Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Can anybody tell me that the following declaration is correct or not:

char (*p)[10];

p is a pointer to a string of 10 characters.

I made a program as below:

/*PROGRAM*/

#include<stdio.h>
#include<string.h>

void xstrcpy(char (**)[], const char (**)[]);
void main()
{
    const char (*xsource)[10]="SUPERB";

    char (*xtarget)[10];

    printf("\n\n*************PART1*************\n\n");   
    printf("%s\n",xsource);

    printf("\n\n*************PART2*************\n\n");

    xtarget=xsource;

    printf("%s\n",xtarget);

    printf("\n\n*************PART3*************\n\n");


    xstrcpy(xtarget,xsource);
    puts(xtarget);

}

void xstrcpy(char (**p)[],const char (**q)[])
{

        p=q;
}

The purpose of program is to copy a string from another.

Thanks in advance.

share|improve this question

closed as too localized by Brian Roach, Kurt Revis, Anders R. Bystrup, Ilmari Karonen, valex Jan 11 '13 at 7:19

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

2  
cdecl.org is your friend. –  Richard J. Ross III Jan 11 '13 at 3:13

3 Answers 3

To learn how to determine variable types in C, you should learn the 'right-left rule' which is explained here: http://ieng9.ucsd.edu/~cs30x/rt_lt.rule.html

Using the rule, and following the style of the ieng9 article here's how you can determine the type in your example:

1. Find identifier                      char (*p)[10];
                                               ^
   "p is a"

2. Move right (stop at right paren)     char (*p)[10];
                                                ^
3. Stop at right paren and move left    char (*p)[10];
                                              ^
   "p is a pointer to"

4. Stop at left paren and move right    char (*p)[10];
                                                 ^
   "p is a pointer to array (size 10) of"

5. Out of symbols so move left          char (*p)[10];
                                        ^
   "p is a pointer to array (size 10) of char"

Or in other words, p is a pointer to a char array of size 10.

share|improve this answer

p is a pointer to a string of 10 characters.

It's a pointer to a char array of length-10, which may or may not be interpreted as a string...

share|improve this answer

char (*p)[10];

A good way to explain this code is to read from right to left, in fact, it is the real way to understand this code in compilation.

So the process is: [10] -> this is an array with 10 elements. (*p)[10] -> this is a pointer to an array with 10 whatever type elements. char (*p)[10] -> this is a pointer to an array with 10 char elements.

Here we could find if we don't have brackets, we will meet p[10] firstly and the final result will become a little different: the p is an array firstly instead of a pointer.

You could read one article wrote by Dan Sales: const T vs. T const. It will help you a lot in understanding this kind of problem, though it focuses on c++.

For your program, I can only say please make a experiment and post your result, thank you firstly ^0^ ~~ if you let me guess, I think I will say it would not work because the type of pointer is wrong.

share|improve this answer

Not the answer you're looking for? Browse other questions tagged or ask your own question.