This paper compares our non-stationary geometric stochastic channel model for vehicle-to-vehicle scatter channels with measurement data collected in a vehicle-to-vehicle measurement campaign. The measurements were conducted on a forest road near Munich at 5.2GHz using a car mounted transmitter and receiver platform. The data is evaluated in terms of delay and Doppler frequency and then compared to a scaled version of the joint delay Doppler probability density function. The close agreement between the analytical and empirical data confirms the utility of our non-stationary geometric stochastic model
Introduction to Doppler spectra in non-stationary vehicle-to-vehicle (V2V) communication channels. S...
Autonomous driving vehicles shall increase the efficiency of passenger and goods transportation. Con...
Due to rapid changes in the environment, vehicular communication channels no longer satisfy the assu...
Wireless vehicle-to-vehicle communication systems are a crucial part of intelligent transportation s...
Novel joint delay Doppler probability density functions for vehicle-to-vehicle communications chann...
Although the wide-sense stationary uncorrelated scattering (WSSUS) assumption is widely used in chan...
In this paper, we describe a new wideband singleinput– single-output (SISO) channel model for vehicl...
In this paper, a geometry-based stochastic channel model (GSCM) for vehicle-to-vehicle (V2V) wireles...
Vehicle-to-vehicle (VTV) wireless communications have many envisioned applications in traffic safety...
Vehicle-to-vehicle (VTV) communications are of interest for applications within traffic safety and c...
Although the wide-sense stationary uncorrelated scattering (WSSUS) assumption is widely used in chan...
In vehicular environments, the scattering environment can change very rapidly, owing to the mobility...
In vehicular environments, the scattering environment can change very rapidly, owing to the mobility...
In vehicular environments, the scattering environment can change very rapidly, owing to the mobility...
Projecte final de carrera fet en col.laboració amb FTW i Technische Universität WienEnglish: In this...
Introduction to Doppler spectra in non-stationary vehicle-to-vehicle (V2V) communication channels. S...
Autonomous driving vehicles shall increase the efficiency of passenger and goods transportation. Con...
Due to rapid changes in the environment, vehicular communication channels no longer satisfy the assu...
Wireless vehicle-to-vehicle communication systems are a crucial part of intelligent transportation s...
Novel joint delay Doppler probability density functions for vehicle-to-vehicle communications chann...
Although the wide-sense stationary uncorrelated scattering (WSSUS) assumption is widely used in chan...
In this paper, we describe a new wideband singleinput– single-output (SISO) channel model for vehicl...
In this paper, a geometry-based stochastic channel model (GSCM) for vehicle-to-vehicle (V2V) wireles...
Vehicle-to-vehicle (VTV) wireless communications have many envisioned applications in traffic safety...
Vehicle-to-vehicle (VTV) communications are of interest for applications within traffic safety and c...
Although the wide-sense stationary uncorrelated scattering (WSSUS) assumption is widely used in chan...
In vehicular environments, the scattering environment can change very rapidly, owing to the mobility...
In vehicular environments, the scattering environment can change very rapidly, owing to the mobility...
In vehicular environments, the scattering environment can change very rapidly, owing to the mobility...
Projecte final de carrera fet en col.laboració amb FTW i Technische Universität WienEnglish: In this...
Introduction to Doppler spectra in non-stationary vehicle-to-vehicle (V2V) communication channels. S...
Autonomous driving vehicles shall increase the efficiency of passenger and goods transportation. Con...
Due to rapid changes in the environment, vehicular communication channels no longer satisfy the assu...