A Trajectory-Driven SIMO mm-Wave Channel Model for a Moving Point Scatterer

Author(s):  
Nurilla Avazov ◽  
Rym Hicheri ◽  
Matthias Patzold
2018 ◽  
Vol 103 (3) ◽  
pp. 2125-2135 ◽  
Author(s):  
Basim Mohammed Eldowek ◽  
Saied M. Abd El-atty ◽  
El-Sayed M. El-Rabaie ◽  
Fathi E. Abd El-Samie

Author(s):  
Minseok Kim ◽  
Tatsuki Iwata ◽  
Kento Umeki ◽  
Karma Wangchuk ◽  
Jun-ichi Takada ◽  
...  

2017 ◽  
Vol 16 (9) ◽  
pp. 5853-5868 ◽  
Author(s):  
Junghoon Ko ◽  
Yeon-Jea Cho ◽  
Sooyoung Hur ◽  
Taehwan Kim ◽  
Jeongho Park ◽  
...  

Author(s):  
Qian Li ◽  
Hooman Shirani-Mehr ◽  
Tommaso Balercia ◽  
Huaning Niu ◽  
Apostolos Papathanassiou ◽  
...  

Electronics ◽  
2021 ◽  
Vol 10 (9) ◽  
pp. 992
Author(s):  
Arshee Ahmed ◽  
Haroon Rasheed ◽  
Madhusanka Liyanage

The increase in capacity demand for vehicular communication is generating interest among researchers. The standard spectra allocated to VANET tend to be saturated and are no longer enough for real-time applications. Millimeter-wave is a potential candidate for VANET applications. However, millimeter-wave is susceptible to pathloss and fading, which degrade system performance. Beamforming, multi-input multi-output (MIMO) and diversity techniques are being employed to minimize throughput, reliability and data rate issues. This paper presents a tractable channel model for VANET in which system performance degradation due to error is addressed by concatenated Alamouti space-time block coding (ASTBC) and Bose–Chaudhuri–Hocquenghem (BCH) coding. Two closed-form approximations of bit error rate (BER), one for BCH in Rayleigh fading and the second for BCH with ASTBC, are derived. These expressions comprise SNR and code rate and can be utilized in designing VANET architectures. The results show that the BER using concatenated ASTBC and BCH outmatches the conventional BER ASTBC expression. The analytical results are compared with numerical results, thereby showing the accuracy of our closed-form expressions. The performance of the proposed expressions is evaluated using different code rates.


2018 ◽  
Vol 27 (1) ◽  
pp. 139-150
Author(s):  
Basim M. Eldowek ◽  
Saied M. Abd El-atty ◽  
El-Sayed M El-Rabaie ◽  
Fathi E. Abd El-Samie ◽  
Sally Abdulaziz

Sensors ◽  
2020 ◽  
Vol 20 (4) ◽  
pp. 1049
Author(s):  
Ahmed Abdelgawwad ◽  
Alireza Borhani ◽  
Matthias Pätzold

This paper is about designing a 3D no n-stationary wideband indoor channel model for radio-frequency sensing. The proposed channel model allows for simulating the time-variant (TV) characteristics of the received signal of indoor channel in the presence of a moving object. The moving object is modelled by a point scatterer which travels along a trajectory. The trajectory is described by the object’s TV speed, TV horizontal angle of motion, and TV vertical angle of motion. An expression of the TV Doppler frequency caused by the moving scatterer is derived. Furthermore, an expression of the TV complex channel transfer function (CTF) of the received signal is provided, which accounts for the influence of a moving object and fixed objects, such as walls, ceiling, and furniture. An approximate analytical solution of the spectrogram of the CTF is derived. The proposed channel model is confirmed by measurements obtained from a pendulum experiment. In the pendulum experiment, the trajectory of the pendulum has been measured by using an inertial-measurement unit (IMU) and simultaneously collecting CSI data. For validation, we have compared the spectrogram of the proposed channel model fed with IMU data with the spectrogram characteristics of the measured CSI data. The proposed channel model paves the way towards designing simulation-based activity recognition systems.


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