solve vs. fsolve

Question

byungkeuk cho on 27 May 2020

0
Link

Direct link to this question

https://ch.mathworks.com/matlabcentral/answers/534803-solve-vs-fsolve

Answered: Walter Roberson on 27 May 2020

Accepted Answer: Star Strider

Open in MATLAB Online

I am trying to solve non linear equations with solve or fsolve.

But I found difficulties in using them.

for example,

i would like to solve the equation below.

a^2 = 4

then, i can get the answer with the script below.

syms a;
eqn1 = a^2 == 4;
[a1] = solve(eqn1);

then, it gives me a = -2, 2

but when I used fsolve, it gives me only one value according to initial point.

this is the script.

fun = @test;
x0 = [1];
[a2] = fsolve(fun,x0)
function F = test(x)
F(1) = -x(1)^2 + 4;
end

if I set x0 as [-1], then it gives me another value but still only one value.

How can I get the all values with fsolve?

0 Comments
Show -2 older commentsHide -2 older comments

Sign in to comment.

Sign in to answer this question.

Answer 1

Star Strider on 27 May 2020

0
Link

Direct link to this answer

https://ch.mathworks.com/matlabcentral/answers/534803-solve-vs-fsolve#answer_439708

Open in MATLAB Online

Give fsolve different starting points, one positive and one negative:

eqn1 = @(x) x.^2 - 4;
for k = 1:2
    a2(k) = fsolve(eqn1, 5*(-1)^k);
end
a2

producing:

a2 =
           -2            2

2 Comments
Show NoneHide None

byungkeuk cho on 27 May 2020

Thank you for your quick response.

But if I have no idea on "how many staring points needed" or "what points they should be" due to complicated equations, then how can I solve it?

Star Strider on 27 May 2020

My pleasure.

The easiest way would be to plot it, at least to find the real roots. If some or all of the roots are complex, this becomes more difficult, however fsolve will take complex initial estimates and will use them to return complex roots. In that situation, it will be necessary to experiment.

Sign in to comment.