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I writing a code for a clock and I'm creating a function to display the time which is stored in an array time[]

char time[]="23:59:45         ";
char display_time(char *t[], char *, char *, char *);

void main(void)             
{
            display_time(&time, &hr, &min, &sec);
            GLCD_GoTo(5,3);
            GLCD_WriteString(time, Font_System7x8);
}

and this is my function

char display_time(char *t[], char *h, char *m, char *s)
{

                *t[0]=*h/10+48;
                *t[1]=*h%10+48;
                *t[3]=*m/10+48;
                *t[4]=*m%10+48;
                *t[6]=*s/10+48;
                *t[7]=*s%10+48;


}

Everything compiles fine but my time isn't getting update and only the initialized value is being displayed.

share|improve this question
7  
If you learned void main(void) in class, it's time to switch lecturers. –  Kerrek SB Nov 28 '11 at 16:53
4  
Increase your compiler warning level to the max .. and mind the warnings –  pmg Nov 28 '11 at 16:54
    
You never show your code that is supposed to actually update the time. I'm assuming somewhere you actually modify the values in time[], you should post your code that does this, so we can actually see what may be going wrong. –  Jarek Nov 28 '11 at 16:55
1  
The order of operations in that code makes me dizzy. –  Jonathan Grynspan Nov 28 '11 at 16:59
1  
You probably meant to call your function like this: display_time(time, &hr, &min, &sec); - no ampersand on time. –  tinman Nov 28 '11 at 17:09

2 Answers 2

up vote 1 down vote accepted
  • please compile with warnings (gcc -Wall -Wextra)
  • display_time should return void
  • main should return int and take either (int, char*[]) or (), but NOT (void)
  • you can improve the lisibility by passing values (instead of pointers)
  • use '0' instead of 48, again for lisibility
  • you did not initialize hr. min and sec in your code.
  • you should test if h is between 0 and 24 etc.
  • you should test for NULL pointer
  • display_time doesn't "display time", write a better name for the function and you're done :-)

.

void display_time(char t[], int h, int m, int s) {
    t[0] = h / 10 + '0';
    t[1] = h % 10 + '0';
    t[3] = m / 10 + '0';
    t[4] = m % 10 + '0';
    t[6] = s / 10 + '0';
    t[7] = s % 10 + '0';
}

int main(int, char*[]) {
    char time[] = "23:59:45";
    int hr = 3, min = 9, sec = 42;
    display_time(time, hr, min, sec);
    GLCD_GoTo(5,3);
    GLCD_WriteString(time, Font_System7x8);
    return 0;
}
share|improve this answer

Your types are wrong. You shouldn't be sending char *t[], as you are not passing an array of pointers. Also, you may not realize but &time is the same as time, there is no "address of time". You want to just pass char* to your function.

share|improve this answer
    
What do you mean as &time is the same as time? –  Giovanni Funchal Nov 28 '11 at 17:40
    
That's how array declarations work. Try it, do printf("%x %x", &time, time);, and it will print two identical addresses –  TJD Nov 28 '11 at 17:41
    
From what I understand, they are different because they have different type. time is char[9] and &time is char*. The thing in your call to printf is that this is a variadic function and you have an implicit cast to int there (because %x expects an unsigned hexadecimal integer). –  Giovanni Funchal Nov 28 '11 at 18:30
    
@GiovanniFunchal, that isn't a functional difference that impacts the behavior of the posted question. Under the hood, a char[] and a char* are the same. My point is that it's wrong to do *t[0], because it should just be t[0] –  TJD Nov 28 '11 at 18:40
    
No char[] and char* are NOT the same. char[] means that there is an array somewhere and indicates its address, but the char* means that there is an array somewhere PLUS a pointer to the array and indicate the pointer. –  Giovanni Funchal Nov 28 '11 at 22:13

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