Trying to calculate the square root of a positive number based on the “divide and average” scheme.

1 vue (au cours des 30 derniers jours)
NikePro
NikePro le 21 Fév 2016
Commenté : Roger Stafford le 21 Fév 2016
I am re-posting this as it would not post correctly earlier.
I am trying to calculate the square root of a positive number, a, based on the “divide and average” scheme. The scheme is formulated in the following:
x = ( x + a/x) / 2
My function, however, returns incorrect results. I was hoping someone could help me debug it.
function v = my_sqrtD(t)
%find the square root of t, and t must be larger than 0.
v_pre = t/2.0;
my_eps = 0.0001;
%when the limit is reached, stop the loop
n_limit = 1000000;
for i=1:n_limit
v = (v_pre + t/v_pre)/2.0;
res = abs((v-v_pre)/v);
if res < my_eps, break, end
end %end of loop
if (i==n_limit)
disp('The root cannot be found.');
end

Connectez-vous pour répondre à cette question.

Réponse acceptée

Roger Stafford
Roger Stafford le 21 Fév 2016
Modifié(e) : Roger Stafford le 21 Fév 2016
The line
v = (v_pre + t/v_pre)/2.0;
is your trouble. It should read:
v_pre = (v_pre + t/v_pre)/2.0;
However, you will have to appropriately revise your computation of 'res'.
  2 commentaires
Roger Stafford
Roger Stafford le 21 Fév 2016
I've changed it a bit:
for i=1:n_limit
v = (v_pre + t/v_pre)/2.0;
res = abs((v-v_pre)/v);
v_pre = v; % <-- Update v_pre (That's what was missing)
if res < my_eps, break, end
...

Connectez-vous pour commenter.

Plus de réponses (0)

Catégories

En savoir plus sur Loops and Conditional Statements 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