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I'm stuck on some homework which isn't graded (its meant for practice).

I have to create a function called find_name that takes 2 arguments. The first argument is a 2D array of names (strings), and the second is a character string which is used to find the name in the 2D array, the function must return 1 if found else 0.

When i call the function (which is empty right now), I get this warning: passing argument 1 of 'find_name' from incompatible pointer type

Here is the important bits.

In Main

 char strNameList[][2] = { { "Luca","Daniel"} ,{"Vivan","Desmond"},{"Abdul","Justin"}, {"Nina","Marlene"},{"Donny","Kathlene"} };

char strFindName[] = "\0";
    printf("Please enter a name to look for: ");
    gets(strFindName);
    nSearch = find_name(strNameList, strFindName);

The Function

int find_name(char strNameList[][2], char strLookUp[])

I'm new to C (I'm a student), and I'm completely confused about strings (string arrays etc).

share|improve this question
    
What do you want to declare char * strNameList[][2] or char strNameList[][2]? – alk Nov 21 '12 at 20:32
    
oops i have char strNameList, not char *strNameList – Luca Tenuta Nov 21 '12 at 20:34

I'm assuming you want a 2D array of char pointers. Your declaration of strNameList is incorrect in both locations in your program. You have:

char strNameList[][2] = { { "Luca","Daniel"} ,{"Vivan","Desmond"},{"Abdul","Justin"}, {"Nina","Marlene"},{"Donny","Kathlene"} };

But char[][N] is declaring a 2D array of chars, not char* Therefore you're being warned by the compiler you're assigning a raft of pointer values to items of type char

Change both your declarations (your variable and your function parameter) to:

const char *strNameList[][2]

which declares an array of unknown length of arrays of two char*, which now matches your initialization lists. Also, the const is added because (a) I'm assuming you are not planning on modify that name list in your function, and (b) writable string literal declarations assigned to char* via initializer is undefined behavior in C, and officially deprecated in C++, so you should not be using it regardless. Likewise, your lookup-name is probably not being modified either, so also declare it const.

Result:

const char * strNameList[][2] = { 
    {"Luca","Daniel"} ,
    {"Vivan","Desmond"},
    {"Abdul","Justin"}, 
    {"Nina","Marlene"},
    {"Donny","Kathlene"} 
};

and in your function:

int find_name(const char * strNameList[][2], const char strLookUp[])

Last but certainly not least, unless you have a crystal ball your find_name() function has no way of knowing with the given information how many names are in the name list being passed. I'd rather you see this now rather than wonder what happened later. you need to either (a) terminate the list with a token-value that find_name() knows about, or (b) pass the number of names in the list to find_name(). To each their own, but I prefer the latter of these:

int find_name(const char * strNameList[][2], size_t nNameListSize, const char strLookUp[])

and invoke it on your caller side by:

find_name(strNameList, sizeof(strNameList)/sizeof(strNameList[0]), strFindName)
share|improve this answer
    
+1 for the const I missed ... - as strcpy(strNameList[0][0], "alk"); would crash the app at least if using a recent gcc. – alk Nov 21 '12 at 20:55
    
"writable string literal declarations assigned to char* via initializer is a deprecated feature of C". That's not exactly true. It's deprecated in C++ and valid in C. C string literals are not const, but it is undefined behavior to modify them: *"[...] If the program attempts to modify such an array, the behavior is undefined." (C11 6.4.5/7, String Literals) – netcoder Nov 21 '12 at 21:09
    
@netcoder I really need to pick a language and stick with it. Every time I work with one it rubs in the face of the other. I declared a VLA in C++ the other day and stared at it for 10 minutes trying to remember why it wouldn't compile. Thanks, sir, I'll update the answer. – WhozCraig Nov 21 '12 at 21:13
    
Passing the array's size around is not necessarily needed is the array is terminated by a stopper element. Please see my answer for this mod. – alk Nov 21 '12 at 21:22
1  
@alk sok. stare at enough SO posts eventually they all blend into giant plate of linguini with marinara. easy to miss stuff. I certainly do, anyway. – WhozCraig Nov 21 '12 at 22:08

Do it this way:

#define STOPPER_NAMELIST NULL

char * strNameList[][2] = { 
  { "Luca","Daniel"},
  {"Vivan","Desmond"},
  {"Abdul","Justin"}, 
  {"Nina","Marlene"}, 
  {"Donny","Kathlene"} 
  {STOPPER_NAMELIST, STOPPER_NAMELIST}
};

size_t sizeNameList(const char * strNameList[][2])
{
  size_t size = 0;

  while ((strNameList[size][0] != STOPPER_NAMELIST) && 
         (strNameList[size][0] != STOPPER_NAMELIST))
    ++ size;

  return size;
}

int find_name(char * strNameList[][2], char strLookUp[])
{
   size_t size = sizeNameList(strNameList);

   ...
}

...

char strFindName[] = "\0";
printf("Please enter a name to look for: ");
gets(strFindName);
nSearch = find_name(strNameList, strFindName);

This approach uses an open array ([]) of char * arrays with 2 entries.


Update:

You could add a stopper element to the array carring the names, then there is no need to pass around the array's size along with array itself, as the size could alway be determined by scanning the array members until the stopper is found.

share|improve this answer
    
I have a doubt how will find_name work ? – Omkant Nov 21 '12 at 20:46
    
I get this now. warning: excess elements in array initializer| warning: (near initialization for 'strNameList[0]') – Luca Tenuta Nov 21 '12 at 20:48
    
Yeah got it you modified the find_name also , I was looking into older one..+1 – Omkant Nov 21 '12 at 20:49
    
To get Luca just do strNameList[0][0] and for Vivan do strNameList[1][0]. @Omkant – alk Nov 21 '12 at 20:51
    
Herp derp i didn't group the elements in pairs indicated by '[][2]'. Going to build find_name now as all the errors are gone. – Luca Tenuta Nov 21 '12 at 20:51

Your function find_name() is looking for a 2-D array of characters ie:

char arr[][2] = { { 'a', 'b'}, ...

if you want to make them strings you need:

char *arr[][2] = { {"John", "Smith"}, ...

Then in the function parameter list you need:

void find_name(char *something[][2])
{
   printf("first name: %s, second name: %s\n", something[0][0], something[0][1]);

And in your main() function call it just by:

find_name(arr);
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