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Here is a code take 5 strings and sort ascending way. (it works properly, but)

1 #include <stdio.h>
2 #include <string.h>
3 
4 void swap (char data[5][255], int i, int j) {
5     char temp[255];
6     strcpy(temp,data[i]);
7     strcpy(data[i],data[j]);
8     strcpy(data[j],temp);
9 }
10 
11 void sort (char data[5][255], int n) {
12     // * : first address contact
13     int i, j;
14     for(i = 0; i < n-1; i++)
15         for( j = i+1; j > 0; j--)
16             if(strcmp(data[j-1],data[j])>0)
17             {
18                 printf("%s",data[j-1]);
19                 swap(data, j-1, j);
20             }
21 }
22 
23 int main() {
24     char strings[5][255];
25     char comp[255];
26     int i, n;
27     n = sizeof(strings)/sizeof(comp);
28     printf("Enter 5 strings, max 255 chars each:\n");
29     for(i=0; i < n; i++)
30         scanf("%s",strings[i]);
31     sort(strings, n);
32     printf("Sorted data:\n");
33     for(i=0; i < n-1; i++)
34         printf("%s, ",strings[i]);
35     printf("%s.\n",strings[i]);
36     return 0;
37 }

How can I possibly parse my static array string[5][255] to function by using pointer? I tried that, for example,

void sort ( char **data, int i ) { ... }

but it throws out error like this.

incompatible pointer types passing 'char [5][255]' to parameter of type 'char **'

Is there anything I can parse my array using pointer?

Since array parsed to function its first address(pointer), I thought function will accept those expression. Please give me some advice to understand.

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char * data[255] –  Jekyll Dec 17 '13 at 23:32
    
why **data wouldn't work? unlike char *data[255], Jekyll? –  Sogo Dec 17 '13 at 23:34
1  
stackoverflow.com/questions/12674094/… << see here –  Jekyll Dec 17 '13 at 23:38

4 Answers 4

up vote 3 down vote accepted

The parameter you must pass is not a pointer to a pointer char**, but a pointer to a char array char(*)[255]

void sort (char (*data)[255], int n)

When you pass an array, you can omit the size of the first dimension

void sort (char data[][255], int n)

which is equivalent to char(*)[255].

char** is a pointer, which points to another pointer. Whereas char(*)[255] is a pointer, which points to an array.

share|improve this answer
    
Thanks Mr. Olaf, but I can not understand why it is impossible. Is that because of array saving priority to do not allocate parsing parameters as an infinite way? –  Sogo Dec 17 '13 at 23:38
    
It is not possible, because these are different types. Please see the updated answer. –  Olaf Dietsche Dec 17 '13 at 23:41
    
Thanks a lot Mr. Olaf, to sum up, function can not be point a pointer, but can point any other type (like array), right? –  Sogo Dec 17 '13 at 23:46
1  
You can use pointer to a pointer as @Jekyll shows. In your case however, you just don't have one, but a pointer to array. –  Olaf Dietsche Dec 17 '13 at 23:49
    
it's not char *[255], but char (*)[255]. They are very different. –  newacct Dec 18 '13 at 22:54

You have to understand the difference between: char **data vs char (*data)[255]

Those are two different types because the allocation of memory may be different:

When char **data is used pointer arithmetic may not work properly, meaning data could be scattered all over the memory

When char (*data)[255] is used pointer arithmetic works perfectly because all elements of array are adjacent to each other

share|improve this answer
    
Thanks Mr. Daveel. Then if I assign array by using memory allocation like 'malloc', then is it possible to parse to double pointing function like, 'sort(char **data, int n)'? Because I remember I have tried parse dynamic array to pointer. –  Sogo Dec 17 '13 at 23:51
1  
@Sogo Yes, if you will allocate your strings on the heap, then your sort(char **data, int n) will work –  Daveel Dec 18 '13 at 0:03
    
char *data[255] is not char (*data)[255] –  newacct Dec 18 '13 at 22:55
    
@newacct you're right, typo, updated –  Daveel Dec 19 '13 at 1:45

As I wrote you in the comment char[][] doesn't decay to char** but it decays to char(*)[] ( char (*data)[255] in your case) as the first element decay in a pointer which is not a "pointer to a pointer" but a pointer to an array of 255 characters. It is possible to use a char** pointer if you do something like this (c++):

char **array = new char *[N];

for(int i = 0; i<N; i++)
    array[i] = new char[N];

or using the malloc (c).

As @newact suggests it is important to distinguish between

char *data[255] -> char *[255]data = => "data is an array of 255 pointers to char" And

char (*data)[255] -> char [255](*data) => "data is a pointer to an array of 255 chars"

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1  
I got it, Mr. Jekyll! Thanks. It helped me a lot! –  Sogo Dec 17 '13 at 23:55
    
@Sogo you're welcome –  Jekyll Dec 17 '13 at 23:56
1  
char*[] is an array of pointers. very different from char (*)[255] –  newacct Dec 18 '13 at 22:55
    
@newacct corrected the char*[] in char(*)[] in the description :). –  Jekyll Dec 19 '13 at 9:48

Try to make the following changes:

void swap ( char *data, int i, int j)

*(data + index1*255 + index2)
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