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My codes are like this:

int main(int argc, char *argv[])
{
    char ca[] = {'0'};
    cout << *ca << endl;
    cout << *(ca+1) << endl;
    cout << ca[1] << endl;
    cout << (char)(0) << endl;
    return 0;
}

The result is like this:

 0
 \210
 \210
 ^@

From this thread, I knew that ^@ is the same as \0 actually. However, the \210 seems not because when I use hexdump to view the result.

 bash-3.2$ ./playground | hexdump -C
 00000000  30 0a 88 0a 88 0a 00 0a                           |0.......|
 00000008

It can be seen clearly that \210 is 88 instead of 00.

As I understood, ca+1 should point to a null terminator, which is \0. But why cout << *(ca+1) << endl; gives me \210 as the result?

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Try char ca[] = "0";, then read aaaaaa123456789`s answer for why it worked. –  WhozCraig Feb 10 '13 at 8:30

2 Answers 2

up vote 4 down vote accepted

Because you have to manually add the null terminator when declaring a character array. If you make it a string (such as in char myString[] = "hi"), then it will add a null terminator. But if you make it an array, with the braces, it will not.

As for the 0x88 byte, it just happened to be the next byte in RAM for whatever reason.

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In any valid C program the string literals are always null terminated. Here you are trying to initialize the individual element of character array but just with list initialization syntax and not to a string literal. As this is static array allocated with in same function, you can even confirm this with help of sizeof operator. doing ca should give you 1 i.e. one character array. However if you would have done something like char ca[] = "0"; then applying sizeof(ca) should give you 2 i.e. character '0' and null termination character. As aaaaaa123456789 mentioned, this is just an output now you are getting, just another byte in a memory. If you run this at some different time, you will see different output or your program may crash. referring incorrect location may cause any runtime anomaly.

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