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I need to initialize a pointer variable with a knowing address. Please see code below, ptr is the final destination and value of ptr_address contains the address value, so I need to do something like ptr = value.

int *ptr;
int address;

address = 0x10000005;
ptr = address;

The problem is that compiler gives the following warning message:

warning: assignment makes pointer from integer without a cast [enabled by default]

Is my code wrong or there is any other way to do it without receiving this compiler warning?

  • 2
    0x10000005 seems an unlikely address for an int... – Oliver Charlesworth Dec 28 '13 at 14:46
  • 1
    [OT]: You may use std::intptr_t to store your address instead of int. – Jarod42 Dec 28 '13 at 14:51
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    May I ask in which scenario you statically (during compile-time) know the address of something living during runtime? – leemes Dec 28 '13 at 14:51
  • During initialization I get a set of address values which are passed to me as value of simple variables (not pointers), and in other moment I have to initialize a pointer with these values. – user3142113 Dec 28 '13 at 15:05
  • Please note that C and C++ are different languages, and kindly only use one or other tag. In C, you could just use ptr = (int*) address; to get valid code; even ptr = (void*) address; would probably work. Usually you want integer pointers aligned on a four-byte boundary - which this doesn't do. Are you sure you know what you are doing? Pointers are dangerous things. Never aim a loaded pointer when you don't know your target. – Floris Dec 28 '13 at 15:36
4

Use a cast:

intptr_t some_variable = 25;

int * ptr1 = (int *) 0x10000005;
int * ptr2 = (int *) some_variable;

Or in C++:

int * ptr1 = reinterpret_cast<int *>(0x10000005);
int * ptr2 = reinterpret_cast<int *>(some_variable);
  • Hi, the problem is that i can't use direct value because address comes as a variable value, so I need use this variable. I've already tried ptr = *((int *) ptr_address); but warning is the same. – user3142113 Dec 28 '13 at 14:49
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    @user3142113: No, (int*)ptr_address does not take the address of ptr_address, it does take the value of it. – Benjamin Lindley Dec 28 '13 at 15:04
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    That's exactly what the code above does. – leemes Dec 28 '13 at 15:10
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    @user3142113 (int*) is a cast. It doesn't take the address of anything (that's what the & operator is for). – Joseph Mansfield Dec 28 '13 at 15:11
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    @user3142113: Kerrek SB told you to use (int *) ptr_address, and now you show us code that uses ptr = *((int *) ptr_address); and complain it does not work. Of course it does not work; it is not the code you were told to use. Use ptr = (int *) ptr_address;. – Eric Postpischil Dec 28 '13 at 15:24

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