Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This is linked to my previous post

Wher I created a Struct :

struct buffer
{
    char ProjectName[20];
       char ProjectID[20];
};

Now while I am trying to assign values to it:

buffer buf;
buf.ProjectID = "3174";
buf.ProjectName = "NDS";

I am getting this error:

error C2440: '=' : cannot convert from 'char [5]' to 'char [20]'

and to resolve this I tried decreasing the size of structure as below(must not be the way to do it) :

struct buffer
{

    char ProjectName[4];
    char ProjectID[5];
};

and the get error C2106: '=' : left operand must be l-value

share|improve this question
    
Use std::String rather that char arrays. –  Loki Astari Aug 31 '10 at 11:56
add comment

5 Answers

up vote 5 down vote accepted

You have to copy the string into the array:

strcpy(buf.ProjectName, "3174");

Be careful with the length of the strings being copied into the arrays

share|improve this answer
add comment

Let's look at the first case:

buffer buf; 
buf.ProjectID = "3174"; 
buf.ProjectName = "NDS"; 

$2.13.4/1 - "An ordinary string literal has type “array of n const char” and static storage duration (3.7)"

The type of "3174" is char const [5] and type of "NDS" is char const [4]. While trying to attempt the assignment to 'buf.ProjectID', the compiler has to essentially convert from 'char const [5]' to 'char const [20]'. This conversion is not allowed by C++ rules. In fact, a more appropriate error message is thrown in your next attempt.

$8.3.4/5 - '[Note: conversions affecting lvalues of array type are described in 4.2. Objects of array types cannot be modified, see 3.10. ]".

In other words it means, that name of an array is non modifiable lvalue (which is what the 2nd compiler message says).

$5.17- "There are several assignment operators, all of which group right-to-left. All require a modifiable lvalue as their left operand, and the type of an assignment expression is that of its left operand."

So here is the summary:

For the assignment expression to work, the left hand side should be a modifiable LValue expression. However an array is a non modifiable Lvalue expression. Hence it can not be assigned to.

share|improve this answer
2  
There's no way the poster's going to understand that... :-/. –  Tony D Aug 31 '10 at 10:22
    
@Tony: Thanks for that feedback. Have slightly elaborated it further –  Chubsdad Aug 31 '10 at 10:29
add comment

I'm sorry to say that C++ is a bit unintuitive here. You can say:

char name[10] = "abcd";

and, given your definition above:

buffer buf = { "NDS", "3174" };

The latter relies on a one-to-one correspondence between fields in the structure and values in the list, so I've had to reverse the order used in your assignments.

But, you can't do your

buf.ProjectName = "abcde";

What that actually requests in C++ is that buf.ProjectName be loaded with a pointer to memory containing the character data "abcde". You can't do that though, as ProjectName itself is another buffer for character data, and not of pointer-to-character-data.

So, when you have a source and destination area containing NUL-terminated strings (Google ASCIIZ if necessary), you need to use a support function to copy from one to the other:

strcpy(buf.ProjectName, "name");

If ProjectName's dimension is too small, then your string may overwrite memory that the compiler hasn't reserved for ProjectName, probably causing a crash or erroneous output. You can protect against this - if the relative sizes of the strings isn't obviously ok - using strncpy(buf.ProjectName, "name", sizeof buf.ProjectName). Unfortunately, this means buf.ProjectName may not hold the full expected value, making it of dubious use.

C++ improves over this way of handling textual data - which is inherited from C - with the std::string class. You can simple do this:

#include <string>
struct Buffer
{
    std::string project_name_;
    std::string project_id_;
};
Buffer b;
b.project_name_ = "abcde"; // works with string literals.
b.project_id_ = b.project_name_;  // can copy from std::string to std::string
share|improve this answer
add comment

That's normal, you can't really assign values to char tables that way (there are numerous different solutions, sprintf or strcpy for instance). But this is a C problem, not C++.

Since you're coding in C++, you should use std::string to manage your strings (and the c_str() method if you need those strings converted in char tables).

share|improve this answer
add comment

You can not assign strings like that in C++. You need to use the function such as strcpy to copy the string. Or better still use the class std::string

share|improve this answer
    
Could you provide a code snipper please –  Simsons Aug 31 '10 at 10:16
    
@Subhen See response by @jab for an example of using strcpy() –  Andy Johnson Aug 31 '10 at 10:21
add comment

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.