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I am trying to run a simple C program but am getting this error: " warning: format ‘%s’ expects type ‘char ’, but argument 2 has type ‘char ()[20]’"

Running Mac OSX Mountain Lion Compiling in terminal using gcc 4.2.1

#include <stdio.h>

int main() 
{
    char me[20];

    printf("What is your name?");
    scanf("%s",&me);
    printf("Darn glad to meet you, %s!\n",me);

    return(0);
}
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2 Answers 2

up vote 4 down vote accepted
scanf("%s",&me);

should be

scanf("%s",me);

Explaination:

"%s" means that scanf is expecting a pointer to the first element of a char array. me is an object array and could evaluated as pointer. So that's why you can use me directly without adding &. Adding & to me will be evaluated to ‘char (*)[20]’ and your scanf is waiting char *

Code critic:

Using "%s" could cause a buffer overflow if the user input string with length > 20. So change it to "%19s":

scanf("%19s",me);
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3  
It would be nice if you explained why too –  Mike May 15 '13 at 16:50
1  
Or ..., &me[0]), if you really want to use the & operator. –  alk May 15 '13 at 16:50
4  
@Mike Because... Wait, the compiler warning clearly tells you why. –  user529758 May 15 '13 at 16:50
2  
@H2CO3 - ah, but if it was clear to Jake, he wouldn't have asked the question. ;) –  Mike May 15 '13 at 16:52
    
I could have improved this further, but was hesitant to because I'm not certain if you'd approve: Basically, an array expression is converted to a pointer expression when a pointer expression is expected, eg. passing to a function. –  undefined behaviour May 15 '13 at 17:09

Except when it is the operand of the sizeof, _Alignof, or unary & operators, or is a string literal being used to initialize an array in a declaration, an expression of type "N-element array of T" will be converted ("decay") to an expression of type "pointer to T", and it will evaluate to the address of the first element in the array.

The array me is declared as a 20-element array of char; normally, when the expression me appears in your code, it will be treated as an expression of type "pointer to char". If you had written

scanf("%s", me);

then you wouldn't have gotten the error; the expression me would have been converted to an expression of the correct type.

By using the & operator, however, you've bypassed that rule; instead of a pointer to char, you're passing a pointer to an array of char (char (*)[20]), which is not what scanf expects for the %s conversion specifier, hence the diagnostic.

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s/bypassed/taken a different avenue/, or something along those lines, perhaps. Because of the rule, the outcome is different. +1 for the quote, regardless. –  undefined behaviour May 15 '13 at 17:12
    
Note: the _Alignof was a mistake in N1570, been removed in the standard. That makes sense, because the operand of _Alignof is a type, _Alignof ( type-name ), not an arbitrary expression. –  Daniel Fischer May 15 '13 at 18:05
    
@DanielFischer Can you please look into this one.The "anomaly" I have point to is pretty clear.It's about the last token, which is between the last delimiter & the NULL character,rather than 2 delimiters as is required for a string token--stackoverflow.com/questions/16571060/… –  Rüppell's Vulture May 15 '13 at 19:30
    
@DanielFischer I regret I have to message you this way,I checked your activity and it says you were last seen a minute back and this question was the latest C related activity of yours. –  Rüppell's Vulture May 15 '13 at 19:31

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