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My problem is that I don't know how to convert int value to char array char* m_value. I tried to use itoa but it doesn't work. itoa(m_val, m_wartosc, 10); Maybe there is some other function to do this ?

Main.cpp

int main(int argc, char *argv[])
{
    LargeNumber l1;
    LargeNumber l3(172839); //how to convert this int to char*

    return 0;
}

LargeNumber.h

    class LargeNumber{

            public:

                LargeNumber()
                { 
                    m_array = "0"; //zero for no arg.
                }
                LargeNumber(int val):m_val(val)
                {
                    itoa(m_val, m_array, 10);  //doesn't work
                    //sprintf(m_array, "%d", m_val);
                }



                LargeNumber(const LargeNumber& p):m_array(p.m_array)
                { }  //copy constructor


                ~LargeNumber(){
                    delete []m_array;     //for object with new    
                }
               public: //should be private
                int m_val;
                char* m_array;

};
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Why do you need to, you already have a constructor that takes an int. –  Luchian Grigore May 28 '12 at 14:30
    
Why do you want to store your number in base-10 as an ASCII string? –  Oliver Charlesworth May 28 '12 at 14:32
    
I need to have both of them for my program. I have already one which will take "string". But there is a need for one which will take int value. –  mathewM May 28 '12 at 14:33
    
I know that storeing number as a char* is wrong, but I need to manage with that. –  mathewM May 28 '12 at 14:35
1  
Side note, if default constructor is used the delete[] m_array in the destructor will be attempting to deallocate read-only memory. –  hmjd May 28 '12 at 14:36

4 Answers 4

The simple answer is: don't. For two reasons:

  • As you can see from all the (wrong) other answers, memory management is tricky and bug-prone.
  • I can't see how storing your value in base-10, in an ASCII string, could possibly be useful. (Compared to, say, a base-232 representation.)

But if you really must store it this way, you will need to allocate the relevant amount of memory, use snprintf to convert (itoa is a non-standard function), and remember to free the memory at the correct time(s) (you will have to read and understand about the Rule of Three).

I would strongly recommend using a std::string instead of a raw C-style array, because it will at least deal with its own memory management, and you will then be able to populate it with a std::stringstream.

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1  
Use snprintf (which is C90/C++03). And use std::vector<char> to get the necessary memory. –  James Kanze May 28 '12 at 14:42
    
@JamesKanze: Yep, I agree with snprintf, answer modified. In terms of storage, I've hinted that there's a host of better idiomatic ways of dealing with this; vector<char> is just one possibility. –  Oliver Charlesworth May 28 '12 at 14:43
    
Could you write how snprintf function should look in my program ? –  mathewM May 28 '12 at 15:48

The second argument of itoa() needs to be an array in memory large enough to store the null-terminated string. An example:

int number = 172839;
char buffer[10];
itoa(number,buffer,10);
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So in my case i can't use itoa before my char* m_array doesn't have declared size ? –  mathewM May 28 '12 at 14:39
    
Yes. You'll need to actually allocate memory in that buffer before trying to store the string there. –  Adam27X May 28 '12 at 14:44
LargeNumber(int val):m_val(val)
        {
            std::stringstream stream;
            stream << val;
            m_array = new char[stream.str().size()];
            strcpy(m_array, stream.str().c_str());
        }
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No memory allocated for m_array. –  hmjd May 28 '12 at 14:37
    
I forgot it, thanks –  sithereal May 28 '12 at 14:39
    
It is one too short. –  hmjd May 28 '12 at 14:41

You have to first allocate the array with

m_array = new char[20]

in constructor before calling iota. the iota doesnt allocate memory.

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