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#include <stdio.h>

int main() {
   int i=10,j=20;
   printf("%d%d%d",i,j);
   printf("%d",i,j); 
   return 0;
}

Using the Turbo C compiler, the output is like:

10 10 garbageValue

20

Can someone explain why this is?

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Undefined behavior. There is no use thinking about what it may have done behind the scenes due to two reasons: you will not use this code and every compiler is different. –  jsn Jun 15 '12 at 17:06

5 Answers 5

up vote 0 down vote accepted

Which compiler you are using? I tested it on turbo c v2.0 and turbo c++ v 4.5 compilers and the output is

10 20 garbage value

10 

This is the actual output you will get as you are using only two variables and three format specifiers. So it will print the values stored in the two variables and print a garbage value.

In the second case you are using only one format specifier and two variables, so in that case it will only print one value stored in the variable and skips the other variable. You might get the above output if you compile it under turbo c 2.0 and turbo c++ 4.5 compilers.

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The first call to printf() has one too many format specifiers, resulting in undefined behaviour. In this case a garbage value is printed.

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See the title to his question -- he clearly knows this already. The second one has the wrong number of arguments as well, by the way. –  Ernest Friedman-Hill Jun 15 '12 at 15:52
    
@ErnestFriedman-Hill, the title of the question has changed since I posted this. As for the second, I noticed there are the incorrect number of arguments however I cannot explain why it prints 20 and not 10. Reading the C specification it indicates that 10 should be printed (the i processed and the j ignored). –  hmjd Jun 15 '12 at 15:52
    
Yeah, but I think the original still expresses the notion. –  Ernest Friedman-Hill Jun 15 '12 at 15:53
    
@ErnestFriedman-Hill, I can't see how the OP already knows that this causes undefined behaviour. –  hmjd Jun 15 '12 at 15:55
printf("%d%d%d",i,j); =>

you are telling printf to print three integer, but you provide just three, so printf prints some garbage from the stack. the other:

printf("%d",i,j);

is supposed to take just one integer, but you are passing two. The C language does not guard against such errors, and what's happen is completely undefined, so to explain how you see exactly these outputs is difficult unless you know your compiler internal, and not so useful since that code is wrong and expected to fail.

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The second printf call is not undefined in the C standard. See C99 7.19.6.1:2. The OP's compiler is not standard-compliant. –  Pascal Cuoq Jul 10 at 10:32

The behavior is undefined, meaning the language spec doesn't say what happens in this case. It depends entirely on the implementation of the compiler and on your system architecture. Explaining undefined behavior can be occasionally entertaining, often maddening, and pretty much always useless -- so don't worry about it!

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You've got your format specifiers all mixed up, and I don't think the code you posted is your actual code. On my Visual Studio compiler, I see this:

1020010

Each %d denotes a place where printf should insert one of your integer values.

printf("%d%d%d",i,j);

You told printf to expect three, but you only gave it two. It's possible Turbo C is doing something different with the arguments under the hood, but you still need to match your format specifiers to your arguments:

printf("%d%d",i,j);
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Of course Turbo C does something different -- this is undefined behavior, and every compiler is implemented differently. –  Ernest Friedman-Hill Jun 15 '12 at 15:52

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