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Here is my main function:

main(){

    int *seats[50] = {0};
    char x;

    do{
        printf("A-Add Reservation\tC-Cancel Reservation\n");
        scanf("%c", &x); 
    } while(x != 'a' && x != 'c');

    switch(x){
    case 'a':
        addRes(&seats); 
        break;
    default: 
        break;
    }
}

I am trying to pass seats[] into the addRes() function so I can modify it within addRes(). Here is the function:

void addRes(int **seats[]){
    int s, i, scount=0, j=0, k=0, yourseats[]={0};
    printf("How many seats do you require? ");
    scanf("%i\n", &s);
    for(i=0;i<=sizeof(*seats);i++){
        if(*seats[i] == 0)
            scount++;
    }
    if(scount >= s){
        for(i=0;i<=s;){
            if(*seats[i] == 0){
                yourseats[j]=i;
                *seats[i]=1;                
                i++; j++;
            }
            else i++;
        }
        printf("Your seat numbers are: \n");
        while(k < j){
            printf("%i\n", yourseats[k]); 
            k++;
        }   
    }
    else {
        printf("Sorry, there are not enough seats available.\n");
    }
}

It compiles with the warnings:

Line 15 (*seats[i]=1;) Assignment makes pointer from integer without a cast.  
Line 53: (addRes(&seats);) Passing argument 1 of 'addRes' from incompatible pointer       type.
Line 3: (void addRes(int ** seats[]){) Expected 'int ***' but argument is of type  'int *(*)[50]'.

On running the program it gets to

How many seats do you require?  

and does nothing after entering a value. Any help would be much appreciated!

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1  
Why main()? At least it should be int main(). –  haccks Jul 21 '13 at 12:35
    
But why is that? Most programs I have seen are just main(). –  petehallw Jul 21 '13 at 12:41
1  
Read this and also this one. –  haccks Jul 21 '13 at 12:52
    
C defaults to int if you don't use a return type or if you don't type your arguments. That's true for K&R style but it could vary between compilers, and some might (and should!) complain about it. Be safe, make it int. –  rath Jul 21 '13 at 13:09
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2 Answers

up vote 5 down vote accepted

Declaration int **seats[] in function parameter is == int ***seats, and this means type of *seats[i] is int* and you are assigning a number to it, that is incompatible type error:

*seats[i] = 1; 
  ^         ^ int  
  |        
    int* 

incompatible types 

Next in addRes(&seats);

seats in array of pointer its type if int*[50] that &seat is pointer of array and type of &seat is int*(*)[50] Where as function argument type is int ***, so again type incompatible error.
Notice you are also getting a reasonable error message from compiler: Expected 'int ***' but argument is of type 'int * (*)[50]'.

Suggestion:

As I can see in your code, you don't allocate memory for seats[i] in your function addRes() and So as I understand you not need to declare seat[] array as array of pointers but you need simple array of int.

Change declaration in main():

int *seats[50] = {0};

should be just:

int seats[50] = {0};
 // removed * before seats

Next just pass seats[] array's name to addRes() function where declaration of function should be

addRes(int* seats)

or  addRes(int seats[]) 

it make your work pretty simple in function addRes() you can access its elements as seats[i] ( and it no need to use extra * operator).

Length of array:

One more conceptional problem in your code that you are using sizeof(*seats) to know the length of array. Its wrong! because in addRes() function seats is not more an array but a pointer so it will give you the size of address ( but not array length).
And yes to inform about size of seats[] in addRes() function send an extra parameter called length, so finally declare addRes() as follows (read comments):

void addRes(int seats[], int length){
     // access seat as 
     //  seat[i] = 10;
     // where i < length 
}

Call this function from main() as follows:

addRes(seats, 50);
  // no need to use &

One more problem that presently you are not facing but you will encounter soon as you will run you code that scanf() need extra enter in function addRes(). To resolve it change: scanf("%i\n", &s); as scanf("%i", &s); no need of extra \n in format string in scanf().

share|improve this answer
    
Thank you! That has made things clear. I will try out passing in the length..so I would pass in sizeof(seats) for the length parameter for example? –  petehallw Jul 21 '13 at 12:51
1  
@petehallw sizeof(seats) will pass the size in bytes which is 50 * 4 (if you are on a 32 bit machine) 200, you need to pass sizeof(seats)/sizeof(int) which is 50. –  Nobilis Jul 21 '13 at 12:52
    
@petehallw yes from main you can pass length as Nobilis suggesting –  Grijesh Chauhan Jul 21 '13 at 12:54
    
Ok thanks a lot for your answers! –  petehallw Jul 21 '13 at 12:57
    
@GrijeshChauhan That's why I have written , if you are satisfied with it , that says it all. He is free to choose among them , accepting an answer after the problem is resolved of course, makes the post complete and better . –  PHI Jul 21 '13 at 13:56
show 2 more comments
int *seats[50] = {0};

This is an array of integer pointers, all you need is an actual array so drop the * resulting in int seats[50] = {0};.

Also your function signature for an array is wrong, void addRes(int seats[]) will do fine.

Finally, to pass an array to that new signature, you can pass the array directly without any unary address-of operators (arrays will decay to a pointer when passed as an argument to a function):

addRes(seats);

Also as pointed out, when assigning to an array element, you need to drop the *:

seats[i]=1;

Is more than enough. Same goes for the if statements and the like where you do a comparison against an array element.

Regarding your addRes function:

for(i=0;i<=sizeof(*seats);i++)

You will only get the size of the pointer this way, which on a 32bit machine is 4. This trick will not work on an array passed to a function. You will need to pass the array separately.

You can fix it in the following way:

  1. Change the function signature of address to this:

    • void addRes(int seats[], int size)
  2. Pass the size in one of the following ways in main:

    • Directly: addRes(seats, 50);

    • Indirectly: addRes(seats, sizeof(seats)/sizeof(int));

Note that the above only works on local to the scope of this function arrays, it won't work on an array you've obtained as an argument to a function (or dynamically allocated arrays).

Another issue is to do with scanf, you should drop the \n. Use scanf("%i", &s);

share|improve this answer
    
Hi thank you for the help. So I understand when passing the array it becomes a pointer automatically? My program still does nothing after asking for a value however. :S –  petehallw Jul 21 '13 at 12:39
1  
Oh of course! Thanks :) –  petehallw Jul 21 '13 at 12:42
1  
Another silly mistake on my part, this was annoying me for a while! Thanks again –  petehallw Jul 21 '13 at 13:06
2  
Nobilis: soon remove this line from your answer there's no such format specifier as %i (else people will down-vote you) its in C, yes! give it a try!.. –  Grijesh Chauhan Jul 21 '13 at 13:19
1  
@Nobilis Very nice, its very good that you knows how to explore things. Impressive. And as I can notice you are improving your answers too. You deserve good votes keep it up. –  Grijesh Chauhan Jul 21 '13 at 14:08
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