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I am writng a c++ program. I am parsing a file and initializing a structure. I have an array to initialize but I have to read the size of the array from the file. I want the array length read and array initialization in one function. If I pass the array pointer to another function and do a new, when the function returns, the pointer is destroyed, and I cannot see the initialized values. Is this expected or am I missing something. How can I overcome this problem?

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3  
You should show your code to get some answer –  Basile Starynkevitch Nov 22 '11 at 18:58
    
Actually besides missing code demonstrating your problem it's hard to understand particularly the middle part. You do a operator new call and then what? –  0xC0000022L Nov 22 '11 at 19:01
    
@STATUS_ACCESS_DENIED: And he gets access denied exception! –  Vlad Lazarenko Nov 22 '11 at 19:01
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3 Answers

You overcome this by forgetting everything about manual arrays, raw pointer passing* and new. This is C++, not 1991. So, a typical solution could be this:

#include <vector>
#include <cstdint>
#include <istream>

std::vector<uint32_t> read_data(std::istream & is)
{
  uint32_t len;
  is.read(reinterpret_cast<char*>(&len), sizeof(uint32_t));

  std::vector<uint32_t> result(len);
  for (uint32_t i = 0; i != len; ++i)
  {
    is.read(reinterpret_cast<char*>(&result[i]), sizeof(uint32_t));
  }

  return result;
}

(In high-quality code, the read commands would be surrounded by a conditional and errors would be handled, possibly by throwing an exception.)

Later:

#include "int_reader.hpp"
#include <fstream>
#include <iostream>

int main()
{
  std::ifstream infile("thedata.bin", std::ios::binary);
  std::vector<uint32_t> data = read_data(infile);

  std::cout << "We read " << data.size() << " integers.\n";
}

*) The only raw pointer that has a place in general-purpose C++ is a char* when used for I/O operations, as demonstrated by this code. C++ defined char to be the machine's fundamental data unit type, and I/O happens in units of char.

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well I agree with you, but I am really new to c++, have been working in C and embedded systems for 8 years now, I would need some time to overcome the habit of writing everything by own hand :) –  Saba Nov 23 '11 at 13:01
    
@Saba: You definitely want to forget almost everything about C if you want to be eloquent in C++ :-) –  Kerrek SB Nov 23 '11 at 13:13
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There is no array pointer before you call new. So there's no way you could pass it to a function.

Likely what you're doing is passing the uninitialized, garbage value of the array pointer to a function. The function overwrites its copy of that garbage value with the correct pointer returned from new, but then the original function never sees that pointer.

You need to pass the function a pointer to the pointer. Then when it calls new, it can use the pointer to the pointer to update the caller's pointer. Like this:

void SomeFunction(void **SomePointer)
{
    (*SomePointer) = malloc(1024);
}


void *MyPointer;
SomeFunction(&MyPointer);
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1  
And I agree with Kerrek, this is the C way to do things. The C++ way is much nicer. –  David Schwartz Nov 22 '11 at 19:03
    
Except you can't dereference a void* or are you missing a star for void** ? –  Pablo Nov 22 '11 at 19:03
    
I fixed it about two seconds after I posted it. Yet another reason not to write code like this. ;) –  David Schwartz Nov 22 '11 at 19:05
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You have to pass a pointer to a pointer in order to have a function allocate it for you

void allocateArrayOfT(T** objArray, size_t len) {
    *objArray = new T[len];
}

You can call:

T* arrayPtr;
allocateArrayOfT(&arrayPtr, len);
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