Juan Reig

Orcid: 0000-0003-4541-9326

According to our database1, Juan Reig authored at least 25 papers between 2004 and 2023.

Collaborative distances:
  • Dijkstra number2 of five.
  • Erdős number3 of five.

Timeline

Legend:

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Bibliography

2023
Path Loss Characterization in an Outdoor Corridor Environment for IoT-5G in a Smart Campus University at 850 MHz and 3.5 GHz Frequency Bands.
Sensors, November, 2023

2022
Wireless Channel Analysis Between 25 and 40 GHz in an Intra-Wagon Environment for 5G Using a Ray-Tracing Tool.
IEEE Trans. Intell. Transp. Syst., 2022

A Comparison Between Concentrated and Distributed Massive MIMO Channels at 26 GHz in a Large Indoor Environment Using Ray-Tracing.
IEEE Access, 2022

2021
Millimeter Wave MISO-OFDM Transmissions in an Intra-Wagon Environment.
IEEE Trans. Intell. Transp. Syst., 2021

Fading Evaluation in Standardized 5G Millimeter-Wave Band.
IEEE Access, 2021

2019
Millimeter Wave Channel Measurements in an Intra-Wagon Environment.
IEEE Trans. Veh. Technol., 2019

Fading Evaluation in the mm-Wave Band.
IEEE Trans. Commun., 2019

Log-moment estimators of the Nakagami-lognormal distribution.
EURASIP J. Wirel. Commun. Netw., 2019

The Folded Normal Distribution: A New Model for the Small-Scale Fading in Line-of-Sight (LOS) Condition.
IEEE Access, 2019

Empirical Characterization of the Indoor Radio Channel for Array Antenna Systems in the 3 to 4 GHz Frequency Band.
IEEE Access, 2019

Higher Order Statistics in a mmWave Propagation Environment.
IEEE Access, 2019

2017
Small-Scale Fading Analysis of the Vehicular-to-Vehicular Channel inside Tunnels.
Wirel. Commun. Mob. Comput., 2017

2016
Analysis of Small-Scale Fading Distributions in Vehicle-to-Vehicle Communications.
Mob. Inf. Syst., 2016

2013
Estimation of the Composite Fast Fading and Shadowing Distribution Using the Log-Moments in Wireless Communications.
IEEE Trans. Wirel. Commun., 2013

Path Loss Modeling for Vehicular System Performance and Communication Protocols Evaluation.
Mob. Networks Appl., 2013

2011
On Simple Estimators of the α-μ Fading Distribution.
IEEE Trans. Commun., 2011

2010
Analytical Approach to Model the Fade Depth and the Fade Margin in UWB Channels.
IEEE Trans. Veh. Technol., 2010

2009
The UWB-OFDM Channel Analysis in Frequency.
Proceedings of the 69th IEEE Vehicular Technology Conference, 2009

2008
Performance of maximal ratio combiners over correlated Nakagami-m fading channels with arbitrary fading parameters.
IEEE Trans. Wirel. Commun., 2008

2007
Generation of bivariate Nakagami-<i>m</i> fading envelopes with arbitrary not necessary identical fading parameters.
Wirel. Commun. Mob. Comput., 2007

2006
Capacity analysis in downlink WCDMA systems using soft handover techniques with SIR-based power control and site selection diversity transmission.
IEEE Trans. Veh. Technol., 2006

Performance of Dual Selection Combiners Over Correlated Nakagami-mFading With Different Fading Parameters.
IEEE Trans. Commun., 2006

2004
Power allocation strategies in downlink WCDMA systems using soft handover and SSDT power control techniques.
Proceedings of the 60th IEEE Vehicular Technology Conference, 2004

Distribution of uplink signal to interference ratio in WCDMA random access channel (RACH).
Proceedings of the IEEE 15th International Symposium on Personal, 2004

Capacity in downlink WCDMA hexagonal and sectorized scenarios using soft handover techniques with SIR-based power control and SSDT.
Proceedings of the IEEE 15th International Symposium on Personal, 2004


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