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I cannot figure out why this program is not working. I got Access Violation message when trying to push a variabel with the type of data is string to another variable that had allocated at memory with malloc.

For example, first I declare the variable..

string pName;
address temp;

After that, I call the Allocate module..

temp = Allocate(pName, 1, 1, 200);

And here's the module..

#include <...>
#include<string>
#define Info(T) (T)->info
#define FirstSon(T) (T)->ps_fs
#define NextBro(T) (T)->ps_nb
#define Parent(T) (T)->ps_pr

using namespace std;
typedef struct infoElmt{
    string pName;
    float number;
    int type;       
    float price;
}compInfo;
typedef compInfo infotype;

typedef struct tElmtTree *address;
typedef struct tElmtTree {
    infotype info;
    address ps_fs, ps_nb, ps_pr;
} node;

typedef address DynTree;

address Allocate (string pName, float number, int type, float price)     //(string pName, float number, int unit, int type, float price
    {

        address P;

        P = (address) malloc (sizeof(node));

        if (P != NULL)
        {
            Info(P).type = type;
            Info(P).number = number;
            Info(P).price = price;

            FirstSon(P)  = NULL;
            NextBro(P) = NULL;
            Parent(P) = NULL;

            printf("OK");
            Info(P).pName = pName;
        }

        return (P);
    }

The error is came when the program run the Info(P).pName = pName; , I know it because if the printf("OK"); moved to below Info(P).pName = pName; , the "OK" doesn't showed in the console.

Is it problem with malloc and string?

Edit

  • The #include<..> is another Include like conio.h, etc.
  • I'm forget to put the using namespace std; in the code..
share|improve this question
    
#include <...> ??? And the presence of string makes this C++, a different language to C. –  paxdiablo May 23 '13 at 2:55
    
Those macros are extremely pointless when you could just use the data members themselves. Even if not doing that, a normal function is still much better. And this is really C inside a C++ shell. Using std::string is the only C++ I can find. malloc is pretty much deprecated, typedefing structs is no longer useful, objects shouldn't be passed by value when only reading them, and we have nullptr. –  chris May 23 '13 at 2:57
    
If you're writing C++, you should forget about using malloc() and use new instead. If you're using malloc(), you should be writing C code. –  Jonathan Leffler May 23 '13 at 3:05
    
@paxdiablo The '#include<..>' is another Include like conio.h, etc. About the 'string' I didn't know if it is C++ or C language. –  Ahmad Nabili May 23 '13 at 3:06
1  
And, if you're using conio, get rid of it. The Borland compiler is seriously old tech and hasn't kept up to date with standards. –  paxdiablo May 23 '13 at 3:20

3 Answers 3

up vote 2 down vote accepted

You should use new and not malloc. Your structure seems to include a std::string and it cannot be initialized correctly when you allocate the structure using a malloc.

In C++ just don't use malloc at all unless you have some rare scenarios where you need just a block of uninitialized memory. Just use get yourself used to new.

On a different note do avoid dynamic allocations as much as possible. Perhaps you may want to use:

std::vector<std::string> obj;
share|improve this answer
1  
Commenting here to avoid the mess under the questions...The reason the OK doesn't appear is because you didn't output a newline after it. If you want a line of output to appear, output the newline: printf("OK\n"); as otherwise the C standard I/O library buffers the output until a newline is printed, or the buffer overfills (which is probably over 500 characters on the one line of output). –  Jonathan Leffler May 23 '13 at 3:18
  1. Use C++ new operator - not malloc
  2. Why use these

    #define Info(T) (T)->info
    #define FirstSon(T) (T)->ps_fs
    #define NextBro(T) (T)->ps_nb
    #define Parent(T) (T)->ps_pr
    

    when you could use the member variables directly (or better still define getters and setters).

  3. This line is pointless

    typedef compInfo infotype;
    
  4. Look up cout - C++ way of printing to the console. printf is C.

When you fix these issues then the bug will be more evident.

i.e. Either program in C or C++.

share|improve this answer
    
@JonathanLeffler - Thanks - Was in the process of doing that edit myself. –  Ed Heal May 23 '13 at 3:14
    
[1] Ok, thank you for that suggestion. [2] Because it will make simple instead if I must write P-->Parent [3&4] Thanks, I forget about it –  Ahmad Nabili May 23 '13 at 3:22
    
@AhmadNabili - For point 2 - How does it make it simpler? Certainly makes debugging a bit harder with the #define all over the shop. –  Ed Heal May 23 '13 at 3:38

If you're using typedef to define your struct, you need to use a pointer

address *p //you should always use lowercase to declare variables.

to have access to struct fields, since you're using a pointer you need to use -> instead of .

Info(p)->type=type;
share|improve this answer
    
Isn't address already a pointer? –  Jonathan Leffler May 23 '13 at 3:06
    
yes it is, I missed that line, sorry –  SaintLike May 23 '13 at 3:10
    
I'd define in the top of the code #define Info(P) (P)->Info So if I write Info(P) it means P->info. And about the dot(.) Info(P).pName Because I'd declare that the "info" is another typedef data type :D –  Ahmad Nabili May 23 '13 at 3:16

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