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I get no error when I type

char a[10] = "Hi";

But when I change it to the following, I get an error: Array type char is not assignable.

char a[10];
a = "Hi";

Why is array type char not assignable? Is it because the language is written that way on purpose or am I missing a point?

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marked as duplicate by alk, Final Contest Jun 8 at 0:51

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
For responses: Since this is tagged C++, is there a non-strcpy "more C++" way to do this while dealing with char[]? –  user166390 Feb 16 '13 at 22:56
    
A "more C++ way" would be to use string or vector<char> instead of char[]. By using char[] you're basically accepting all the C-ness that goes with it. –  Cogwheel Feb 16 '13 at 23:07
    
thanks for ur response guys. –  Rut Feb 16 '13 at 23:15
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7 Answers 7

up vote 4 down vote accepted

These = in these two lines mean different things:

char a[10] = "Hi";
a = "Hi";

The first is an initialization, the second is an assignment.

The first line allocates enough space on the stack to hold 10 characters, and initializes the first three of those characters to be 'H', 'i', and '\0'. From this point on, all a does is refer to the position of the the array on the stack. Because the array is just a place on the stack, a is never allowed to change. If you want a different location on the stack to hold a different value, you need a different variable.

The second (invalid) line, on the other hand, tries to change a to refer to a (technically different) incantation of "Hi". That's not allowed for the reasons stated above. Once you have an initialized array, the only thing you can do with it is read values from it and write values to it. You can't change its location or size. That's what an assignment would try to do in this case.

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thanks for ur response. –  Rut Feb 16 '13 at 23:16
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An array is not a modifiable lvalue

use

char a[10];
strcpy(a, "Hi");
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thanks for ur response. –  Rut Feb 16 '13 at 23:14
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a is a pointer to the array, not the array itself. It cannot be reassigned.

You tagged with C++ BTW. For that case better use std::string. It's probably more what you're expecting.

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1  
a is the array itself, not a pointer to the array. It can be implicitly converted to a pointer to the first element. –  Joseph Mansfield Feb 16 '13 at 22:48
    
thanks for ur response. –  Rut Feb 16 '13 at 23:14
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The language does not allow assigning string literals to character arrays. You should use strcpy() instead:

strcpy(a, "Hi");
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thanks for ur response. –  Rut Feb 16 '13 at 23:13
    
Correct -- for a situation like this you should use strcpy. Forgetting you ever even heard of strncpy would probably be no loss at all -- it's almost as useless as gets. –  Jerry Coffin Feb 17 '13 at 0:37
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Simple, the

char a[10] = "Hi";

is a little "extra feature", as it cannot be done like that on run-time.

But that's the reason for C/C++ standard libraries.

#include <string.h>

// ...
strcpy(a,"Test"); // STR-ing C-o-PY.

This comes from the C's standard library. If using C++ you should use std::string, unless you really want to suck all the possible performance from your destination PC.

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thanks for ur response.. –  Rut Feb 16 '13 at 23:12
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this is because initialization is not an assignment. the first thing which works is an initialization, and the second one, which does not work, as expected, is assignment. you simply cant assign values to arrays you should use sth like strcpy or memcpy. or you can alternatively use std::copy from <algorithm>

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thanks for ur response.. –  Rut Feb 16 '13 at 23:12
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It is so simple,(=) have two different mean assignment and initialization. You can also write your code like that

         #include <iostream>

         using namespace std;

          int main ()
         {
             char message[3] = {'H', 'i', '\0'};

                cout << message<< endl;

           return 0;

           } 

in this code you have no need to write a difficult code or function and even no need of string.h

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