Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I know this is really easy and I'm looking over something but this is what I have...:

typedef struct
{
    char s1[81];
    char s2[81];
    char s3[81];
}Rec;

int main()
{   

   Rec *a[10];

   a[0] = (Rec*)new unsigned char(sizeof(Rec));
   a[0]->s1= "hello";
   printf("a[0] = %s\n",a[0]->s1);
   delete(a[0]);


   getchar();
   return 0;
}

Now, the line

a[0]->s1= "hello";

is complaining about the expression must be a modifiable lvalue. I am pretty sure it's how I'm casting it in my new operator line and has it needs to be a long value or something but I'm not sure of the code to do this... easy i know but yeah. Any help would be much appreciated

share|improve this question
    
What's with the old-school typedef struct {...} Rec; construct? – John Dibling Nov 18 '11 at 17:32
    
@John I swear, there's not enough emphasis placed on the differences between C and C++. – Etienne de Martel Nov 18 '11 at 17:33
    
new is more powerful than malloc, use it accordingly: a[0] = new Rec(); – AJG85 Nov 18 '11 at 17:35
up vote 5 down vote accepted

You cannot assign to char arrays like that. Either use strcpy, or change your char arrays to std::string.

strcpy(a[0]->s1, "hello");

Why are you doing this:

a[0] = (Rec*)new unsigned char(sizeof(Rec));

instead of this:

a[0] = new Rec;
share|improve this answer
1  
My guess is that he's done a lot of C, and simply replaced malloc with new unsigned char. – Etienne de Martel Nov 18 '11 at 17:32
    
Etienne is right – Questioneer Nov 18 '11 at 17:34

Two things. The line

a[0] = (Rec*)new unsigned char(sizeof(Rec));

allocates a single unsigned char that gets initialized to the value sizeof(Rec). You probably meant

a[0] = (Rec*)new unsigned char[sizeof(Rec)];

or better yet

a[0] = new Rec;

Second, you cannot assign a string literal to an array of chars, you need to copy the characters one by one, e.g.

char s[80];
s = "hello"; // won't work
strcpy(s, "hello"); // correct

You should however use std::string in this case.

share|improve this answer

I guess that you've done a lot of C in your life. Keep in mind that C++ is different language, which happen to share with C most of its syntax and some of its standard library. That means something that is perfectly fine in C might be quite ugly (or even dangerous) in C++.

With that said, let's rewrite your code in a more "C++-ish" way:

#include <iostream> // std::cout, std::endl
#include <string> // std::string

struct Rec // typedef is implicit for structs in C++
{
    std::string s1; // use std::string instead of char arrays
    std::string s2;
    std::string s3;
}; // don't forget the semicolon!

int main()
{   

   Rec * a[10];

   a[0] = new Rec; // allocates the right amount of memory, no need to cast
   a[0]->s1 = "hello"; // std::sring handles the assignment for you
   std::cout << "a[0] = " << a[0]->s1 << std::endl; // use iostreams
   delete a[0]; // delete is an operator, not a function, no need for parentheses

   getchar(); // warning, this is not portable
   return 0;
}

As you see, new is not an "improved malloc". It's typesafe (no cast needed), it's safer to use (it allocates the exact amount of memory required, no need for sizeof), and it also does something that malloc cannot do: it invokes the class' constructor (just as delete invokes a destructor).

In C++, as in C, allocation is distinct from initialization. While in C you could just memset the block to zero, in C++ object construction can be a bit more complex. As such, you should never use malloc to create objects of classes that have non-trivial constructors (or have fields that don't have non trivial constructors - Rec is such a case). Because new always works, and has additional features, you should use it anyway.

share|improve this answer
    
perhaps std::cin.get() instead of getchar(); ... – AJG85 Nov 18 '11 at 17:43

The problem is not with your casting. Your new expression allocates a single unsigned char and initializes it to the sizeof(Rec) instead of allocating enough space as new unsigned char[sizeof(Rec)]; would do. That said, the types of s1 and "hello" are different and you can't assign one with the other. You should be using something like strcpy, but since you tagged this C++ then you would be better off using std::string. Also, why don't you just call new Rec;?

share|improve this answer

a[0] is a pointer to an array of chars that can't be modified -- a[0] will always point to the same address. you need to use strcpy to copy from your "hello" string to a[0]

share|improve this answer
    
a[0] is a pointer to Rec. If you meant a[0]->s1, that is not a pointer to an array, it is an array. – Benjamin Lindley Nov 18 '11 at 17:38

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.