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I have a question that seems very unusual to me. I have a condition statement that doesn't work as it should. Particularly, I have

double maxx = *max_element(v1.begin(), v1.end());
if(x > maxx){
    cout << x << "\t" << maxx << endl;
    }

where v1 is a vector. The weird thing is the output: it gives me equal numbers, i.g.

168.68 168.68

This statement is related to gsl interpolation function. In fact, it duplicates a statement in interp.c:150 that causes an error of gsl: interp.c:150: ERROR: interpolation error. So when a number that should be executed normally comes to the function it actually gives true instead of false and I have no idea why, as the number (x) is actually equal to the maximal value allowed.

P.S.: I have checked the if statement on its own (with elementary entries) and it seems to work fine.

P.P.S.: A piece of code from interp.c:

double gsl_interp_eval (const gsl_interp * interp,
                const double xa[], const double ya[], double x,
                gsl_interp_accel * a){

 double y;

 int status;

 if (x < interp->xmin || x > interp->xmax)
   {
     GSL_ERROR_VAL("interpolation error", GSL_EDOM, GSL_NAN);
   }

 status = interp->type->eval (interp->state, xa, ya, interp->size, x, a, &y);

 DISCARD_STATUS(status);

 return y;}

So it returns an error even for x = interp->xmax, although it definitely should not.

UPDATE: I changed double to long double in declaration. This fixed some places (I use this function more than once), but not all of them.

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3  
I bet you anything those values are not equal. Please try printing (x - maxx). –  Oliver Charlesworth Mar 6 '13 at 18:19

2 Answers 2

up vote 1 down vote accepted

Looks like floating point inaccuracy. Try printing the values without limiting the number decimal places or printing (x-maxx) as suggested by Oli Charlesworth.

The usual solution to this kind of problem is to apply a small 'epsilon' on comparisons.

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Thank you guys, you were absolutely right! It actually returned a very small difference. Shall I then rewrite the comparison in subtraction form or there is any more elegant way of solving this? –  Eugene B Mar 6 '13 at 18:34
    
Given the maxx is hard limit, I don't see there is much you could do. I suppose you could cap values close to maxx, say < maxx + 0.0001 or something depending on your application. –  Jack Aidley Mar 6 '13 at 19:58
    
Also, please accept an answer if it has answered your question :) –  Jack Aidley Mar 6 '13 at 19:58
    
thank you once more! –  Eugene B Mar 6 '13 at 20:08

Floating point is a tricky business, especially when comparing values. If the values are very close, they may well print the same, but still be different.

Have a look at:

http://floating-point-gui.de/

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