I'm using xCode because I found the debugger to be very useful. So in the debugger I see, after I enter the students name name[0] = \0 no matter what. But then the rest of the name will be correct. For example, if I put John, it will come back saying \0, o, h, n. Help please?
char name[MAX_NAME_LENGTH];
char department[MAX_DEPT_LENGTH];
int rank;
int empty = 0;
printf("\nPlease enter the students name: ");
scanf("%s", &name);
printf("\nPlease enter the students department: ");
scanf("%s", &department);
printf("\nPlease enter the students rank: ");
scanf("%d", &rank);
strcpy(studentArray[empty].name, name);
s开发者_Python百科trcpy(studentArray[empty].department, department);
studentArray[empty].rank = rank;
Do this:
printf("\nPlease enter the students name: ");
scanf("%s", name);
printf("\nPlease enter the students department: ");
scanf("%s", department);
printf("\nPlease enter the students rank: ");
scanf("%d", &rank);
Note the absence of ampersands in the first two calls to scanf
. This is because the compiler implicitly converts name
and department
into pointers to the first elements of the respective arrays (&name[0]
, &department[0]
) when they are used in an expression (there are expections to this rule, see here for details).
Read this for further reference.
You need to use scanf("%s", name);
instead of scanf("%s", &name);
(same for department
).
scanf
needs a memory address to write to. In case of a string it expects a char *
and passing a char[]
is fine in this case (it is vulnerable to buffer overflows though!).
However, for your integer - which is not a pointer - you need to pass the memory address of the integer, i.e. &rank
instead of rank
- which you already did.
The scanf function needs to know the address in memory it needs to read in, so for things like integers
scanf("%d", &rank);
is correct. But things like name are already addresses (the name of an array is effectively the address of its first element) so instead of :
scanf("%s", &name);
you want:
scanf("%s", name);
And similarly for other arrays.
When you declare an array;
char name[MAX_NAME_LENGTH];
name
without an index is a pointer to the first element in the array.
name == &name[0]
When a function (such as scanf()
) calls for a char *
it wants the pointer to the first element.
scanf("%s", name);
Your variables name
and department
are character arrays (char (*)[]
). When you pass these variables to printf/scanf (or any other function, arrays are passed by reference), their types decay to TYPE*
(in your case char*
) and are passed as the memory location of the first element in the array.
When you try to pass the address of the varible (&name
), you are passing a pointer to that variable's memory location (in your case, this decays to char(*)[0]
). This question intrigued me because name
and &name
will have the same value, but different types. Since printf/scanf are defined to receive char*
, passing char(*)[] results in undefined behavior - some compilers will handle if for you while others won't (VS2010 and maybe earlier versions handle this for you).
I was close, but had some help with this answer (learned a lot): & operator definition for arrays in C. If they provide an answer here, I'll delete mine.
use scanf("%s", name);
avoid using &, it's too easy to get wrong.
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