Anttena Paterns radiation patterns
Afficher commentaires plus anciens
Hi, I would like to draw the same figure below from the two reference equations. However, the figure I obtained was not quite similar to what I wanted.
Here is my code for the simulation.
Plot a Figure of Spetrum power
theta = -100/180*pi:5*pi/180:100/180*pi;
%plot(theta*180/pi,sin(theta))
cell radius
Gain=[]
cell_radius = [10 5 2] %km
for i=1:length(cell_radius)
HAP_altitude = 20 %km
phi_3db = 2*atan(cell_radius(i)/HAP_altitude*pi/180)
Gain(i,:) = 0.7*(2*besselj(1,70*pi/phi_3db.*sin(theta))./sin(theta)).^2
plot(theta*180/pi,10*log(mapminmax(Gain(i,:), 0, 1)))
hold on
end
legend('10km','5km','2km')
My result is below.
Thank you so much in advance.
Réponse acceptée
David Goodmanson
le 30 Août 2019
Modifié(e) : David Goodmanson
le 30 Août 2019
Hello MT,
The basic issue is setting phi_3db to degrees, but there may also be a problem with the basic definition of phi_3db (more on that shortly). The conversion is not
phi_3db = 2*atan(cell_radius(i)/HAP_altitude*pi/180)
with the conversion factor in the argument of atan, but rather
phi_3db = (180/pi)*2*atan(cell_radius(i)/HAP_altitude)
with the conversion factor outside. (Also, conversion to dB requires log10, not log).
Rather than having a bunch of factors of 180/pi floating around, the code below uses the sind and atand functions.
I don't have the mapminmax function (Deep Learning Toolbox) so I just normalized G in the usual way and didn't worry about mapping the minimum to zero.
Major functionality in toolboxes is is one thing, that's what toolboxes are for. But Mathworks has gotten good at creating simple, short 'convenience' toolbox functions that actually make things a lot less less convenient for people who want to run some vanilla piece of code and don't have all the toolboxes. Is it a ploy to force people to buy more toolboxes? Probably not. The effect is the same, though.
The plot looks a lot better after converting to degrees in eqn (2)
phi_3db = 2*atand(cell_radius(i)/HAP_altitude) (2) original
But eqn (2) does not quite reproduce the figure. Interestingly, the equation
phi_3db = atand(2*cell_radius(i)/HAP_altitude) (3) modified
does reproduce the figure. So now we have the choice, is eqn (2) correct and the figure incorrect? Or are both eqn (3) and the figure correct, and eqn (2) incorrect?
%Plot a Figure of Spectrum power
theta = (-100:.01:100);
%cell radius
Gain=[]
cell_radius = [10 5 2] %km
for i=1:length(cell_radius)
HAP_altitude = 20; %km
% phi_3db = 2*atand(cell_radius(i)/HAP_altitude) % (2) original
phi_3db = atand(2*cell_radius(i)/HAP_altitude) % (3) modified
Gain(i,:) = 0.7*(2*besselj(1,(70*pi/phi_3db)*sind(theta))./sind(theta)).^2;
figure(1)
plot(theta,10*log10((Gain(i,:)/max(Gain(i,:)))))
hold on
end
legend('10km','5km','2km')
hold off
4 commentaires
Mingcheng Tsai
le 31 Août 2019
Modifié(e) : Mingcheng Tsai
le 31 Août 2019
David Goodmanson
le 31 Août 2019
Hello MT
The paper appears to be in error, because eqn (2) and the figure do not agree. I don't know which is correct, because I don't know this subject. At this point I think you had better look at other papers on the topic and/or at textbooks to find out whether eqn (2) is correct and the figure is wrong, or eqn (3) is correct and the figure is right. You can't afford to propagate an error due to lack of knowledge.
Mingcheng Tsai
le 1 Sep 2019
David Goodmanson
le 2 Sep 2019
Hello MT,
I appreciate your comment. Once you determine the correct expression and plot, I would be interested to hear what they are.
Plus de réponses (0)
Catégories
En savoir plus sur Polar Plots dans Centre d'aide et File Exchange
le 29 Août 2019
le 2 Sep 2019
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
