Towards Sub-Meter Level UWB Indoor Localization Using Body Wearable Sensors
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Peio Lopez-Iturri | Alfonso Bahillo | Francisco Falcone | Timothy Otim | Luis Enrique Díez | F. Falcone | A. Bahillo | P. López-Iturri | Timothy Otim | L. E. Díez
[1] Akram Alomainy,et al. Experimental Investigation of 3-D Human Body Localization Using Wearable Ultra-Wideband Antennas , 2015, IEEE Transactions on Antennas and Propagation.
[2] Kaveh Pahlavan,et al. Toward Accurate Human Tracking: Modeling Time-of-Arrival for Wireless Wearable Sensors in Multipath Environment , 2014, IEEE Sensors Journal.
[3] Leyre Azpilicueta,et al. A 3D Ray Launching Time-Frequency Channel Modeling Approach for UWB Ranging Applications , 2020, IEEE Access.
[4] Fabrizio Granelli,et al. Technologies and Solutions for Location-Based Services in Smart Cities: Past, Present, and Future , 2018, IEEE Access.
[5] Tao Xie,et al. Positioning optimisation based on particle quality prediction in wireless sensor networks , 2019, IET Networks.
[6] Ronald Raulefs,et al. Recent Advances in Indoor Localization: A Survey on Theoretical Approaches and Applications , 2017, IEEE Communications Surveys & Tutorials.
[7] Angelica Munoz-Melendez,et al. Wearable Inertial Sensors for Human Motion Analysis: A Review , 2016, IEEE Sensors Journal.
[8] Henk Wymeersch,et al. UWB Positioning with Generalized Gaussian Mixture Filters , 2014, IEEE Transactions on Mobile Computing.
[9] A. Rabbachin,et al. ML Time-of-Arrival estimation based on low complexity UWB energy detection , 2006, 2006 IEEE International Conference on Ultra-Wideband.
[10] Mark J. Bentum,et al. The effect of human-body shadowing on indoor UWB TOA-based ranging systems , 2012, 2012 9th Workshop on Positioning, Navigation and Communication.
[11] Fernando Seco Granja,et al. Comparing Decawave and Bespoon UWB location systems: Indoor/outdoor performance analysis , 2016, 2016 International Conference on Indoor Positioning and Indoor Navigation (IPIN).
[12] Peio Lopez-Iturri,et al. A comparison of human body wearable sensor positions for UWB-based indoor localization , 2019, IPIN.
[13] Slawomir J. Ambroziak,et al. An Off-Body Channel Model for Body Area Networks in Indoor Environments , 2016, IEEE Transactions on Antennas and Propagation.
[14] R. Mautz. Indoor Positioning Technologies , 2012 .
[15] Yue Jin,et al. PILA: Sub-Meter Localization Using CSI from Commodity Wi-Fi Devices , 2016, Sensors.
[16] Kaveh Pahlavan,et al. Modeling the effect of human body on TOA ranging for indoor human tracking with wrist mounted sensor , 2013, 2013 16th International Symposium on Wireless Personal Multimedia Communications (WPMC).
[17] A. Wittneben,et al. UWB signal propagation at the human head , 2006, IEEE Transactions on Microwave Theory and Techniques.
[18] Farid Golnaraghi,et al. A Kalman/Particle Filter-Based Position and Orientation Estimation Method Using a Position Sensor/Inertial Measurement Unit Hybrid System , 2010, IEEE Transactions on Industrial Electronics.
[19] Jean-Yves Tourneret,et al. Joint Particle Filter and UKF Position Tracking in Severe Non-Line-of-Sight Situations , 2009, IEEE Journal of Selected Topics in Signal Processing.
[20] J. Molina-García-Pardo,et al. Effect of the Receiver Attachment Position on Ultrawideband Off-Body Channels , 2015, IEEE Antennas and Wireless Propagation Letters.
[21] Shugong Xu,et al. Robust Sub-Meter Level Indoor Localization With a Single WiFi Access Point—Regression Versus Classification , 2019, IEEE Access.
[22] Luc Martens,et al. Enhanced Indoor Location Tracking Through Body Shadowing Compensation , 2016, IEEE Sensors Journal.
[23] Adam C. Winstanley,et al. Indoor location based services challenges, requirements and usability of current solutions , 2017, Comput. Sci. Rev..
[24] Fernando Seco Granja,et al. Comparing Ubisense, BeSpoon, and DecaWave UWB Location Systems: Indoor Performance Analysis , 2017, IEEE Transactions on Instrumentation and Measurement.
[25] Dirk T. M. Slock,et al. Breaking the Gridlock of Spatial Correlations in GPS-Aided IEEE 802.11p-Based Cooperative Positioning , 2016, IEEE Transactions on Vehicular Technology.
[26] Kevin I-Kai Wang,et al. Human Body Shadowing Effect on UWB-Based Ranging System for Pedestrian Tracking , 2019, IEEE Transactions on Instrumentation and Measurement.
[27] Chengbing Chu,et al. A Particle Filter Based Reference Fingerprinting Map Recalibration Method , 2019, IEEE Access.
[28] Subhas Chandra Mukhopadhyay,et al. Wearable Sensors for Human Activity Monitoring: A Review , 2015, IEEE Sensors Journal.
[29] Fernando Seco Granja,et al. Indoor Positioning Using Efficient Map Matching, RSS Measurements, and an Improved Motion Model , 2015, IEEE Transactions on Vehicular Technology.
[30] Matti Hämäläinen,et al. Human Body Shadowing Effect on Dynamic UWB On-Body Radio Channels , 2017, IEEE Antennas and Wireless Propagation Letters.
[31] Kaveh Pahlavan,et al. Modeling indoor TOA ranging error for body mounted sensors , 2012, 2012 IEEE 23rd International Symposium on Personal, Indoor and Mobile Radio Communications - (PIMRC).
[32] Jochen Schiller,et al. Next Generation Cooperative Wearables: Generalized Activity Assessment Computed Fully Distributed Within a Wireless Body Area Network , 2017, IEEE Access.
[33] Fredrik Gustafsson,et al. Sequential Monte Carlo Methods and Theoretical Bounds for Proximity Report Based Indoor Positioning , 2018, IEEE Transactions on Vehicular Technology.
[34] Peio Lopez-Iturri,et al. Impact of Body Wearable Sensor Positions on UWB Ranging , 2019, IEEE Sensors Journal.
[35] Di Wu,et al. Heading Estimation for Indoor Pedestrian Navigation Using a Smartphone in the Pocket , 2015, Sensors.
[36] Fredrik Gustafsson,et al. Particle filters for positioning, navigation, and tracking , 2002, IEEE Trans. Signal Process..
[37] Antonio Moschitta,et al. Positioning Techniques in Indoor Environments Based on Stochastic Modeling of UWB Round-Trip-Time Measurements , 2016, IEEE Transactions on Intelligent Transportation Systems.
[38] Andreas F. Molisch,et al. A Measurement-Based Model of BMI Impact on UWB Multi-Antenna PAN and B2B Channels , 2018, IEEE Transactions on Communications.
[39] Francisco Falcone,et al. FDTD and Empirical Exploration of Human Body and UWB Radiation Interaction on TOF Ranging , 2019, IEEE Antennas and Wireless Propagation Letters.
[40] Francisco Falcone,et al. Effects of the Body Wearable Sensor Position on the UWB Localization Accuracy , 2019, Electronics.
[41] J. Holtzman,et al. The non-line of sight problem in mobile location estimation , 1996, Proceedings of ICUPC - 5th International Conference on Universal Personal Communications.
[42] Pi-Chun Chen,et al. A non-line-of-sight error mitigation algorithm in location estimation , 1999, WCNC. 1999 IEEE Wireless Communications and Networking Conference (Cat. No.99TH8466).
[43] Ali Jasim Ramadhan. Wearable Smart System for Visually Impaired People , 2018, Sensors.
[44] Yu-Liang Hsu,et al. Human Daily and Sport Activity Recognition Using a Wearable Inertial Sensor Network , 2018, IEEE Access.
[45] Kaveh Pahlavan,et al. An empirical channel model for the effect of human body on ray tracing , 2013, 2013 IEEE 24th Annual International Symposium on Personal, Indoor, and Mobile Radio Communications (PIMRC).