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void myPrintf(const char* format, ...) {
    // some code
    va_list vl;
    printf(format, vl);
}

int main() {
    myPrintf("%d\n", 78);
}

In this code I have tried to pass the argument from ellipsis to printf. It compiles but prints garbage instead of 78. What is the right way of doing it.

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1  
because vl is not initialzied –  billz Sep 10 '13 at 10:02

3 Answers 3

up vote 5 down vote accepted

You need to do the following:

void myPrintf(const char *format, ...) {
    va_list vl;
    va_start(vl, format);
    vprintf(format, vl);
    va_end(vl);
}

Please note the use of vprintf instead of printf.

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Two problems:

  1. The first is that you don't initialize vl, use va_start for that. Don't forget to use va_end afterwards.

  2. The other problem is that printf doesn't take a va_list argument. Use vprintf for that.

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How to initalize vl I donth know the count of arguments. Should I count % signs in format –  Ashot Sep 10 '13 at 10:07
    
@Ashot See my updated answer, and follow the reference links. –  Joachim Pileborg Sep 10 '13 at 10:07

First Initialize vl

va_start(vl,1); //No. of arguments =1

Then take the int from it

printf(format, va_arg(vl,int));

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