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I have an array of 64 bit unsigned integers. Is it possible to assign some pointers of an array in some positions of it. I mean:

array [0] = Integer
array [1] = Integer
array [2] = Pointer to array
array [3] = Pointer to array
array [4] = Integer

Can anybody help me how to do that ?

share|improve this question
    
It's very ugly practice (in C++ not in C) to interpret pointers as numbers (and vice versa). It's in general, but according to your example it's ugly ^ 2, because - how would you reinterpret them back to pointers ? Maybe the best way is to revise an architecture. – borisbn Jan 21 '13 at 8:36
up vote 4 down vote accepted

One way is to turn array into an array of

union {
  uint64_t   intval;
  uintptr_t  ptrval;
};

and work with that.

You will, of course, need some way to know whether a particular element stores an integer or a pointer.

share|improve this answer

You can use reinterpret_cast:

array[3] = reinterpret_cast<std::uintptr_t>(pointer);

(uintptr_t is from <cstdint>)

Try to avoid doing this if possible though. Can you rethink your design?

share|improve this answer
    
Thanks but would "array[3] = reinterpret_cast<std::uintptr_t>(pointer);" it create an pointer to an array of specified type and length and how to access that ? Can you please give a simple code to illustrate above fact ? – user1838343 Jan 21 '13 at 8:23
2  
@user1838343 you lose all type information when you do this, so you can't get its length. You just have to reinterpret_cast it back into the pointer... What are you trying to do with this? – Pubby Jan 21 '13 at 8:25
    
I want to put integers into arrays. If positions have lots of values (an array of values) I want to create an pointer array and store values into it. Then I have to access those values accordingly. – user1838343 Jan 21 '13 at 8:36
    
I know I will loose information of the length. But, I know how much integers it contains when an pointer will appear. – user1838343 Jan 21 '13 at 8:38
1  
The problem is that you don't know what is a pointer and what isn't - there is no arbitrary way to determine that. – Mats Petersson Jan 21 '13 at 8:39

Let me guess: you want to have an array, each element of which could be either a number or another array of number ? If so, make an array of std::vectors, and keep only one value if you want to store a number. Like this:

typedef std::vector< long long > I64Vector;
std::vector< I64Vector > array;
array.push_back( I64Vector( { 42 } ) ); // store one integer ( 42 ) in array[ 0 ]
array.push_back( I64Vector( { 1, 2, 3, 4, 5 } ) ); // store 5 integers in array[ 1 ]
//... etc.
// accessing them
long long num = array[ 0 ][ 0 ]; // 42
const I64Vector & subarray = array[ 1 ];
long subNumber1 = subarray[ 0 ]; // 1
long subNumber2 = subarray[ 1 ]; // 2
//... etc.
share|improve this answer

You have to change the type your array element to something that can store integers and pointers (or preferably std::vector<std::uint64_t>). A type-safe approach is to use boost::variant:

std::vector<boost::variant<std::uint64_t, std::vector<std::uint64_t>>> array;
array.push_back(1);
array.push_back(2);
array.push_back(std::vector<std::uint64_t>{4,5,6});

if (int* x = boost::get<std::uint64_t>(array[0])) { ... }
if (std::vector<std::uint64_t>* x 
        = boost::get<std::vector<std::uint64_t>>(array[2])) { ... }

If you want to use builtin arrays instead of vectors you can use unions instead of boost::variant:

 struct IntOrArray
 {
   bool isInt;
   union {
     std::uint64_t int_value;
     std::uint64_t* array_value;
   }
 };

 std::vector<IntOrArray> array;
 IntOrArray a1;
 IntOrArray a1.isInt = true;
 IntOrArray a1.int_value = 1;
 array.push_back(a1);

 IntOrArray a2;
 IntOrArray a2.isInt = false;
 IntOrArray a2.array_value = arrayYouGotElsewhere;
 array.push_back(a2);

 if (array[0].isInt) { ... }

C++11 allows you to put std::vectors into unions but this is not supported by all compilers.

share|improve this answer

Yes we can do that,

a[3] = (unsigned long long)&a; (in windows)

and to get back the pointer value, (unsigned long long *)a[3]

share|improve this answer
    
Why did you point out "in windows" ? This code wouldn't work in Linux or MacOS ? – borisbn Jan 21 '13 at 8:51

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