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I was asked to right a program which checks if the date entered by the user is legitimate or not in C. I tried writing it but I guess the logic isn't right.

//Legitimate date
#include <stdio.h>
void main()
{
    int d,m,y,leap;
    int legit = 0;
    printf("Enter the date\n");
    scanf("%i.%i.%i",&d,&m,&y);
    if(y % 400 == 0 || (y % 100 != 0 && y % 4 == 0))
        {leap=1;}
    if (m<13)
    {
        if (m == 1 || (3 || ( 5 || ( 7 || ( 8 || ( 10 || ( 12 )))))))
            {if (d <=31)
                {legit=1;}}
        else if (m == 4 || ( 6 || ( 9 || ( 11 ) ) ) )
            {if (d <= 30)
                {legit = 1;}}
        else
            {
                        if (leap == 1)
                              {if (d <= 29)
                                    {legit = 1;}}
                        if (leap == 0)
                              {{if (d <= 28)
                                    legit = 1;}}
             }
    }
    if (legit==1)
        printf("It is a legitimate date!\n");
    else
        printf("It's not a legitimate date!");

}

I am getting the correct output if the month has 31 days but for the rest of the months, the output is legitimate if the day is less than 32. Your help is appreciated!

share|improve this question
    
leap is not initialized. Enable warnings! –  Alexey Frunze Feb 19 '13 at 7:22

4 Answers 4

up vote 1 down vote accepted

You can't chain conditionals like this:

if (m == 1 || (3 || ( 5 || ( 7 || ( 8 || ( 10 || ( 12 )))))))

Instead, you'll have to test each scenario specially:

if (m == 1 || m == 3 || m == 5 || ...)

Your version simply ORs the results of the first test (m == 1) with the value of 3, which in C is a non-zero and therefore always a boolean true.

share|improve this answer
    
Thanks. It works! –  Shail Feb 19 '13 at 6:13

i rewrite you program as simple and easy, i think this may help

//Legitimate date
#include <stdio.h>

void main()
{
   int d,m,y;
   int daysinmonth[12]={31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31}
   int legit = 0;

   printf("Enter the date\n");
   scanf("%i.%i.%i",&d,&m,&y);

   // leap year checking, if ok add 29 days to february
   if(y % 400 == 0 || (y % 100 != 0 && y % 4 == 0))
    daysinmonth[1]=29;

   // days in month checking
   if (m<13)
   {
      if( d <= daysinmonth[m-1] )
        legit=1;
   }

   if (legit==1)
      printf("It is a legitimate date!\n");
   else
      printf("It's not a legitimate date!");
}
share|improve this answer
    
Using an array! Thanks! –  Shail Feb 19 '13 at 6:12
    
If you want to check for all errors, remember that you can get zero and negative values in the input! –  Alexey Frunze Feb 19 '13 at 7:24

This test is certainly wrong:

if (m == 1 || (3 || ( 5 || ( 7 || ( 8 || ( 10 || ( 12 )))))))

This must be

if ((m == 1) || (m == 3) || (m == 5) || ... )

Performing a logical or with a non-zero expression will always evaluate to true. Therefore, your entire test will always be true.

share|improve this answer
    
Thanks for your help! –  Shail Feb 19 '13 at 6:14

You can check date legitimacy simpler:

#define _XOPEN_SOURCE 600
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <time.h>

time_t get_date(char *line){
#define WRONG() do{printf("Wrong date!\n"); return -1;}while(0)
    time_t date;
    struct tm time_, time_now, *gmt;
    time_.tm_sec = 0;
    time_.tm_hour = 0;
    time_.tm_min = 0;
    if(strchr(line, '.') && sscanf(line, "%d.%d.%d", &time_.tm_mday, &time_.tm_mon, &time_.tm_year) == 3){
        time_.tm_mon--; time_.tm_year += (time_.tm_year < 100) ? 100 : -1900;
    }else
        WRONG();
    memcpy(&time_now, &time_, sizeof(struct tm));
    date = mktime(&time_now);
    gmt = localtime(&date);
    if(time_.tm_mday != gmt->tm_mday) WRONG();
    if(time_.tm_mon != gmt->tm_mon) WRONG();
    if(time_.tm_year != gmt->tm_year) WRONG();
    date = mktime(&time_);
    return date;
#undef WRONG
}

int main(int argc, char** argv){
    struct tm *tmp;
    if(argc != 2) return 1;
    time_t GD = get_date(argv[1]);
    if(GD == -1) return -1;
    printf("Int date = %d\n", GD);
    printf("your date: %s\n", ctime(&GD));
    return 0;
}
share|improve this answer
    
I've just started learning so I didn't really understand most of the part, but thanks for your help! –  Shail Feb 19 '13 at 6:10
    
It's based on standard time conversion. mktime() makes a time_t from struct tm*. If time_t have incorrect data, then localtime() will return struct tm* which fields will differ from original struct tm* (time_). –  Eddy_Em Feb 19 '13 at 6:35

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