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when i have a var like char my_array[23] I can see it all the array value by click on name and expanding the array.

but I can do it when var is like char *my_data I see on;y first data.

how debugger in vc++ can have same behvior for this two case?

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You don't know how many elements the pointer points to. The debugger doesn't know either. The only safe answer is "one". –  Hans Passant Jan 26 '12 at 10:31

2 Answers 2

Because they are different types, in the first case (char[23]) debugger knows how many elements are in array, the second case (char*) is just a pointer to char and debugger shows only the first element of the array

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up vote 1 down vote accepted

you must write in watch window

my_data,23

and can expand it like a array.

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