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Why would sizeof in the following cases print different values:

printf("%d",sizeof("ab")); //print 3

char* t="ab";
printf("%d",sizeof(t)); //print 4

In the first case I have 2 characters... Shouldn't sizeof print 2? Because they are 2 bytes?

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The second one gives the size of the pointer. Let me try to confuse you, try strlen on t and see what it gives. –  al-Acme Mar 28 '11 at 18:54

5 Answers 5

up vote 7 down vote accepted

Strings in C are null terminated.

"ab" in memory looks like 'a' 'b' '\0'

While t is a pointer, so size is 4.

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oo ic, then how can i get the actual sizeof t? not the pointer but the number of elements it has... –  scatman Mar 28 '11 at 18:27
    
@scatman You can't. Use std::string and then at runtime you can get the size. –  Mark B Mar 28 '11 at 18:28
    
@scatman: you could use strlen(t) which would give you actual length of string. –  N 1.1 Mar 28 '11 at 18:35
    
@scatman for a generic array you can use sizeof(t)/sizeof(t[0]), but for strings stick with the strlen() function. –  diverscuba23 Mar 28 '11 at 20:20
    
@Mark B. not true, granted std::string is safer and perfered for c++, strlen will return the length of the string (well how ever many characters until it encounters '\0'), and what I posted will return the number of elements in an array, provided the compiler has seen the array declaration. –  diverscuba23 Mar 28 '11 at 20:23

t is a pointer to an array containing "ab". Its size is the size of a pointer.

"ab" is an array containing "ab". Its size is the size of that array, which is three characters because you have to account for the null terminator.

Arrays are not pointers.

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1  
+1 for "arrays are not pointers". I have had people argue with me about this even after I have quoted the language standard, Dennis Ritchie, and other authoritative sources. In a comment here, someone wrote "for a generic array you can use sizeof(t)/sizeof(t[0])" ... but that's completely meaningless since t is not an array! –  Jim Balter Mar 28 '11 at 21:08

Because in the first case you are asking for the sizeof an array. The second time you are asking for the size of a pointer.

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A string literal is a char array, not a char *.

char a[] = "ab";
char * t = a;
printf("%d",sizeof(a)); //print 3
printf("%d",sizeof(t)); //print 4
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The type of the string literal "ab" is const char(&)[3].
So sizeof("ab") = sizeof(const char(&)[3]) = sizeof(char) * 3 which is 3 on your machine.

And in the other case, t is just a pointer.
So sizeof(t) = sizeof(void*) which is 4 bytes on your machine.

--

Note:

If you prepend "ab" with L, and make it L"ab", then,

The type of the string literal L"ab" is const wchar_t(&)[3].
So sizeof(L"ab") = sizeof(const wchar_t(&)[3]) = sizeof(wchar_t) * 3 which is 12 on ideone:

http://ideone.com/IT7aR

So that is because sizeof(wchar_t) = 4 on ideone which is using GCC to compile!

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