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A quick question, is there a way to perform these 3 operations:

while(...) {
fscanf(input, "%lf %lf", &t, &y);
tTotal += t;
yTotal += y;
}

in one operation where t and y add themselves to tArray and yArray respectively, inside the scanf statement? Something of the form

fscanf(input, "%lf %lf", ...code..., ...code...); 

Thanks, Ash.

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What do tArray and yArray represent? What exactly are you trying to achieve? –  James Morris Jan 10 '10 at 23:02
    
@Ash - I think you need to un edit. tArray += t will advance your array pointer to some random location in memory. –  Seth Jan 10 '10 at 23:02
    
Are you trying to place values into array elements? –  James Morris Jan 10 '10 at 23:03
    
Sorry again, I've rewritten it from my work to try and simplify it, the code should be more clear now. –  Ash Jan 10 '10 at 23:04
1  
I don't see that combining the input statement and the math statements into one line or function all has any positive benefits, except maybe a little less typing. Why would you want to do this? Perhaps you should use LISP? –  Thomas Matthews Jan 10 '10 at 23:07

6 Answers 6

up vote 2 down vote accepted

There is no way to put the addition into the parameters of the fscanf function because fscanf accepts pointers and simply writes to their locations. However, you could still make the addition part of the same statement like this:

while(...) {
    fscanf(input, "%lf %lf", &t, &s), tTotal += t, sTotal += s;
}

Note that the result of this statement is the value of the last expression. So, for example, if you wanted to record the return value of scanf, you should do:

while(...) {
    int res;
    useResult((res = fscanf(input, "%lf %lf", &t, &s), tTotal += t, sTotal += s, res));
}

... which is ugly but works.

(Disclaimer: I haven't compiled this code)

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Doing that would require fscanf() to know the operation that you wanted in addition to where to store the result (and it would be undefined in the case where the variable hadn't yet been initialized).

You could write a wrapper around fscanf() to do it, but that's just a lot of work for a very specific use case, and would ultimately be slower than just doing the += after.

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It is not possible. fscanf simply writes the scanned values to the memory locations given by the pointers, and there is no way to make that operation perform any addition.

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I actually made it perform an addition, albeit it behaves a bit wrong. Declared a global int i and a function int* add(int* a) {i=+*a; return a;}, then called scanf("%d",add(&j)); In a for loop, the addition I wanted is performed exactly one iteration after the data is provided :D This code is WRONG, but I had to try :D –  mingos Jan 10 '10 at 23:17
    
That's because function arguments are evaluated before the function is called, so your add gets called before scanf. –  jk. Jan 10 '10 at 23:21

Pointer arithmetic to the rescue!

while(fscanf(input, "%lf %lf", t, y)) {t++; y++;}

Where t and y point to the start of their arrays initially.

Of course, you'll need to add your own bounds checks.

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That doesn't seem to perform the requested addition. –  Drew Dormann Jan 10 '10 at 22:56
    
I think that's actually wrong, because he wants to add the scanned values to the pre-existing, not just assign them. –  3lectrologos Jan 10 '10 at 22:57
    
Yes sorry the code wasn't completely clear, I've edited it now. –  Ash Jan 10 '10 at 22:57

In C++ this would be fairly easy, but C it's likely to be pretty challenging (at best).

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The question is: what are you trying to achieve?
If you just want to reduce clutter, create an inline function something like:

int GetData(FILE *fp, double *ptTotal, double *pyTotal)
{
    double t, y;
    if (2 == fscanf(fp, "%lf %lf", &t, &y))
    {
         *ptTotal += t;
         *pyTotal += y;
         return 1;
    }
    else
    {
        return 0;
    }
}

and call that in a loop.

However if you have hopes of speeding up the loop, then I don't like your chances. fscanf is probably many times slower than the maths, so I don't think you'll speed it up much without switching to a bulk reading style, which will make the program much more complex.

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