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Why do I get extra digits after the string of Hex digits when using printf?

cout << printf("%06X ", 0xABCDEF);

produces: ABCDEF 7

So where does the 7 come from and how can I get rid of it?

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4 Answers 4

You need to use either cout or printf, not both.

printf("%06X ", 0xABCDEF);

Or

cout << hex << 0xABCDEF;

When you do both, the cout prints the result of the printf function, which is the number of characters printed (six characters and a space).

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You're passing the result of the printf operation to cout.

Generally speaking, you use either printf or cout.

printf("%06X",0xABCDEF); //will do what you want in a C-like way

and

std::cout << std::hex << 0xABCDEF; //is the C++ iostream way
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+1 for qualifying cout and hex. –  Billy ONeal Sep 13 '10 at 21:23

Try

cout << hex << 0xABCDEF;

The '7' is the return value of the printf() function. It is printed by cout, where the hex string is printed by the printf().

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You should probably qualify those with namespace std. –  Billy ONeal Sep 13 '10 at 21:22

printf doesn't work together with cout. printf formats your value and prints it, it doesn't return the formatted value.

The 7 comes from the fact that printf returned that value, which is the total number of characters written. This 7 is then sent to cout, which prints it.

If you want to print formatted text using cout, the simplest way is to use Boost.Format, but the iostreams library also provides functionality for this via manipulators.

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