Index exceeds matrix dimensions

17 Apr 2014
3 Answers
Answer Accepted
Updated 18 Apr 2014
3 Views (30 days)

0 votes

this is my code:
pathloss2 = zeros(50,8);
f = 2500;
height = 5; % height of the base station(b/w 10 t0 80 meters)
do = 100; % constant
% d=500; %d>do
% s=8; % typical value of standard deviation (b/w 8 and 10 dB)
wavelength = 3.0e+8/f;
atype = 4.6; % model parameters
btype = 4;
ctype = 3.6;
gamma = (atype-btype*height+ctype/height);
A = 20*log10(4*3.14*do/wavelength);
deltaPLf = 6*log10(f/2000);
deltaPLh = -10.8*log10(height/1.5);
UserLocationX = randi(50, 1, 50);
UserLocationY = randi(50, 1, 50);
AccessPointX = randi(50, 1, 8);
AccessPointY = randi(50, 1, 8);
dis = sqrt((UserLocationX(:,1)-AccessPointX).^2 + (UserLocationY(:,2)-AccessPointY).^2);
for k=1:50
for l=1:8
PL = A+10*gamma*log10(dis(k,l)/do*1000);
pathloss2(k,l)= PL + deltaPLf + deltaPLh + 30;
end
end

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 Accepted Answer

Image Analyst
Image Analyst on 18 Apr 2014

0 votes

Bring dis inside the loop. Try this:
UserLocationX = randi(50, 1, 50);
UserLocationY = randi(50, 1, 50);
AccessPointX = randi(50, 1, 8);
AccessPointY = randi(50, 1, 8);
for k=1:50
for l=1:8
distance = sqrt((UserLocationX(k)-AccessPointX(l)).^2 + (UserLocationY(k)-AccessPointY(l)).^2);
PL = A+10*gamma*log10(distance/do*1000);
pathloss2(k,l)= PL + deltaPLf + deltaPLh + 30;
end
end

4 Comments
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abdulaziz alofui
abdulaziz alofui on 18 Apr 2014
does not work ......its same problem
Walter Roberson
Walter Roberson on 18 Apr 2014
Which line is the error showing up on, and what is the exact error message?
abdulaziz alofui
abdulaziz alofui on 18 Apr 2014
Index exceeds matrix dimensions.
this line : PL = A+10*gamma*log10(distance(k,l)/do*1000);
Image Analyst
Image Analyst on 18 Apr 2014
That's not the code I gave you!!!!

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More Answers (2)

Sara
Sara on 17 Apr 2014

0 votes

The variable dis is 1 by 8 while you ask the code to access dis(k,l) with k from 1 to 50

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abdulaziz alofui
abdulaziz alofui on 17 Apr 2014
no the variable dis its mean the distance b/w 50 random userlocation and 8 random access point
Sara
Sara on 17 Apr 2014
I ran the code as is and that's what acme out. You'll need to change that variable expression if it is not what you expected.

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Walter Roberson
Walter Roberson on 17 Apr 2014

0 votes

UserLocationX = randi(50, 1, 50) is going to build UserLocationX as a row vector. UserLocationX(:,1) then asks for a particular column out of that row vector, and since there is only one row in the row vector the result is going to be a scalar.
Watch out for row versus column access.

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