Publication | Closed Access
Parameter estimation and classification of censored Gaussian data with application to WiFi indoor positioning
20
Citations
8
References
2013
Year
Unknown Venue
Location TrackingParameter EstimationEngineeringLocation EstimationWifi Indoor PositioningSignal Strength MeasurementsLocalizationStatistical Signal ProcessingData ScienceLocation AwarenessEstimation TheoryStatisticsMaximum LikelihoodDensity EstimationCensored DataComputer ScienceCensored Gaussian DataRf LocalizationSignal ProcessingStatistical InferenceIndoor Positioning System
In this paper, we consider the Maximum Likelihood (ML) estimation of the parameters of a GAUSSIAN in the presence of censored, i.e., clipped data. We show that the resulting Expectation Maximization (EM) algorithm delivers virtually biasfree and efficient estimates, and we discuss its convergence properties. We also discuss optimal classification in the presence of censored data. Censored data are frequently encountered in wireless LAN positioning systems based on the fingerprinting method employing signal strength measurements, due to the limited sensitivity of the portable devices. Experiments both on simulated and real-world data demonstrate the effectiveness of the proposed algorithms.
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