Multivariable fuzzy inference system for fingerprinting indoor localization
نویسندگان
چکیده
The emergence of wireless sensor network as has raised the need for cheap wireless indoor localization technique This paper considers the problem of fingerprinting indoor localization based on signal strength measurements RSS. A new approach based on Fuzzy logic has been put forward. The proposal makes use of k-nearest neighbor classification in signal space. The localization of target node is then determined as a weighted combination of nearest fingerprints. The weights are determined using Takagi-Sugeno fuzzy controller with two inputs. A new enhancement of K-nearest neighbor based on triangular area measurements to outlier some miss elected neighbors has been proposed to enhance the accuracy of location estimation. The performances of the developed estimation algorithm have been evaluated using both Monte Carlo simulations and real testbed scenarios while compared to other alternative approaches.
منابع مشابه
The University of Birmingham (Live System) Multivariable fuzzy inference system for fingerprinting indoor localization
The emergence of wireless sensor network as has raised the need for cheap wireless indoor localization technique This paper considers the problem of fingerprinting indoor localization based on signal strength measurements RSS. A new approach based on Fuzzy logic has been put forward. The proposal makes use of k-nearest neighbor classification in signal space. The localization of target node is ...
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ورودعنوان ژورنال:
- Fuzzy Sets and Systems
دوره 269 شماره
صفحات -
تاریخ انتشار 2015