suffers from three possible transformations: translation, rotation, and reflection. A high degree of freedom brings about complicated cases of error productions and difficulties on error controlling. This study is the first work addressing how to deal with ranging noises for component-based methods. By exploiting a set of robust patterns, we present an Error-TOlerant Component-based algorithm (ETOC) that not only inherits the high-performance characteristic of component-based methods, but also achieves robustness of the result. We evaluate ETOC through a real-world sensor network consisting of 120 TelosB motes as well as extensive large-scale simulations. Experiment results show that, comparing with the-state-of-the-art designs, ETOC can work properly in sparse networks and provide more accurate localization results.
  • Keywords
    ad hoc networks; fault tolerance; measurement errors; sensor placement; telecommunication network reliability; wireless sensor networks; 2D space; ETOC; TelosB motes; anchor sparseness; conquer network sparseness; degree of freedom; error control; error production; error tolerant component-based algorithm; measurement errors; nodes grouping; positioning error elimination; reflection; rigid 2D structure; robust component-based localization approach; robust pattern; rotation; sparse networks; structural error tolerance; translation; wireless ad hoc network; wireless sensor network; Algorithm design and analysis; Distance measurement; Educational institutions; Measurement errors; Noise measurement; Reflection; Robustness; Component-based localization; location ambiguity; robust localization; structural error tolerance;
  • fLanguage
    English
  • Journal_Title
    Parallel and Distributed Systems, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1045-9219
  • Type

    jour

  • DOI
    10.1109/TPDS.2013.85
  • Filename
    6484063