Babylonian algorithm - square root of a number
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Dear all,
I am trying to bulid a function that should calculate the square root o a positive number. Unfortunatly I cannot run the code as expected.
Does anyone spot the error? Thank you in advance.
function y=sqrtB(x)
% It returns a row vector containing the approximation of the square roots of the elements of x.
% Using the Babylonian method.
% with precision 10^-10
%
% INPUT x ... 1xn vector of positive numbers
%
% OUTPUT y ... 1xn vector of square roots of x
%format long
xn=x./2; %starting number
err=abs(xn-x./xn); % the absolute error
while any(err > 1e-10) % upper bundary for the absolute error (vector compatible)
xn = 0.5 .* (xn + x./xn);
err=abs(xn-x./xn);
%disp(err);
end
y=xn;
disp(x);
disp(y);
end
Accepted Answer
What is the problem - works for me:
y = sqrtB([16 4 9]);
function y=sqrtB(x)
% It returns a row vector containing the approximation of the square roots of the elements of x.
% Using the Babylonian method.
% with precision 10^-10
%
% INPUT x ... 1xn vector of positive numbers
%
% OUTPUT y ... 1xn vector of square roots of x
%format long
xn=x./2; %starting number
err=abs(xn-x./xn); % the absolute error
while any(err > 1e-10) % upper bundary for the absolute error (vector compatible)
xn = 0.5 .* (xn + x./xn);
err=abs(xn-x./xn);
%disp(err);
end
y=xn;
disp(x);
disp(y);
end
i get correct results by calling the function properly.
4 Comments
Francesco Rossi
on 21 Oct 2019
James Tursa
on 22 Oct 2019
Did you really misspell 'format' as 'fomat'?
what shows up if you enter the following in the command window:
which format -all
Francesco Rossi
on 22 Oct 2019
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