Bisection Method Code MATLAB
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Problem 4 Find an approximation to (sqrt 3) correct to within 10−4 using the Bisection method (Hint: Consider f(x) = x 2 − 3.) (Use your computer code)
I have no idea how to write this code. he gave us this template but is not working. If you run the program it prints a table but it keeps running. for some reason the program doesnt stop.
tol = 1.e-10;
a = 1.0;
b = 2.0;
nmax = 100;
% Initialization
itcount = 0;
error = 1.0;
% Graph of the function
xval = linspace(a,b,100);
for i=1:100
fval(i) = func(xval(i));
end
plot(xval,fval);
grid on;
hold on;
% iteration begins here
while (itcount <= nmax && error >= tol)
itcount = itcount + 1;
% Generate and save iteratres
x = a + (b-a)/2;
z(itcount) = x;
fa = func(a);
fb = func(b);
fx = func(x);
error = abs(fx);
% error = abs(x - xold);
if (error < tol)
x_final = x;
else
if (fa*fx < 0)
% root is between a and x
b = x;
else
% root is between x and b
a = x;
end
end
plot(z(1:itcount),zeros(itcount,1),'r+');
pause(5)
end
if (itcount < nmax);
val = func(x);
fprintf(1,'Converged solution after %5d iterations',itcount);
fprintf(1,' is %15.7e, %e \n',x_final, val);
else fprintf(1,'Not converged after %5d iterations',nmax);
end
function val = func(x)
%val = x^3 + 4 * x^2 - 10;
val = x^3 - x - 3;
%val = sin(x);
end
3 Comments
tala saffarini
on 24 Mar 2021
can u help me??
Aristi Christoforou
on 14 Apr 2021
function[x]=bisect(m)
a=1;
b=3;
k=0;
while b-a>eps*b
x=(a+b)/2
if x^2>m
b=x
else
a=x
end
k=k+1
end
Uttsa
on 3 Jul 2024
Whats the use of "eps" can you elaborate?
Answers (7)
David Hill
on 4 Oct 2019
function c = bisectionMethod(f,a,b,error)%f=@(x)x^2-3; a=1; b=2; (ensure change of sign between a and b) error=1e-4
c=(a+b)/2;
while abs(f(c))>error
if f(c)<0&&f(a)<0
a=c;
else
b=c;
end
c=(a+b)/2;
end
Not much to the bisection method, you just keep half-splitting until you get the root to the accuracy you desire. Enter function above after setting the function.
f=@(x)x^2-3;
root=bisectionMethod(f,1,2);
1 Comment
Justin Vaughn
on 10 Oct 2022
Thank you for this because I was not sure of how to easily send a functino into my method's function. yours helped tremendously!
SHUBHAM GHADOJE
on 29 May 2021
Edited: Walter Roberson
on 12 Jul 2024
function c = bisectionMethod(f,j,k,error)
%f=@(x)x^2-3;
%j=1;
%k=2;
%(ensure change of sign between a and b)
%error=1e-4
c=(j+k)/2;
while abs(f(c))>error
if f(c)<0&&f(a)<0
j=c;
else
k=c;
end
c=(j+k)/2;
end
Prathamesh Purkar
on 6 Jun 2021
Edited: Walter Roberson
on 3 Dec 2021
tol = 1.e-10;
a = 1.0;
b = 2.0;
nmax = 100;
% Initialization
itcount = 0;
error = 1.0;
% Graph of the function
xval = linspace(a,b,100);
for i=1:100
fval(i) = func(xval(i));
end
plot(xval,fval);
grid on;
hold on;
% iteration begins here
while (itcount <= nmax && error >= tol)
itcount = itcount + 1;
% Generate and save iteratres
x = a + (b-a)/2;
z(itcount) = x;
fa = func(a);
fb = func(b);
fx = func(x);
error = abs(fx);
% error = abs(x - xold);
if (error < tol)
x_final = x;
else
if (fa*fx < 0)
% root is between a and x
b = x;
else
% root is between x and b
a = x;
end
end
plot(z(1:itcount),zeros(itcount,1),'r+');
pause(5)
end
if (itcount < nmax);
val = func(x);
fprintf(1,'Converged solution after %5d iterations',itcount);
fprintf(1,' is %15.7e, %e \n',x_final, val);
else
fprintf(1,'Not converged after %5d iterations',nmax);
end
function val = func(x)
%val = x^3 -x + 1;
val = x^3 -x + 1;
%val = sin(x);
end
narendran
on 2 Jul 2022
1 vote
5cosx + 4.5572 -cos30cosx-ssin30sinx
3 Comments
Image Analyst
on 2 Jul 2022
@narendran it doesn't look like this is an answer to the original question. I think you posted this in the wrong place.
syms x
y = 5*cos(x) + 4.5572 - cos(30)*cos(x)-sin(30)*sin(x)
fplot(y, [-20 20]); yline(0)
vpasolve(y,x)
Walter Roberson
on 3 Jul 2024
Note by the way that cos(30) is cos of 30 radians. It seems unlikely that is what is desired.
Aman Pratap Singh
on 3 Dec 2021
Edited: Walter Roberson
on 3 Dec 2021
f = @(x)('x^3-2x-5');
a = 2;
b = 3;
eps = 0.001;
m = (a+b)/2;
fprintf('\nThe value of, after bisection method, m is %f\n', m);
while abs(b-a)>eps
if (f(a)*f(m))<0
b=m;
else
a=m;
end
m = (a+b)/2;
end
fprintf('\nThe value of, after bisection method, m is %f\n', m);
3 Comments
f = @(x)('x^3-2x-5');
That means that f will become a function handle that, given any input, will return the character vector ['x', '^', '3', '-', '2', 'x', '-', '5'] which is unlikely to be what you want to have happen.
f(0)
f(1)
f(rand(1,20))
S. M. Rayhanul
on 3 Feb 2026 at 8:46
If the product of functional value is positive and also 'a' or 'b'is equal to zero, what is it?
Walter Roberson
on 3 Feb 2026 at 19:36
So f(a)*f(b) > 0, and a == 0 or b == 0.
It is unclear what you mean by "what is it?"
Any function that has a zero crossing can be operated on by a linear operator that moves one of the zero crossings to a given x value. For example cos(x) normally has a zero crossing at 
, but cos(x+pi/2) has a zero crossing at x = 0. So there isn't anything particulary special about the fact that a == 0 or b == 0.
, but cos(x+pi/2) has a zero crossing at x = 0. So there isn't anything particulary special about the fact that a == 0 or b == 0.
Prosun
on 24 Sep 2024
% Clearing Screen
clc
% Setting x as symbolic variable
syms x;
% Input Section
y = input('Enter non-linear equations: ');
a = input('Enter first guess: ');
b = input('Enter second guess: ');
e = input('Tolerable error: ');
% Finding Functional Value
fa = eval(subs(y,x,a));
fb = eval(subs(y,x,b));
% Implementing Bisection Method
if fa*fb > 0
disp('Given initial values do not bracket the root.');
else
c = (a+b)/2;
fc = eval(subs(y,x,c));
fprintf('\n\na\t\t\tb\t\t\tc\t\t\tf(c)\n');
while abs(fc)>e
fprintf('%f\t%f\t%f\t%f\n',a,b,c,fc);
if fa*fc< 0
b =c;
else
a =c;
end
c = (a+b)/2;
fc = eval(subs(y,x,c));
end
fprintf('\nRoot is: %f\n', c);
end
My
on 21 Dec 2025
function p = mybisection(f, a, b, TOL)
while (b - a)/2 > TOL
p = (a + b)/2;
if f(a)*f(p) > 0
a = p;
else
b = p;
end
end
p = (a + b)/2;
end
%main bisection
clc; clear;
f = @(x) x^2 - 3;
a = 1;
b = 2;
TOL = 1e-6;
root = mybisection(f, a, b, TOL)
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on 4 Oct 2019
on 3 Feb 2026 at 19:36
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