Please, I would appreciate any assistance on debugging the attached code.

3 visualizzazioni (ultimi 30 giorni)
Isaac
Isaac il 1 Apr 2016
Modificato: Walter Roberson il 2 Apr 2016
The first section of the code is okay, but I am having it difficult solving for uu and ud in the attached code. I want to continue solving for the values of uu and ud as long the conditions in the while loops are valid. Pls, see the attached file.
This is the pseudo code:
for j=1:N
k=1;
uu(k,j)=0;
Lou(k,j)=2;
p(k,j)=6000;
pQ(k,j)=asin(1+Lou(k,j));
Lh2(j)=200;
k22(k,j)=Lh2(j)./Lou(k,j);
if p(k,j)>pQ(k,j)
while Lou(k,j)<Lh2
k22f(k,j)=Lh2(j)./(Lou(k,j)+uus);
funLu(k,j)=asin(1+k22f(k,j));
testfunLu=@(x)eval(subs(funLu(k,j),uus,x))-p(k,j);
uuf(k,j)=fsolve(testfunLu,55);
uu(k+1,j)=uuf(k,j);
Lou(k+1,j)=Lou(k,j)+uu(k+1,j);
k22(k+1,j)=Lh2(j)./(Lou(k+1,j)+uu(k+1,j));
p(k+1,j)=p(k,j);
k=k+1
end
end
end
  9 Commenti
Mostra 7 commenti meno recenti
Isaac
Isaac il 1 Apr 2016
Modificato: per isakson il 2 Apr 2016
I have tried using the fsolve this way also
testfunLu=@(x)eval(subs(funLu(k,j),uus,x))-p(k,j);
uuf(k,j)=fsolve(testfunLu,55);
Isaac
Isaac il 1 Apr 2016
Modificato: per isakson il 2 Apr 2016
This is the pseudo code:
for j=1:N
k=1;
uu(k,j)=0;
Lou(k,j)=2;
p(k,j)=6000;
pQ(k,j)=asin(1+Lou(k,j));
Lh2(j)=200;
k22(k,j)=Lh2(j)./Lou(k,j)
if p(k,j)>pQ(k,j)
while Lou(k,j)<Lh2
k22f(k,j)=Lh2(j)./(Lou(k,j)+uus);
funLu(k,j)=asin(1+k22f(k,j));
testfunLu=@(x)eval(subs(funLu(k,j),uus,x))-p(k,j);
uuf(k,j)=fsolve(testfunLu,55);
uu(k+1,j)=uuf(k,j);
Lou(k+1,j)=Lou(k,j)+uu(k+1,j);
k22(k+1,j)=Lh2(j)./(Lou(k+1,j)+uu(k+1,j));
p(k+1,j)=p(k,j);
k=k+1
end
end
end

Accedi per commentare.

Accedi per rispondere a questa domanda.

Risposte (0)

Categorie

Scopri di più su Loops and Conditional Statements in Help Center e File Exchange

Tag

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by