Canoe: An Autonomous Infrastructure-Free Indoor Navigation System
暂无分享,去创建一个
[1] Xinyu Yang,et al. A Survey on Internet of Things: Architecture, Enabling Technologies, Security and Privacy, and Applications , 2017, IEEE Internet of Things Journal.
[2] Tristan Henderson,et al. CRAWDAD: A Community Resource for Archiving Wireless Data at Dartmouth , 2005, IEEE Pervasive Comput..
[3] Hari Balakrishnan,et al. 6th ACM/IEEE International Conference on on Mobile Computing and Networking (ACM MOBICOM ’00) The Cricket Location-Support System , 2022 .
[4] Xinwen Fu,et al. 3DLoc: Three Dimensional Wireless Localization Toolkit , 2010, 2010 IEEE 30th International Conference on Distributed Computing Systems.
[5] Sebastian Gansemer,et al. RSSI-based Euclidean Distance algorithm for indoor positioning adapted for the use in dynamically changing WLAN environments and multi-level buildings , 2010, 2010 International Conference on Indoor Positioning and Indoor Navigation.
[6] Tristan Henderson,et al. CRAWDAD: a community resource for archiving wireless data at Dartmouth , 2005, CCRV.
[7] Paramvir Bahl,et al. RADAR: an in-building RF-based user location and tracking system , 2000, Proceedings IEEE INFOCOM 2000. Conference on Computer Communications. Nineteenth Annual Joint Conference of the IEEE Computer and Communications Societies (Cat. No.00CH37064).
[8] J. Barney,et al. Commercialization of an ultra wideband precision asset location system , 2003, IEEE Conference on Ultra Wideband Systems and Technologies, 2003.
[9] Kostas E. Bekris,et al. Indoor Human Navigation Systems: A Survey , 2013, Interact. Comput..
[10] Mo Li,et al. Travi-Navi: self-deployable indoor navigation system , 2014, MobiCom.
[11] Yunhao Liu,et al. Locating in fingerprint space: wireless indoor localization with little human intervention , 2012, Mobicom '12.
[12] Prashant Krishnamurthy,et al. Modeling of indoor positioning systems based on location fingerprinting , 2004, IEEE INFOCOM 2004.
[13] Lei Yang,et al. Tagoram: real-time tracking of mobile RFID tags to high precision using COTS devices , 2014, MobiCom.
[14] Venkata N. Padmanabhan,et al. Indoor localization without the pain , 2010, MobiCom.
[15] Yunhao Liu,et al. WILL: Wireless indoor localization without site survey , 2012, 2012 Proceedings IEEE INFOCOM.
[16] Xinwen Fu,et al. The Digital Marauder's Map: A WiFi Forensic Positioning Tool , 2012, IEEE Transactions on Mobile Computing.
[17] Xiaoying Gan,et al. The collocation of measurement points in large open indoor environment , 2015, 2015 IEEE Conference on Computer Communications (INFOCOM).
[18] Martin Klepal,et al. Fingerprinting based localisation revisited: A rigorous approach for comparing RSSI measurements coping with missed access points and differing antenna attenuations , 2012, 2012 International Conference on Indoor Positioning and Indoor Navigation (IPIN).
[19] Pei Zhang,et al. SugarTrail: Indoor navigation in retail environments without surveys and maps , 2013, 2013 IEEE International Conference on Sensing, Communications and Networking (SECON).
[20] Anshul Rai,et al. Zee: zero-effort crowdsourcing for indoor localization , 2012, Mobicom '12.
[21] Romit Roy Choudhury,et al. Did you see Bob?: human localization using mobile phones , 2010, MobiCom.
[22] Moustafa Youssef,et al. No need to war-drive: unsupervised indoor localization , 2012, MobiSys '12.
[23] Konstantinos N. Plataniotis,et al. Kernel-Based Positioning in Wireless Local Area Networks , 2007, IEEE Transactions on Mobile Computing.
[24] J. Werb,et al. Designing a positioning system for finding things and people indoors , 1998 .
[25] Prashant Krishnamurthy,et al. Properties of indoor received signal strength for WLAN location fingerprinting , 2004, The First Annual International Conference on Mobile and Ubiquitous Systems: Networking and Services, 2004. MOBIQUITOUS 2004..