Channel State Reconstruction Using Multilevel Discrete Wavelet Transform for Improved Fingerprinting-based Indoor Localization
碩士 === 元智大學 === 電機工程學系 === 104 === Recently, channel state information (CSI) has been adopted as an enhanced wireless channel measurement instead of received signal strength (RSS) for indoor WiFi positioning systems. However, although CSI contains richer location information, a challenging problem...
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ndltd-TW-104YZU054420402017-08-12T04:35:29Z http://ndltd.ncl.edu.tw/handle/52081761557596038329 Channel State Reconstruction Using Multilevel Discrete Wavelet Transform for Improved Fingerprinting-based Indoor Localization 基於通道狀態重建指紋識別之室內定位技術 Wei-Hsiang Chang 張偉祥 碩士 元智大學 電機工程學系 104 Recently, channel state information (CSI) has been adopted as an enhanced wireless channel measurement instead of received signal strength (RSS) for indoor WiFi positioning systems. However, although CSI contains richer location information, a challenging problem is the severe dynamic range and fluctuation among the high-dimensional channels, which may degrade accuracy and cause overfitting problems. This paper proposes a novel algorithm for improved fingerprinting-based indoor localization. The proposed algorithm decomposes the CSI sequence using the multilevel discrete wavelet transform (MDWT) and normalizes the wavelet coefficients by employing histogram equalization. The robust features were then extracted by reconstructing CSI through the inverse MDWT of the normalized coefficients. We demonstrate the effectiveness of the proposed algorithm through experiments. The results show that the proposed algorithm outperforms traditional RSS, CSI, and two CSI-based algorithms, FIFS and MIMO. Shih, Huang-Chia 施皇嘉 2016 學位論文 ; thesis 83 zh-TW |
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碩士 === 元智大學 === 電機工程學系 === 104 === Recently, channel state information (CSI) has been adopted as an enhanced wireless channel measurement instead of received signal strength (RSS) for indoor WiFi positioning systems. However, although CSI contains richer location information, a challenging problem is the severe dynamic range and fluctuation among the high-dimensional channels, which may degrade accuracy and cause overfitting problems. This paper proposes a novel algorithm for improved fingerprinting-based indoor localization. The proposed algorithm decomposes the CSI sequence using the multilevel discrete wavelet transform (MDWT) and normalizes the wavelet coefficients by employing histogram equalization. The robust features were then extracted by reconstructing CSI through the inverse MDWT of the normalized coefficients. We demonstrate the effectiveness of the proposed algorithm through experiments. The results show that the proposed algorithm outperforms traditional RSS, CSI, and two CSI-based algorithms, FIFS and MIMO.
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Shih, Huang-Chia |
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Shih, Huang-Chia Wei-Hsiang Chang 張偉祥 |
author |
Wei-Hsiang Chang 張偉祥 |
spellingShingle |
Wei-Hsiang Chang 張偉祥 Channel State Reconstruction Using Multilevel Discrete Wavelet Transform for Improved Fingerprinting-based Indoor Localization |
author_sort |
Wei-Hsiang Chang |
title |
Channel State Reconstruction Using Multilevel Discrete Wavelet Transform for Improved Fingerprinting-based Indoor Localization |
title_short |
Channel State Reconstruction Using Multilevel Discrete Wavelet Transform for Improved Fingerprinting-based Indoor Localization |
title_full |
Channel State Reconstruction Using Multilevel Discrete Wavelet Transform for Improved Fingerprinting-based Indoor Localization |
title_fullStr |
Channel State Reconstruction Using Multilevel Discrete Wavelet Transform for Improved Fingerprinting-based Indoor Localization |
title_full_unstemmed |
Channel State Reconstruction Using Multilevel Discrete Wavelet Transform for Improved Fingerprinting-based Indoor Localization |
title_sort |
channel state reconstruction using multilevel discrete wavelet transform for improved fingerprinting-based indoor localization |
publishDate |
2016 |
url |
http://ndltd.ncl.edu.tw/handle/52081761557596038329 |
work_keys_str_mv |
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1718515713225785344 |