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I have a question about strcpy(). To my understanding, I thought that strcpy copies the bytes located at the pointers and not the pointers itself. But this snippet of code seems to react differently.

char* str2  = (char*) malloc(50) ;
printf("str2:%d (%p), strTrim:%d (%p)", strlen(str2),*str2,strlen(strTrim),*strTrim) ;
strcpy(str2,strTrim);
printf("str2:%d (%p), strTrim:%d (%p)", strlen(str2),*str2,strlen(strTrim),*strTrim) ;

The output I get is:

str2: 64 (FFFFFFCD) , strTrim:8 (00000061)
str2:8 (00000061) , strTrim:8 (00000061)

Now, the first output line seems pretty clear to me. But the second line is confusing me. Why does it copy the pointer of strTrim to str2 ? I really don't get it.

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2  
If you are printing the value of the pointer, you should only supply str2 and strTrim to the printf instead of *str2 and *strTrim (which will actually print out the part of the memory that stores the string). –  nhahtdh Jul 16 '12 at 13:16

1 Answer 1

char* str2  = (char*) malloc(50) ;
strlen(str2);  // undefined behavior, `str2` has an indeterminate value

After malloc the allocated object has an indeterminate value. You cannot call strlen with str2 argument: it is not yet a string.

Nullify the first byte and str2 will become a pointer to an (empty) string:

str2[0] = '\0';
strlen(str2); // OK, strlen(str2) is 0
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Yes thanks, that's true. I should have removed that line of code. But it still doesn't solve my problem. –  Mariano Di Martino Jul 16 '12 at 13:17
    
@MarianoDiMartino *strTrim and *str2 are equivalent to strTrim[0] and str2[0] which is the first character of the strings. After a call to strcpy you get the same value for strTrim[0] and str2[0]. –  ouah Jul 16 '12 at 13:20
    
To print the pointers value you need printf("%p %p\n", strTrim, str2); and not *strTrim and *str2. –  ouah Jul 16 '12 at 13:22

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