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am trying to understand how link lists work ; and on changing example code from tutor I get the 'left operand must be l-value' error ...here is my code. Any help appreciated :)

struct node
{
    char name[20];
    struct node *next;
};

/*Function to allocate memory and initialize node - returns pointer to node*/
struct node*mknode(char *str)
{
    struct node *np;

    np = (struct node*)malloc(sizeof(struct node));

    if(np)
    {
        np->name = *str;
        np->next = NULL; /*sets the 'next' pointer to last list item to NULL*/
    }

    return np;

}

int main(void)
{

int i,menu,k=1,number;
char name[20];
char *str = name;
struct node* n;
struct node *head=NULL;


printf("Link Lists\n    1-Enter Data into lists\n   2-Display All List Items\n  3-Quit Program :(\n");

    do 
    {
        printf("\nPlease choose an option:  ");
        scanf("%d",&menu);

        switch (menu)
        {
            case 1:
                printf("\nPlease Enter A Number:");
                scanf("%d",&name);

                n=mknode(str); /*create new node with i as data*/

                append_node(&head,n); /*add new node to end of list*/
            break;

this is where i get the error

np->name = *str;

after changing the structures data type from integer to char

thanks

share|improve this question
    
You're treating np->name as a pointer, when it's an array. You can't assign something to an array. –  teppic Mar 7 '13 at 21:25
    
You can't assign directly to a character array, you need to use strcpy or strncpy –  Hunter McMillen Mar 7 '13 at 21:25
    
possible duplicate of error C2106: '=' : left operand must be l-value in C –  Bo Persson Mar 7 '13 at 21:29
    
thanks for the quick reply - strcpy worked just fine :) –  Dex Dave Mar 7 '13 at 21:39
    
I don't think the line scanf("%d",&name); does what you expect it to. It stores an int, but the address you've given it to store to is your char array, that you later use as a string. –  Steve Jessop Mar 7 '13 at 23:16

2 Answers 2

up vote 1 down vote accepted

In C arrays aren't modifiable lvalues, i.e. you can't assign to an array. If I understand correctly what you are trying to do you can try:

strcpy(np->name, str);

If str isn't a trusted string (if you didn't validate it before) you could use memcpy instead of strcpy.

share|improve this answer
1  
strncpy, please –  Kevin Mar 7 '13 at 21:25
    
@Kevin, Ates strncpy is not a safer version of strcpy. –  cnicutar Mar 7 '13 at 21:25
    
And why do you say that? –  Kevin Mar 7 '13 at 21:28
1  
@HunterMcMillen If you pass the size of your array, that is the normal thing you'd expect you need to pass, it can leave you with a string that's not 0-terminated. Trust me: use validated strings + strcpy or non-validated strings and memcpy –  cnicutar Mar 7 '13 at 21:32
1  
Anyway, if you're worried that strcpy isn't safe enough for you then the correct next step is not to use strncpy instead, with code every time you use it to put in the nul terminator. The correct next step is to use (or implement if unavailable) either strlcpy or strcpy_s, and check for unexpected string truncation, and handle those cases. –  Steve Jessop Mar 7 '13 at 23:12

there are two errors in this statement

np->name = *str;

first name is declared as an array, you cannot change where the array is by assigning to it. instead you must copy the contents of the string to name using strcpy

strcpy_s( np->name, sizeof(name), str );

second error is that you are derefencing the string str in your assignment, when you derefence the string *str you are just copying the first character of the string, it is like writing str[0]

you can alternatively declare name as a char pointer instead but you then need to allocate and later free the string:

typedef struct node {
  char* name;
  struct node* next;
} node;
...

np->name = strdup(str); /* allocates enough space for string and copies it. */
share|improve this answer
    
Thanks for the quick reply.I am a beginner , so bear with me here. whats the difference between strcpy_s( np->name, sizeof(name), str ); and strcpy(np->name, str); –  Dex Dave Mar 7 '13 at 21:45
    
then wouldn't it be easier to get rid of *str and use name[20] instead as in the main program? - I don,t want to deal with memory allocation at the moment :) –  Dex Dave Mar 7 '13 at 21:53
    
@DexDave strcpy_s is quasi-standard. It's part of the optional Annex K Bounds-checking interfaces introduced in C11. It's not supported by glibc for example. –  cnicutar Mar 7 '13 at 21:55
1  
@cnicutar oh so strcpy is better –  Dex Dave Mar 7 '13 at 21:59
    
@DexDave Not sure if "better". But more portable, certainly. Also, whatever people tell you, don't blindly use strncpy instead of strcpy. –  cnicutar Mar 7 '13 at 21:59

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