Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a working Matlab C code (mex files) which currently uses double precision. Thus I replaced

double *datOut = mxGetPr(mxOut) by float *datOut = (float*)mxGetData(mxOut);,

mxCreateDoubleMatrix by mxCreateNumericArray()

and

the datatypes of the variables double by float. The only other mex-Function which is being used is mxDuplicateArray() but nothing else. I didn't change anything to this call... Now I have a Code running which never finishes. I stripped it down quite a bit so that I hope it's short enough that somebody could help me:

float myFunc(const mxArray *point, int index)
{
    float *dat = (float*)mxGetData(point);
    return dat[index]*dat[index]*dat[index];
}

void mexFunction(int nlhs, mxArray *plhs[], int nrhs, const mxArray *prhs[] )
{
    float h, f0, df1, df2, diff;

    // Input Vars #1
    float diff  = (float)mxGetScalar(prhs[1]);
    float H = (float)mxGetScalar(prhs[2]);
    int index1 = (int)mxGetScalar(prhs[3]);
    int index2 = (int)mxGetScalar(prhs[4]);

    // Input Vars #2 -> Duplicate it
    mxArray *newPnt = mxDuplicateArray(prhs[0]);
    float *newPntDat = (float*)mxGetData(newPnt);

    // ...
    // PERHAPS SOME UNIMPORANT CODE HERE ...
    // ...
    h = H;
    f0 = myFunc(prhs[0], index1);

    newPntData[ index2 ] += h;
    df1 = (myFunc(newPnt, index1)-f0)/h;
    while(true)
    {
        h /= 2;

        newPntDat[ index2 ] -= h;
        df2 = (myFunc(newPnt, index1)-f0)/h;

        // If precision is okay
        if(abs(df2-df1) <= diff)
            break;

        // Save for next loop iteration
        df1 = df2;
    }

    // Return df2-Value to Matlab
}

somehow it's an infinite loop and I dunno why since the precision which is defined via diff should be easily reachable for the given function myFunc(). The identicall code runs fine when using double precision with the both functions double *datOut = mxGetPr(mxOut) and mxCreateDoubleMatrix. I also tried to call the mex-Function by explicitly pass the point via point = zeros(rows, 1, 'single');.

Thanks very much for pointing me to the right direction or giving me ANY hint about it. Thanks!

share|improve this question

1 Answer 1

up vote 1 down vote accepted

You need to replace abs() with fabs().

In general, in such cases, I would use mexPrintf() to print the values that affect the termination condition. I.e., if the above change does not help, try adding

mexPrintf("%g %g %g %g\n",df2,df1,diff, fabs(df2-df1));

Just to make sure the behavior is as you expected.

share|improve this answer
    
Thanks a lot, that could really really help me out. I'll try it later and tell you if it works. –  tim Jun 23 '11 at 7:05
    
Ah and just the question: What will mxArray *newPnt = mxDuplicateArray(prhs[0]); do? Will this work even when using float *newPntDat = (float*)mxGetData(newPnt); when just calling the mex-Function via myMexFunc(ones(1000, 1)) or do I have so specify the parameter 'single' to ones()? –  tim Jun 23 '11 at 7:17
    
You still have to use the 'single' parameter. Otherwise the array passed to the mex will be double by default and you cannot cast it to float (mxDuplicateArray will work either way -- the result is of the same type as the input and will be single array only if you pass a single precision array to the mex) –  nimrodm Jun 23 '11 at 7:30
    
Okay thanks again - so that's what I thought too :) I tried it but somehow, the algorithm doesn't work when transfering it to use floats... Question: Since H and diff are input arguments (which I type-cast to floats) and are used for the abort-condition if(abs(df2-df1) <= diff) do I also need to somehow pass them as 'single' values? Currently I'm just using something like myMexFunc(ones(100, 1, 'single'), 0.001, 0.0001)... –  tim Jun 23 '11 at 11:27
    
Edit: Tried it also, but still doesn't work. So I have to look further into it with many debug outputs... Probably you cant help with any more code right? –  tim Jun 23 '11 at 11:46

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.