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Low-Cost Indoor Localization System Combining Multilateration and Kalman Filter

Leonardo Sestrem, Ohara Kerusauskas Rayel, Paulo Leitão

Year
2021
Citations
14

Abstract

Indoor localization systems play an important role to track objects during their life-cycle in indoor environments, e.g., related to retail, logistics and mobile robotics. These positioning systems use several techniques and technologies to estimate the position of each object, and face several requirements such as position accuracy, security, range of coverage, energy consumption and cost. This paper describes a practical implementation of a BLE (Bluetooth Low Energy) based localization system that combines multilateration and Kalman filter techniques to achieve a low cost solution, maintaining a good position accuracy. The proposed approach was experimentally tested in an indoor environment, with the achieved results showing a clear low cost system presenting an increase of the estimated position accuracy by 10% for an average error of 2.33 meters.

Keywords

MultilaterationComputer scienceKalman filterReal-time computingIndoor positioning systemPosition (finance)Energy consumptionPositioning systemBluetoothArtificial intelligence

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