use the for or while looping to the series S=4*[sin(theata)/1 +sin(3thea​ta)/3+sin(​5theata)/5​+.....] ,,in the range 0<theata<pi with error bound of 10^-6..?....please help me to solve this question in the earliest opportunity

2 vues (au cours des 30 derniers jours)
majid
majid le 15 Avr 2013
S=4*[sin(theata)/1 +sin(3theata)/3+sin(5theata)/5+.....]

Connectez-vous pour répondre à cette question.

Réponse acceptée

Youssef Khmou
Youssef Khmou le 15 Avr 2013
Modifié(e) : Youssef Khmou le 15 Avr 2013
Try this version :
% theta=0:pi/30:pi;
theta=0:0.01:2*pi;
S=0;
tolerance=1e-6;
n=1;
r=6; % random
counter=1;
while r>tolerance
N1=norm(S);
S=S+sin(n*theta)/n;
N2=norm(S);
r=abs(N2-N1);
n=n+2;
counter=counter+1;
end
plot(theta,S);
axis([0 4 0 1])
grid on
Now it approximates well the rectangle, the number of iterations is saved in the variable 'counter', finish the code with the desired prints .
To conclude you work, there a special name of the infinitesimal waves nears the edges , that phenomenon has a special name , it starts with G.....
  3 commentaires
Afficher 1 commentaire plus ancien
Image Analyst
Image Analyst le 15 Avr 2013
We're trying to help you without doing your homework outright for you. We've seen very little code by you so far. I'm sure you don't want to just turn in our code as your own, so post some code we can help with by giving hints.
majid
majid le 16 Avr 2013
ok thanks so much i'll do my best

Connectez-vous pour commenter.

Plus de réponses (2)

Image Analyst
Image Analyst le 15 Avr 2013
Hint, have a loop over k and calculate sin(k*theata)/k in the loop. I hope that's not doing too much of your homework for you. You still have to make the loop and sum up the term in the loop into the overall sum and then multiply that by 4.
  2 commentaires
majid
majid le 15 Avr 2013
Modifié(e) : Image Analyst le 15 Avr 2013
sum=0;
k=1;
while o<theata<pi
s(k)=sin(k*theata)/k;
sum=sum+k;
k=k+1;
sum=4*sum;
Note:I want to now how I can do the odd number in series,Also he asked for
i. The number of iterations it took to converge according to above set criterion. ii. The value of the final term. iii. The value of the sum of the series. Plot the sum of series for first 2000 iterations.
Image Analyst
Image Analyst le 15 Avr 2013
Use a for loop instead of a while loop. Have an outer for loop over theata.
for theata = 0: 0.01 : pi
Don't use "sum" since that is a built in function name and you'll be destroying it. Use S like you started to. Finally you need to calculate the "true" value (whatever that is) and compare it to S and bail out of your inner for loop once the error is less than 1E-6.

Connectez-vous pour commenter.

Carlos
Carlos le 15 Avr 2013
Modifié(e) : Carlos le 15 Avr 2013
Try this
theata=pi/2;
a=1;
S=0;
n=1;
while (a>10e-6)
a=sin(n*theata)/n;
S=S+a;
n=n+2;
end
S=4*S;
  2 commentaires
majid
majid le 15 Avr 2013
use theata= 0.7 degrees. Then Print:
i. The number of iterations it took to converge according to above set criterion. ii. The value of the final term. iii. The value of the sum of the series. Plot the sum of series for first 2000 iterations.
Carlos
Carlos le 15 Avr 2013
Sorry, I misunderstood the question, I thought theata should be a fixed value.

Connectez-vous pour commenter.

Catégories

En savoir plus sur MATLAB dans Help Center et File Exchange

Tags

Community Treasure Hunt

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

Start Hunting!

Translated by