Improved Visible Light-Based Indoor Positioning System Using Machine Learning Classification and Regression
Recently, indoor positioning systems have attracted a great deal of research attention, as they have a variety of applications in the fields of science and industry. In this study, we propose an innovative and easily implemented solution for indoor positioning. The solution is based on an indoor vis...
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| Published in | Applied sciences Vol. 9; no. 6; p. 1048 |
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| Main Authors | , |
| Format | Journal Article |
| Language | English |
| Published |
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MDPI AG
2019
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| Online Access | Get full text |
| ISSN | 2076-3417 2076-3417 |
| DOI | 10.3390/app9061048 |
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| Abstract | Recently, indoor positioning systems have attracted a great deal of research attention, as they have a variety of applications in the fields of science and industry. In this study, we propose an innovative and easily implemented solution for indoor positioning. The solution is based on an indoor visible light positioning system and dual-function machine learning (ML) algorithms. Our solution increases positioning accuracy under the negative effect of multipath reflections and decreases the computational time for ML algorithms. Initially, we perform a noise reduction process to eliminate low-intensity reflective signals and minimize noise. Then, we divide the floor of the room into two separate areas using the ML classification function. This significantly reduces the computational time and partially improves the positioning accuracy of our system. Finally, the regression function of those ML algorithms is applied to predict the location of the optical receiver. By using extensive computer simulations, we have demonstrated that the execution time required by certain dual-function algorithms to determine indoor positioning is decreased after area division and noise reduction have been applied. In the best case, the proposed solution took 78.26% less time and provided a 52.55% improvement in positioning accuracy. |
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| AbstractList | Recently, indoor positioning systems have attracted a great deal of research attention, as they have a variety of applications in the fields of science and industry. In this study, we propose an innovative and easily implemented solution for indoor positioning. The solution is based on an indoor visible light positioning system and dual-function machine learning (ML) algorithms. Our solution increases positioning accuracy under the negative effect of multipath reflections and decreases the computational time for ML algorithms. Initially, we perform a noise reduction process to eliminate low-intensity reflective signals and minimize noise. Then, we divide the floor of the room into two separate areas using the ML classification function. This significantly reduces the computational time and partially improves the positioning accuracy of our system. Finally, the regression function of those ML algorithms is applied to predict the location of the optical receiver. By using extensive computer simulations, we have demonstrated that the execution time required by certain dual-function algorithms to determine indoor positioning is decreased after area division and noise reduction have been applied. In the best case, the proposed solution took 78.26% less time and provided a 52.55% improvement in positioning accuracy. For indoor positioning, there are several possible options, including WiFi [10,11], Zigbee-based internet of things (IoT) [12], Bluetooth [13], radio frequency identification (RFID) [14], and camera-based solutions [15]. The logistic regression classifier has been used to improve the localization accuracy of a fingerprint-based DFL in a changing environment [16], and an extreme ML algorithm with parameterized geometrical feature extraction for DFL is also suggested in Reference [17]. Besides reducing positioning errors, the analysis and optimization of other parameters, such as the receiver angle [19] and the LED-ID detection accuracy [20], also contribute significantly to the quality of the system, especially when carried out with the support of ML. [...]the conclusion is considered in Section 6. |
| Author | Tran, Huy Q. Ha, Cheolkeun |
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| Snippet | Recently, indoor positioning systems have attracted a great deal of research attention, as they have a variety of applications in the fields of science and... For indoor positioning, there are several possible options, including WiFi [10,11], Zigbee-based internet of things (IoT) [12], Bluetooth [13], radio frequency... |
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| SubjectTerms | Accuracy Algorithms Artificial intelligence Classification Global positioning systems GPS indoor positioning system Internet of Things Light emitting diodes Machine learning machine learning classification machine learning regression Methods multipath reflections Noise Radio frequency identification Receivers & amplifiers signal pre-processing visible light |
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| Title | Improved Visible Light-Based Indoor Positioning System Using Machine Learning Classification and Regression |
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