6
struct test
{
    unsigned int test1;
    unsigned char test2[4096];
    unsigned int test3;
} foo

struct foobar
{
unsigned char data[4096];
}

if i want to access the struct, i say foo.test1, foo.test2[4096], etc.. however, when I wish to return the data present in foo.test2 in the following manner

pac.datafoo = foo.test2[4096];

unsigned char data[4096] =  pac.datafoo;

this is the error I get:

error: initialization with "{...}" expected for aggregate object

what is the mistake i'm doing?

  • Is there any other information i'm missign to provide? – pistal Feb 21 '14 at 3:00
  • Yes: what's pac, what's datafoo, ... – Martin J. Feb 21 '14 at 3:02
  • Pac is also a struct. datafoo is a unsigned char. – pistal Feb 21 '14 at 3:04
  • 1
    You don't have a datafoo member in your test class... – 0x499602D2 Feb 21 '14 at 3:12
  • 1
    btw, foo.test2[4096] is out of boundry – billz Feb 21 '14 at 3:15
6

You need to learn the array initialization method. It's NOT simply assigned as the single variable.

Some examples:

int arrayone[3] = {0}; // assign all items with 0

int arraytwo[3] = {1, 2, 3 }; // assign each item with 1, 2 and 3

int arraythree[3]; // assign arraythree with arraytwo
for (int i = 0; i < 3; ++i) {
    arraythree[i] = arraytwo[i];
}
| improve this answer | |
  • Note about int arrayone[3] = {0}; it only assigns all elements 0 because that's the default value, which is how the last two elements are constructed. In the same sense int a[3] = {}; assigns them all to 0; however, the important distinction here is that int a[3] = {2}; does not assign them all 2 - the first element is assigned 2 and the others are default constructed into 0 – Tas Jul 14 at 0:23
3

add ";" at the end of the struct.

struct test
{
    unsigned int test1;
    unsigned char test2[4096];
    unsigned int test3;
} foo ;

struct foobar
{
unsigned char data[4096];
} ;
| improve this answer | |
0
unsigned char * data;

  data = pac.datafoo;
| improve this answer | |

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