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In the following code:

int main()
{
   char names[2][11] = {"Manchester","Party"};
   char (*jk)[11];
   jk = names;                    // LINE 1
   char gaming[10] = {"Jetking"};
   char (*po)[10];
   po = &gaming;                  // LINE 2
   cout<<"PO is "<<*po;

Line 2 requires me to put & in front of gaming, while Line 1 doesnt. The error it gives for Line 2 when I dont put & is, "error: cannot convert 'char [10]' to 'char (*)[10]' in assignment" ? I didnt quite understand this part. Since "char (*po)[10];" can be interpreted as a pointer to an array of 10 characters.

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closed as not a real question by Griwes, Tony The Lion, 0x499602D2, SCFrench, Ed Heal Jan 13 '13 at 2:56

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

1  
Quickly! Get a book! –  Griwes Jan 13 '13 at 0:32
    
Since "char (*po)[10];" can be interpreted as a pointer to an array of 13 characters. Not really –  Lightness Races in Orbit Jan 13 '13 at 0:33
    
    
Why downvotes? Lol! If I understood it wrong, you could explain.. –  UnderDog Jan 13 '13 at 0:35
2  
I don't understand the downvotes either, but if you ask or answer c++ questions, you should get used to it. –  Olaf Dietsche Jan 13 '13 at 0:37

3 Answers 3

up vote 1 down vote accepted

In the assignment

jk = names;

the array names of type char[2][11] is converted to a pointer to its first element, thus it decays into a char (*)[11].

gaming, however is converted into a char* in most contexts, and that char* is incompatible with the type that po has, char (*)[10], so that assignment is invalid. If you take the address of gaming, you get exactly the required char (*)[10].

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exactly thats what I wanted to know. Can you please clarify it further that how am I getting char(*)[10] when I am taking the address. –  UnderDog Jan 13 '13 at 0:53
    
That's what the address operator is defined to do, if you take the address of an object of type T, it returns a T*. I'm not sure what you need explained in that, can you clarify that? –  Daniel Fischer Jan 13 '13 at 0:56
    
Just realized. Sorry about that second clarification. This is the answer I was looking for. Thanks for the great explanation –  UnderDog Jan 13 '13 at 0:56
    
You're welcome. –  Daniel Fischer Jan 13 '13 at 0:57

char gaming[10] is an array of char. When you write po = gaming, gaming is converted to a pointer to char for this assignment. po, however, is a pointer to an array of chars.

So, in the end, the compiler tells you it cannot convert a pointer to char to a pointer to an array of chars. That's all.

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re "gaming is a pointer to char", no, it's an array. –  Cheers and hth. - Alf Jan 13 '13 at 0:50
    
also, the compiler doesn't "tells you it cannot convert a pointer to char to a pointer to an array of chars". –  Cheers and hth. - Alf Jan 13 '13 at 0:52
    
@Cheersandhth.-Alf Thank you for pointing that out. I took the liberty to explain it, just IMHO of course, more understandable. :-) –  Olaf Dietsche Jan 13 '13 at 0:56
char (*po)[10];

is a pointer to an array of 10 char items.

An array expression doesn't decay to a pointer to itself-as-array. It decays (when it does) to a pointer to first item. Hence, the need for applying address operator, and also the error message you got about being unable to convert the array expression to a pointer-to-array.

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