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Why scanf must take the address of operator

Why do we pass the variable in the case of printf(), whereas the address of the variable in the case of scanf()? why to pass address in scanf

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marked as duplicate by Greg Hewgill, Musa, Richard M, Eddy, Mysticial Aug 25 '12 at 20:02

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2 Answers 2

why to use '&' in scanf( ) but not in printf( )

'printf'()' only need the values in order to output them. 'scanf()' stores values, so it needs a place to store them. This is done by providing the addresses (in pointers) of where to store the values.

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With scanf you want the callee to modify the variable that's why you pass it by reference, if you pass it by value like with scanf you would not have access to the variables address to modify its contents.

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scanf needs a pointer not a reference –  Adrian Cornish Aug 24 '12 at 3:29
    
@AdrianCornish, References in the C++ sense don't exist in C. –  chris Aug 24 '12 at 3:29
    
@Chris I know - my point exactly :-) –  Adrian Cornish Aug 24 '12 at 3:30
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In C, 'pass by reference' means 'pass the address of the object'. Since the question is not tagged C++, it does not matter what C++ calls a reference (or what C++ means by 'reference'). The term 'pass by reference' predates C++. –  Jonathan Leffler Aug 24 '12 at 3:33
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C does not define the word "reference". Here it's used purely in the English sense. The same way you could use it when talking about a C program performing reference counting. It's perfectly reasonable usage; the fact that "reference" is a specifically-defined technical term in another language is irrelevant. –  R.. Aug 24 '12 at 5:26

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