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I have:

char message1[100];
char message2[100];

When I try to do message1 = message2, I get error:

incompatible types when assigning to type ‘char[100]’ from type ‘char *’

I have functions like

if(send(clntSocket, echoBuffer, recvMsgSize, 0) != recvMsgSize){
   DieWithError("send() failed")
}

inbetween. Could these mess things up somehow? :(

I have a feeling maybe you can't do = on char arrays or something, but I looked around and couldn't find anything.

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are you using the C++ compiler? –  Preet Sangha Sep 25 '11 at 20:37
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3 Answers

up vote 1 down vote accepted

Your suspicions are correct. C (I'm assuming this is C) treats an array variable as a pointer.

You need to read the C FAQ about arrays and pointers: http://c-faq.com/aryptr/index.html

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2  
Sort of, but not really. –  Carl Norum Sep 25 '11 at 20:39
1  
More precisely, an expression of array type (such as the name of an array variable) is implicitly converted, in most contexts, to a pointer to the first element of the array object. But +1 for citing my favorite section of the FAQ. –  Keith Thompson Sep 25 '11 at 20:41
    
The FAQ is far more precise about this than you are... –  Karl Knechtel Sep 25 '11 at 23:05
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You can't assign anything to an array variable in C. It's not a 'modifiable lvalue'. From the spec, §6.3.2.1 Lvalues, arrays, and function designators:

An lvalue is an expression with an object type or an incomplete type other than void; if an lvalue does not designate an object when it is evaluated, the behavior is undefined. When an object is said to have a particular type, the type is specified by the lvalue used to designate the object. A modifiable lvalue is an lvalue that does not have array type, does not have an incomplete type, does not have a const-qualified type, and if it is a structure or union, does not have any member (including, recursively, any member or element of all contained aggregates or unions) with a const-qualified type.

The error message you're getting is a bit confusing because the array on the right hand side of the expression decays into a pointer before the assignment. What you have is semantically equivalent to:

message1 = &message2[0];

Which gives the right side type char *, but since you still can't assign anything to message1 (it's an array, type char[100]), you're getting the compiler error that you see. You can solve your problem by using memcpy(3):

memcpy(message1, message2, sizeof message2);

If you really have your heart set on using = for some reason, you could use use arrays inside structures... that's not really a recommended way to go, though.

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One does not simply = two arrays in C/C++. If you want to copy the contents of one array into another, use memcpy instead. strcpy or strncpy is also an option for zero-terminated strings.

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strncpy is usually a very bad option for zero-terminated strings. It can easily leave the target array unterminated. It's not simply a safer version of strcpy. –  Keith Thompson Sep 25 '11 at 20:40
    
@Keith: for the little extra work it requires (setting the last char to \0) it is a much safer version. Personally, I think there are hardly any good uses for zero-terminated strings. –  Rhymoid Sep 25 '11 at 21:28
1  
C strings are zero-terminated by definition. And strncpy() also needlessly pads the target with extra null characters. It's designed for use with a very specific (and nearly obsolete) data structure. –  Keith Thompson Sep 25 '11 at 21:32
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