ploting in for loop

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Ahmet Oguz
Ahmet Oguz on 13 Nov 2016
Edited: Ahmet Oguz on 15 Nov 2016
I wrote sum which is xs for below calculation There is something wrong with my code below that i can not figure it out?
clc
t=cputime;
k=0;
for p=1:1:7
dt=10^-p;
k=0:1.35/dt;
xs = 2/(sqrt(pi))*sum(exp(-(k*dt).^2)*dt)
e=cputime-t;
semilogx(e,dt)
end

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Accepted Answer

Walter Roberson
Walter Roberson on 14 Nov 2016
Try this:
k=0;
for p=1:1:7
t=cputime;
dt(p)=10^-p;
k=0:1.35/dt(p);
xs = 2/(sqrt(pi))*sum(exp(-(k*dt(p)).^2)*dt(p))
e(p)=cputime-t;
end
semilogx(1./dt, e)
You were plotting timestep as if it were a consequence of execution time. Also, as p increases, dt decreases, so if you plot dt then it is getting smaller and smaller and so your datapoints were getting further left, which is more difficult for people to understand. If you plot against 1./dt then you are plotting time as a consequence of number of data samples used, which is much more natural for people.
  1 Comment
Ahmet Oguz
Ahmet Oguz on 14 Nov 2016
Thanks i figure it out now.

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More Answers (1)

Daniel kiracofe
Daniel kiracofe on 13 Nov 2016
Edited: Daniel kiracofe on 13 Nov 2016
"there is something wrong" is pretty vague, so I'm totally guessing at what your problem is. But this seems like a reasonable guess. If this doesn't answer you question then you need to post more detail about what is your specific problem.
clc
t=cputime;
k=0;
for p=1:1:7
dt(p)=10^-p;
k=0:1.35/dt(p);
xs = 2/(sqrt(pi))*sum(exp(-(k*dt(p)).^2)*dt(p))
e(p)=cputime-t;
end
semilogx(e,dt)
  2 Comments
Ahmet Oguz
Ahmet Oguz on 14 Nov 2016
same mistake accured there is no graph
Walter Roberson
Walter Roberson on 14 Nov 2016
I would make a small change, and move the
t=cputime;
to inside the for p loop. Otherwise you are getting cumulative time since you started, instead of time for that particular refinement.

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