7

Consider the following code.

char message[]="foo";

void main(void){
    message[] = "bar";
}

Why is there a syntax error in MPLAB IDE v8.63? I am just trying to change the value of character array.

7
  • 1
    A syntax error is a compilation error, not a runtime error, so this has nothing to do with modifying your char array. You just can't write message[] = "bar"; with nothing between the brackets. It works with char message[] = "foo"; because you declare char message[] then it assigns as message = "foo";
    – Eregrith
    Jan 18, 2013 at 9:49
  • Thank you for your assistance. I would like to know the proper way of assigning new value to character array. Thanks.
    – newbie
    Jan 18, 2013 at 9:51
  • 3
    It is very important than you learn how arrays and pointers work, before you move on to string handling.
    – Lundin
    Jan 18, 2013 at 10:14
  • 1
    And memory management in general
    – Eregrith
    Jan 18, 2013 at 10:22
  • 1
    'As i put it message = "foo"; is correct ' -- No, that isn't correct, it's the blind leading the blind.
    – Jim Balter
    Jan 18, 2013 at 10:26

5 Answers 5

16

You cannot use character array like that after declaration. If you want to assign new value to your character array, you can do it like this: -

strcpy(message, "bar");
4
  • Previously, the "foo" shows up in my microcontroller LCD display(I have a LCD display will keep displaying the value of "char message[]"). I did include string.h. However, when I use the method above, nothing shows up.
    – newbie
    Jan 18, 2013 at 9:59
  • See my comment above. Your µC is very likely a Harvard architecture. Here a list (non exhaustive) of µC using that paradigm: AVR, PIC, 8051, Cortex-M3 etc. Jan 18, 2013 at 10:53
  • I checked, MPLAB is for Microchip, therefore PIC controller which tells it is a Harvard architecture with separate Instruction and data memories. You can not use strcpy for litterals. Jan 18, 2013 at 10:56
  • I guess this explains it all. Thanks!
    – newbie
    Jan 18, 2013 at 11:04
11

Assignments like

message[] = "bar";

or

message = "bar";

are not supported by C.

The reason the initial assignment works is that it's actually array initialization masquerading as assignment. The compiler interprets

char message[]="foo";

as

char message[4] = {'f', 'o', 'o', '\0'};

There is actually no string literal "foo" involved here.

But when you try to

message = "bar";

The "bar" is interpreted as an actual string literal, and not only that, but message is not a modifiable lvalue, ie. you can't assign stuff to it. If you want to modify your array you must do it character by character:

message[0] = 'b';
message[1] = 'a';

etc, or (better) use a library function that does it for you, like strcpy().

5
  • one thing weird about microcontroller IDE is when I try strcpy(message, newmessage) - newmessage contains "bar". It works fine. However, if I consider strcpy(message, "bar"), it fails badly.
    – newbie
    Jan 18, 2013 at 10:31
  • 1
    If your microcontroller has a Harvard architecture then you will need to call specific functions (or even use assembly). On Harvard architecture there are 2 separate address spaces (RAM and ROM). A litteral is generally compiled/linked/mapped to a ROM address. Variables are in the RAM area. Copying data from the ROM to the RAM needs special instructions that the normal strcpy does not use. Jan 18, 2013 at 10:45
  • The char assignement method works for Harvard architecture because the chars ('b', 'a') are compiled directly as immediate values in the instructions. Jan 18, 2013 at 10:47
  • I checked, MPLAB is for Microchip, therefore PIC controller which tells it is a Harvard architecture with separate Instruction and data memories. You can not use strcpy for litterals. Jan 18, 2013 at 10:56
  • "foo" is actually a string literal here. One of the initialization rules of the langauge is that a char array can be initialized from a string literal.
    – M.M
    Jul 16, 2017 at 3:06
2

you can do that only in the initialisation when you declare the char array

message[] = "bar";

You can not do it in your code

To modify it you can use strcpy from <string.h>

strcpy(message, "bar");
0

You cant change the character array like this . If you want to change the value of character array then you have to change it by modifying single character or you can use

strcpy(message,"bar");
2
  • I tried using this method but nothing shows up for the value of message in microcontroller LCD display. It works fine for "foo" previously.
    – newbie
    Jan 18, 2013 at 10:10
  • @newbie You're not showing us all your code, which is why you're not getting helped.
    – Jim Balter
    Jan 18, 2013 at 10:29
0
char message[]="foo";

This statement cause compiler to create memory space of 4 char variable.Starting address of this memory cluster is pointer value of message. address of message is unchangeable, you cannot change the address where it points . In this case, your only chance is changing the data pointed by message.

char* message="foo"

In this time, memory is created to store the address of pointer, so the address where message point can change during execution. Then you can safely do message="bar"

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