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What is the difference between &arr and arr and how does the following works ?

const char *arr[] = {"C", "C++", "Java", "VBA"}; const char *(*ptr)[4] = &arr; cout << (*ptr)[2]; What i understand is that &arr holds the address of the whole arr while arr holds the address of first value of arr. But i can't understand what is the following line doing , *(*ptr)[4] = &arr , is it a way to declare a pointer to whole array just like "*ptr=arr" will declare pointer to first value of array"! Ty !

c++pointer

17th Sep 2021, 10:41 AM

Abhay

2 Answers

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Martin Taylor thanks a lot !

17th Sep 2021, 1:17 PM

Abhay

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The old C declaration syntax was designed to mimic the USE of the declared thing. So, const char *(*ptr)[4]; declares `ptr` to be used as follows: 1. Dereference it, `*ptr`. 2. That yields something A that can be indexed, A[4]. 3. The result of the indexing is a `const char*`. This means that (1) `ptr` is a pointer, to (2) an array of four (3) `const char*` pointers. -- You can tidy up such declarations by NAMING things. For example, introduce the name using C_str = const char*; Then you can write C_str (*ptr)[4]; There's still that nested `ptr` though. A bit hard to grok until one gets fully familiar with the pattern. You can be more C++'ish by defining a general TYPE BUILDER like this: template< class T > using Type_ = T; Then you can write Type_<C_str[4]>* ptr; This hoists out the name `ptr` to the usual position of a name in a declaration, because the type builder supports general substitution in type expressions. The old C syntax does not, in contrast to most every other programming lang.

18th Sep 2021, 7:30 AM

A S Raghuvanshi