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I am trying to create a program in C++ that will use the bisection method on a cubic function to find a root of that cubic function. Now I have this:

#include <iostream>
#include <cmath>

using namespace std;

int functie(double a,double b,double c,double d,double x){
    double y;
    y = (a*x*x*x + b*x*x + c*x + d);
    return y;
}

int main(){

    int a,b,c,d;//no comment

    cout << "enter of form: ax^3 + bx^2 + cx + d (integers)" << endl << "a: ";
    cin >> a;
    cout << endl << "b: ";
    cin >> b;
    cout << endl << "c: ";
    cin >> c;
    cout << endl << "d: ";
    cin >> d;

    double min, max, temp;

    min = -100;
    max = 108.54267542;
    while(functie(a,b,c,d,max) == 0 ||functie(a,b,c,d,min) == 0 ){
    temp = (max + min)/2;
    if(functie(a,b,c,d,min) < 0 && functie(a,b,c,d,temp) < 0 || functie(a,b,c,d,min) > 0 && functie(a,b,c,d,temp) > 0){
           min = temp;
    } else {max = temp;}
    }
    cout << min << endl;
    cout << max << endl;
    cout << temp << endl;
    system("pause");
    return 0;
}

but it doesn't work; the cout's at the end of the program only output the input values. (and in case you were wondering why my max value is so weird, is to prevent that when max is +100 and the root is at 0, then the program will crash...)

So if you have got some time and want to check this, thank you.

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migrated from programmers.stackexchange.com Mar 4 '12 at 12:33

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closed as too localized by Oliver Charlesworth, Banthar, Mat, Cody Gray, Mark Mar 4 '12 at 13:09

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3  
Vote to close: Asking strangers to spot errors by inspection is not productive. You can solve this by stepping through your code in a debugger, or by printing out intermediate values. –  Oliver Charlesworth Mar 4 '12 at 12:38
    
By the way how do you do vote for closing (i am not saying I am going to vote for this particular question). –  Boris Strandjev Mar 4 '12 at 12:59
    
@BorisStrandjev You'll need 3000 reputation to be able to close questions. –  Mr Lister Mar 4 '12 at 13:06
    
Is this homework? –  JBRWilkinson Mar 4 '12 at 13:10
    
Your code doesn't check that f(min) and f(max) actually have different signs. –  James Youngman Mar 4 '12 at 15:09

2 Answers 2

up vote 2 down vote accepted

Of course it's wrong. On this line:

while(functie(a,b,c,d,max) == 0 ||functie(a,b,c,d,min) == 0 )

The loop will execute only when the value returned from functie is zero. The values of max and min should never change.

And you have declared functie like this:

int functie(double a,double b,double c,double d,double x)

You're returning (and you should) a double value from functie, but because of the definition it's cast into an int.

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1  
You are correct in your observations, though I would like to add that words like What's this? are a bit harsh. –  Boris Strandjev Mar 4 '12 at 12:51
    
Oh my god! what have I done there? It should state != in my while. and of course that function should be a double... :( –  vrwim Mar 4 '12 at 12:54
    
@BorisStrandjev Okay, then... :) –  0605002 Mar 4 '12 at 12:54
    
So I changed it into: double functie(double a,double b,double c,double d,double x){ double y; y = (axxx + bxx + cx + d); return y; } identical while(functie(a,b,c,d,max) != 0 ||functie(a,b,c,d,min) != 0 ){ cout << "loop starts with: " << temp << endl; identical and now it will find the root, but never get out of the loop... Is there something that will stop the loop from the moment that it is close enough to the root? –  vrwim Mar 4 '12 at 13:07
    
For a half-interval search, max and min do have to change. –  Sébastien Le Callonnec Mar 4 '12 at 13:13

Several comments on your program:

You should be returning double in your functie function:

double functie(double a,double b,double c,double d,double x){
    return  (a*x*x*x + b*x*x + c*x + d);
}

As FlopCoder noted this check is not correct:

while(functie(a,b,c,d,max) == 0 ||functie(a,b,c,d,min) == 0 )

You need to check that they are neither at root point, not that any of the two is at. However I will modify it a bit further because there is a small specific when comparing with doubles.

double epsilon = 1e-10;
while(fabs(functie(a,b,c,d,max)) > epsilon
        && fabs(functie(a,b,c,d,min)) > epsilon){

Note that I compare with one very small, still not zero constant. Doubles will never become equal to zero (I am getting the absolute value because we need to check whether we are sufficiently close to zero on either side.

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