Wireless Communications for the Hospital of the Future: Requirements, Challenges and Solutions
暂无分享,去创建一个
Timo Kumpuniemi | Heikki Karvonen | Iqrar Ahmed | Marcos Katz | M. Katz | T. Kumpuniemi | H. Karvonen | Iqrar Ahmed
[1] Timo Kumpuniemi,et al. Reconfigurable optical‐radio wireless networks: Meeting the most stringent requirements of future communication systems , 2019, Trans. Emerg. Telecommun. Technol..
[2] Timo Kumpuniemi,et al. A Hybrid Optical-Radio Wireless Network Concept for the Hospital of the Future , 2018, BODYNETS.
[3] Konstantin Mikhaylov,et al. Performance Evaluation of Bluetooth Low Energy Technology Under Interference , 2018, BODYNETS.
[4] Fang Liu,et al. Security and Privacy in the Medical Internet of Things: A Review , 2018, Secur. Commun. Networks.
[5] Haibin Zhang,et al. Connecting Intelligent Things in Smart Hospitals Using NB-IoT , 2018, IEEE Internet of Things Journal.
[6] Zhiguo Ding,et al. On 3-D Hybrid VLC-RF Systems with Light Energy Harvesting and OMA Scheme over RF Links , 2017, GLOBECOM 2017 - 2017 IEEE Global Communications Conference.
[7] Z. Qiu,et al. Gbps Long-Distance Real-Time Visible Light Communications Using a High-Bandwidth GaN-Based Micro-LED , 2017, IEEE Photonics Journal.
[8] Konstantin Mikhaylov,et al. Interference of wireless technologies on BLE based WBANs in hospital scenarios , 2017, 2017 IEEE 28th Annual International Symposium on Personal, Indoor, and Mobile Radio Communications (PIMRC).
[9] Ariffin Marzuki Mokhtar,et al. The Future Hospital: A Business Architecture View. , 2017, The Malaysian journal of medical sciences : MJMS.
[10] Xun Zhang,et al. Impact and feasibility of darklight LED on indoor visible light positioning system , 2017, 2017 IEEE 17th International Conference on Ubiquitous Wireless Broadband (ICUWB).
[11] Debashis Chakraborty,et al. Hidden Markov model and Internet of Things hybrid driven smart hospital , 2017, 2017 8th International Conference on Computing, Communication and Networking Technologies (ICCCNT).
[12] Jari H. Iinatti,et al. Coexistence of wireless technologies in medical scenarios , 2017, 2017 European Conference on Networks and Communications (EuCNC).
[13] Mohamed Kashef,et al. Beamforming and power allocation for physical-layer security in hybrid RF/VLC wireless networks , 2017, 2017 13th International Wireless Communications and Mobile Computing Conference (IWCMC).
[14] Chao Zhang,et al. Dynamic dwell timer for vertical handover in VLC-WLAN heterogeneous networks , 2017, 2017 13th International Wireless Communications and Mobile Computing Conference (IWCMC).
[15] J. Ehrich,et al. Conceptual Design of Future Children's Hospitals in Europe. The Role of Public and Private Stakeholders as Transferors of New Concepts from Theory into Practice , 2017, The Journal of pediatrics.
[16] Marcos D. Katz,et al. Heterogeneous Software-Defined Networks: Implementation of a Hybrid Radio-Optical Wireless Network , 2017, 2017 IEEE Wireless Communications and Networking Conference (WCNC).
[17] Mohamed M. Khairy,et al. Power Efficient Downlink Resource Allocation for Hybrid RF#x002F;VLC Wireless Networks , 2017, 2017 IEEE Wireless Communications and Networking Conference (WCNC).
[18] Yuefeng Ji,et al. Hybrid Optical Wireless Network for Future SAGO-Integrated Communication Based on FSO/VLC Heterogeneous Interconnection , 2017, IEEE Photonics Journal.
[19] Mohamed-Slim Alouini,et al. Dual-Hop VLC/RF Transmission System with Energy Harvesting Relay under Delay Constraint , 2016, 2016 IEEE Globecom Workshops (GC Wkshps).
[20] Dawn Dowding,et al. The Future of Home Health Care , 2016, Home health care management & practice.
[21] Harald Haas,et al. Two-stage access point selection for hybrid VLC and RF networks , 2016, 2016 IEEE 27th Annual International Symposium on Personal, Indoor, and Mobile Radio Communications (PIMRC).
[22] Grzegorz J. Blinowski,et al. The feasibility of launching physical layer attacks in visible light communication networks , 2016, ArXiv.
[23] Mohamed M. Abdallah,et al. Energy Efficient Resource Allocation for Mixed RF/VLC Heterogeneous Wireless Networks , 2016, IEEE Journal on Selected Areas in Communications.
[24] Volker Jungnickel,et al. Coexistence of WiFi and LiFi toward 5G: concepts, opportunities, and challenges , 2016, IEEE Communications Magazine.
[25] Trio Adiono,et al. Patient monitoring using Visible Light uplink data transmission , 2015, 2015 International Symposium on Intelligent Signal Processing and Communication Systems (ISPACS).
[26] Hui Tian,et al. A Novel Vertical Handover Algorithm in a Hybrid Visible Light Communication and LTE System , 2015, 2015 IEEE 82nd Vehicular Technology Conference (VTC2015-Fall).
[27] Giulio Cossu,et al. Gigabit-class optical wireless communication system at indoor distances (1.5 ÷ 4 m). , 2015, Optics express.
[28] Atul Sewaiwar,et al. EEG biomedical signal transmission using visible light communication , 2015, 2015 International Conference on Industrial Instrumentation and Control (ICIC).
[29] Xiaofei Wang,et al. A hybrid power line and visible light communication system for indoor hospital applications , 2015, Comput. Ind..
[30] Lajos Hanzo,et al. Cooperative Load Balancing in Hybrid Visible Light Communications and WiFi , 2015, IEEE Transactions on Communications.
[31] Mohamed M. Abdallah,et al. On the Achievable Rate of a Hybrid PLC/VLC/RF Communication System , 2014, 2015 IEEE Global Communications Conference (GLOBECOM).
[32] Mohamed M. Abdallah,et al. Hybrid radio-visible light downlink performance in RF sensitive indoor environments , 2014, 2014 6th International Symposium on Communications, Control and Signal Processing (ISCCSP).
[33] Xiaofei Wang,et al. Indoor hospital communication systems: An integrated solution based on power line and visible light communication , 2014, 2014 IEEE Faible Tension Faible Consommation.
[34] Xiqi Gao,et al. Cellular architecture and key technologies for 5G wireless communication networks , 2014, IEEE Communications Magazine.
[35] H. Thimbleby. Technology and the Future of Healthcare , 2013, Journal of public health research.
[36] Wasinee Noonpakdee,et al. Adaptive wireless optical transmission scheme for health monitoring system , 2013, 2013 IEEE Third International Conference on Consumer Electronics ¿ Berlin (ICCE-Berlin).
[37] H. Kawano,et al. A novel visible light communication system for enhanced control of autonomous delivery robots in a hospital , 2012, 2012 IEEE/SICE International Symposium on System Integration (SII).
[38] Ingrid Moerman,et al. A Comprehensive Survey of Wireless Body Area Networks , 2012, Journal of Medical Systems.
[39] Gregorio López,et al. LOBIN: E-Textile and Wireless-Sensor-Network-Based Platform for Healthcare Monitoring in Future Hospital Environments , 2010, IEEE Transactions on Information Technology in Biomedicine.
[40] Cem Ersoy,et al. Wireless sensor networks for healthcare: A survey , 2010, Comput. Networks.
[41] Kyung Sup Kwak,et al. Security and Privacy Issues in Wireless Sensor Networks for Healthcare Applications , 2010, Journal of Medical Systems.
[42] J. Zajac. The public hospital of the future , 2004, The Medical journal of Australia.
[43] U. Varshney. Pervasive Healthcare , 2003, Computer.
[44] J. Zajac. The public hospital of the future , 2003 .
[45] John Anderson,et al. Wireless sensor networks for habitat monitoring , 2002, WSNA '02.
[46] Dimitri Konstantas,et al. Healthcare PANs: Personal Area Networks for trauma care and home care , 2001 .
[47] N. Edwards,et al. International trends in the provision and utilisation of hospital care , 1999, BMJ.
[48] W. Mackie. PLANNING THE HOSPITALS OF THE FUTURE , 1963 .
[49] L. Taylor. Hospitals of the Future , 1960, British medical journal.
[50] Prasan Kumar Sahoo,et al. Analyzing Healthcare Big Data With Prediction for Future Health Condition , 2016, IEEE Access.
[51] Jaume Ribera,et al. Hospital of the Future A New Role for Leading Hospitals in Europe , 2016 .
[52] A. Heitmann,et al. From Magnet-Hospital to the Hospital of the Future , 2013 .
[53] J. Bardram. Hospitals of the Future – Ubiquitous Computing support for Medical Work in Hospitals , 2003 .