Interference Mitigation for Visible Light Communications in Underground Mines Using Angle Diversity Receivers
暂无分享,去创建一个
David Zabala-Blanco | Cesar A. Azurdia-Meza | Ali Dehghan Firoozabadi | Ismael Soto | Samuel Montejo Sanchez | Pablo Palacios Játiva | Fabián Seguel | Milton Román Cañizares | César A. Azurdia-Meza | S. M. Sánchez | I. Soto | David Zabala-Blanco | Fabián Seguel | A. D. Firoozabadi
[1] Raymond Frech Mikesell. The Global Copper Industry: Problems and Prospects , 2017 .
[2] Yeong Min Jang,et al. Receiver performance improvement utilizing diversity in MIMO VLC , 2013, 2013 International Conference on ICT Convergence (ICTC).
[3] Murat Uysal,et al. Channel Modeling and Characterization for Visible Light Communications , 2015, IEEE Photonics Journal.
[4] Parth H. Pathak,et al. Visible Light Communication, Networking, and Sensing: A Survey, Potential and Challenges , 2015, IEEE Communications Surveys & Tutorials.
[5] Julian Cheng,et al. Physical-Layer Security for Indoor Visible Light Communications: Secrecy Capacity Analysis , 2018, IEEE Transactions on Communications.
[6] Dominic C. O'Brien,et al. A Shot-Noise Limited 420 Mbps Visible Light Communication System using Commerical Off-the-Shelf Silicon Photomultiplier (SiPM) , 2019, 2019 IEEE International Conference on Communications Workshops (ICC Workshops).
[7] Stefan Videv,et al. Fractional Frequency Reuse in DCO-OFDM-Based Optical Attocell Networks , 2015, Journal of Lightwave Technology.
[8] Mohamed M. Abdallah,et al. Ray tracing based channel modeling for visible light communications , 2014, 2014 22nd Signal Processing and Communications Applications Conference (SIU).
[9] Jeffrey B. Carruthers,et al. Wireless infrared communications , 2003, Proc. IEEE.
[10] Yosoon Choi,et al. Review of Wearable Device Technology and Its Applications to the Mining Industry , 2018 .
[11] Jia Wang,et al. A new VLC channel model for underground mining environments , 2017, 2017 13th International Wireless Communications and Mobile Computing Conference (IWCMC).
[12] Stanislav Zvanovec,et al. Indoor Intruder Tracking Using Visible Light Communications , 2019, Sensors.
[13] Cheng-Xiang Wang,et al. A general channel model for visible light communications in underground mines , 2018, China Communications.
[14] Shiro Ryu,et al. Study on Angle Diversity Receiving System for Visible Light Communications , 2018, 2018 Asia Communications and Photonics Conference (ACP).
[15] Chunyong Yang,et al. Performance enhancement for indoor visible light communication system with an improved inter-symbol interference model using optimized hemispherical optical-angle-diversity-receivers , 2020 .
[16] Chi Wan Sung,et al. BER analysis for interfering visible light communication systems , 2016, 2016 10th International Symposium on Communication Systems, Networks and Digital Signal Processing (CSNDSP).
[17] Ismael Soto,et al. A new VLC system for localization in underground mining tunnels , 2017, IEEE Latin America Transactions.
[18] Zabih Ghassemlooy,et al. Optical Wireless Communications: System and Channel Modelling with MATLAB® , 2012 .
[19] Mohamed-Slim Alouini,et al. On the Secrecy Rate of Spatial Modulation-Based Indoor Visible Light Communications , 2019, IEEE Journal on Selected Areas in Communications.
[20] Mohamed-Slim Alouini,et al. Improved angle diversity non-imaging receiver with a help of mirror in indoor MIMO-VLC systems , 2018, 2018 IEEE Wireless Communications and Networking Conference (WCNC).
[21] Harald Haas,et al. Improving SINR in indoor cellular visible light communication networks , 2014, 2014 IEEE International Conference on Communications (ICC).
[22] Patrick Charpentier,et al. A Novel Frequency Domain Visible Light Communication (VLC) Three-Dimensional Trilateration System for Localization in Underground Mining , 2019, Applied Sciences.
[23] Shen Zhang,et al. Visible Light Communication Channel Models and Simulation of Coal Workface Energy Coupling , 2015 .
[24] Pengfei Du,et al. Reduction of SINR Fluctuation in Indoor Multi-Cell VLC Systems Using Optimized Angle Diversity Receiver , 2018, Journal of Lightwave Technology.
[25] Chen Chen,et al. Cognitive Multi-Cell Visible Light Communication With Hybrid Underlay/Overlay Resource Allocation , 2018, IEEE Photonics Technology Letters.
[26] Dayan Adionel Guimarães. Digital Transmission: A Simulation-Aided Introduction with VisSim/Comm , 2010 .
[27] Harald Haas,et al. Downlink Performance of Optical Attocell Networks , 2016, Journal of Lightwave Technology.
[28] Sima Noghanian,et al. A Survey of Wireless Communications and Propagation Modeling in Underground Mines , 2013, IEEE Communications Surveys & Tutorials.
[29] Prasant Misra,et al. Opportunities and Challenges in Health Sensing for Extreme Industrial Environment: Perspectives From Underground Mines , 2019, IEEE Access.
[30] Chung Shue Chen,et al. Indoor MIMO Visible Light Communications: Novel Angle Diversity Receivers for Mobile Users , 2015, IEEE Journal on Selected Areas in Communications.
[31] Zabih Ghassemlooy,et al. A new location system for an underground mining environment using visible light communications , 2014, 2014 9th International Symposium on Communication Systems, Networks & Digital Sign (CSNDSP).
[32] Zhe Chen,et al. Interference Mitigation for Indoor Optical Attocell Networks Using an Angle Diversity Receiver , 2018, Journal of Lightwave Technology.
[33] Harald Haas,et al. Angle Diversity for an Indoor Cellular Visible Light Communication System , 2014, 2014 IEEE 79th Vehicular Technology Conference (VTC Spring).
[34] Jinhong Li,et al. A novel identification system based on visible light communication , 2013, 2013 22nd Wireless and Optical Communication Conference.
[35] Jia Wang,et al. A path loss channel model for visible light communications in underground mines , 2017, 2017 IEEE/CIC International Conference on Communications in China (ICCC).
[36] Mohammad Dehghani Soltani,et al. Access Point Selection Scheme for LiFi Cellular Networks using Angle Diversity Receivers , 2019, 2019 IEEE Wireless Communications and Networking Conference (WCNC).
[37] Amin M. Abbosh,et al. Improved Communications in Underground Mines Using Reconfigurable Antennas , 2018, IEEE Transactions on Antennas and Propagation.
[38] Joseph M. Kahn,et al. Angle diversity for nondirected wireless infrared communication , 2000, IEEE Trans. Commun..
[39] C.D.J. Statham. Underground lighting in coal mines , 1956 .
[40] Xavier Fernando,et al. A new alarming system for an underground mining environment using visible light communications , 2017, 2017 IEEE Canada International Humanitarian Technology Conference (IHTC).
[41] Harald Haas,et al. Joint transmission in indoor visible light communication downlink cellular networks , 2013, 2013 IEEE Globecom Workshops (GC Wkshps).
[42] Chao Li,et al. Enhanced performance of spatial modulation with angular diversity receiver for indoor visible light communication , 2016, 2016 IEEE/CIC International Conference on Communications in China (ICCC).
[43] Cesar A. Azurdia-Meza,et al. Performance Enhancement of VLC-Based Systems Using Diversity Combining Schemes in the Receiver , 2019, 2019 IEEE Latin-American Conference on Communications (LATINCOM).
[44] Zabih Ghassemlooy,et al. Wide-FOV and High-Gain Imaging Angle Diversity Receiver for Indoor SDM-VLC Systems , 2016, IEEE Photonics Technology Letters.
[45] John R. Barry,et al. Indoor Channel Characteristics for Visible Light Communications , 2011, IEEE Commun. Lett..
[46] Kamran Ali,et al. A WSN for Monitoring and Event Reporting in Underground Mine Environments , 2018, IEEE Systems Journal.
[47] Mohammad Dehghani Soltani,et al. Angle Diversity Receiver in LiFi Cellular Networks , 2019, ICC 2019 - 2019 IEEE International Conference on Communications (ICC).
[48] Patrick Charpentier,et al. Potential and challenges of VLC based IPS in underground mines , 2017, 2017 First South American Colloquium on Visible Light Communications (SACVLC).
[49] Ana García Armada,et al. Characterization of the Visible Light Communications during the Construction of Tunnels , 2019, 2019 16th International Symposium on Wireless Communication Systems (ISWCS).