How to find first negative solution with the bisection method

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ken il 9 Mag 2022

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https://it.mathworks.com/matlabcentral/answers/1714655-how-to-find-first-negative-solution-with-the-bisection-method

Risposto: Chunru il 9 Mag 2022

f(x) = x + 1 −2 sin(πx) = 0

How to find first negative solution with the given bisection method

function [c, n, err] = Bisection_method(g, a, b, tol, N)
    c = [];
    n = 0;
    err = inf;
    FA = g(a);
    FB = g(b);
    if(a > b)
        err = inf;
        c = [];
    elseif (FA*FB>= 0)
    else
        while ((abs(err) > abs(tol)) && (n <= N))
            n = n+1;
            c = (a + b) / 2;
            fmid = g(c);
            err = abs(fmid);
            if(fmid * g(a) > 0)
                a = c;       
            
            else
                b = c;
             
            end
        end
    end
end

1 Commento
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KSSV il 9 Mag 2022

You should play with the intervel [a,b].

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Answer 1

Chunru il 9 Mag 2022

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Apri in MATLAB Online

g = @(x) x + 1 -2 * sin(pi*x) ;
% Use interval [-1.5, 0] for example
[c, n, err] = Bisection_method(g, -1.5, 0, 1e-6, 1000)
c = -1.0000
n = 22
err = 8.6822e-07
function [c, n, err] = Bisection_method(g, a, b, tol, N)
    c = [];
    n = 0;
    err = inf;
    FA = g(a);
    FB = g(b);
    if(a > b)
        err = inf;
        c = [];
    elseif (FA*FB>= 0)
    else
        while ((abs(err) > abs(tol)) && (n <= N))
            n = n+1;
            c = (a + b) / 2;
            fmid = g(c);
            err = abs(fmid);
            if(fmid * g(a) > 0)
                a = c;       
            
            else
                b = c;
             
            end
        end
    end
end