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In this I get leap & ordinary year and month, but I don't know how to get day of the given date month year. And also having one question: 1800 and 1900 are ordinary year but I get these years are leap year. Can you solve this?

import java.util.Scanner;

class day {

    public static void main(String arg[]) {
        int tm, sm, w;
        int y;
        int[] m = new int[12];
        m[0] = 31;
        m[1] = 28;
        m[2] = 31;
        m[3] = 30;
        m[4] = 31;
        m[5] = 30;
        m[6] = 31;
        m[7] = 31;
        m[8] = 30;
        m[9] = 31;
        m[10] = 30;
        m[11] = 31;
        //{31,28,31,30,31,30,31,31,30,31,30,31};
        String[] mo = new String[12];
        mo[0] = "January";
        mo[1] = "February";
        mo[2] = "March";
        mo[3] = "April";
        mo[4] = "May";
        mo[5] = "June";
        mo[6] = "July";
        mo[7] = "August";
        mo[8] = "September";
        mo[9] = "October";
        mo[10] = "November";
        mo[11] = "December";
        String[] we = new String[w];
        we[0] = "Sunday";
        we[1] = "Monday";
        we[2] = "Tuesday";
        we[3] = "Wednesday";
        we[4] = "Thursday";
        we[5] = "Friday";
        we[6] = "Saturday";
        Scanner ip = new Scanner(System.in);
        System.out.print("\nEnter year ");
        y = ip.nextInt();
        System.out.print("\nEnter month ");
        sm = ip.nextInt();
        if (y % 4 == 0) {
            m[1] = m[1] + 1;
            for (tm = 1; tm <= m.length; tm++) {
                if (tm == sm) {
                    System.out.print("\n" + y + " is a Leap Year\n"
                            + mo[sm - 1] + " month " + "has " + m[sm - 1] + " days\n");
                }
            }
        } else {
            for (tm = 1; tm <= 12; tm++) {
                if (tm == sm) {
                    System.out.print("\n" + y + " is an Ordinary year\n"
                            + mo[sm - 1] + " month " + "has " + m[sm - 1] + " days\n");
                }
            }
        }
    }
}
share|improve this question
5  
Use a consistent and logical indent for code blocks. The indentation of the code is intended to help people understand the program flow. –  Andrew Thompson Jan 6 at 4:46
2  
Why not use Calendar class, for example? –  MGorgon Jan 6 at 4:49
1  
The GregorianCalendar class does all of this for you. –  David Wallace Jan 6 at 4:50
    
First, you should google for leap year. –  Tim Jan 6 at 4:51
    
My guide teach me opto basic class,objects and methods. And he give a task to get day of the given date, month and year as input. And I'm not supposed to use inbuilt calendar api or packages. –  Mani Beginner Jan 6 at 5:03

3 Answers 3

this is how to identify a leap year for Gregorian calendar

if ((y % 4 == 0  && y % 100 !=0) || y % 400 == 0) {
  ...

see http://en.wikipedia.org/wiki/Leap_year

share|improve this answer
    
Than you for leap year suggestion.. –  Mani Beginner Jan 6 at 5:04
    
Can you give me idea to get day of the given data, month and year. Example. By entering 01 01 2014 gives output as wednesday.. –  Mani Beginner Jan 6 at 5:13
    
Are you allowed to use Calendar? –  Evgeniy Dorofeev Jan 6 at 5:17

Why don't you use the java.util.Date and java.util.GregorianCalendar classes? Then you can simply read the input from the console, and parse it into a Calendar object.

import java.io.Console;
import java.text.ParseException;
import java.text.SimpleDateFormat;
import java.util.Calendar;
import java.util.Date;
import java.util.GregorianCalendar;
// ... other stuff
Console c = System.console();
Date date;
// Note: Console is not working from Netbeans, you have to run it through a real shell.
String dateinput = c.readLine("Phlease, enter the date (as year-month-day): ");
SimpleDateFormat simpleDateFormat = new SimpleDateFormat("yyyy-MM-dd");
try
{
    date = simpleDateFormat.parse(dateinput);
}
catch (ParseException ex)
{
    System.out.println("Oops, problem! Exception: " + ex);
}

// Now, you have the input date as a Date object.
// Checking if it is a leap year:
GregorianCalendar gc = new GregorianCalendar();
gc.setTime(date);
// Now, the calendar object has the date. 
// From now on, we use this calendar to extract date/time informations:
if (gc.isLeapYear(gc.get(Calendar.YEAR))) {
    System.out.println("Yeah, this year is a leap year.");
} else {
    System.out.println("No, it is a normal year.");
}
// DOW returns an int, that is encoded in the following constants:
switch(gc.get(Calendar.DAY_OF_WEEK)) {
    case Calendar.MONDAY: System.out.println("Monday!"); break;
    case Calendar.TUESDAY: System.out.println("Thuesday!"); break;
    case Calendar.WEDNESDAY: System.out.println("Wednesday!"); break;
    case Calendar.THURSDAY: System.out.println("Thor's day!"); break;
    case Calendar.FRIDAY: System.out.println("Friday!"); break;

    case Calendar.SATURDAY: System.out.println("Saturday!"); break;
    case Calendar.SUNDAY: System.out.println("Sunday!"); break;
}

Leap years

Leap year is what can be divided by 4, except that also can be divided by 100, except(!) that also can be divided by 400. Hence, 1800 is not a leap year, as it can be divided by 4 and 100, but not with 400. 2000 was a leap year, as it is divisible by 400.

share|improve this answer
    
My guide teach me upto basic class,objects and methods. And he give a task to get day of the given date, month and year as input and he told don't use inbuilt calendar api or packages. I know only loops, conditions (if, else), basic array, and basic class, objects and methods And finally i don't know these in so deep. Thank You.. –  Mani Beginner Jan 6 at 5:27
    
So you have to do this entirely by hand. –  Koshinae Jan 6 at 5:31
    
Yes. We have to do this entirely by our hand. Without using inbuilt api packages.. Thank You... –  Mani Beginner Jan 6 at 5:38

Based on previous info:

public class JavaApplication1 {

    public static void main(String[] args) {
        int y, sm, sd;
        int[] m = new int[12];
        m[0] = 31;
        m[1] = 28;
        m[2] = 31;
        m[3] = 30;
        m[4] = 31;
        m[5] = 30;
        m[6] = 31;
        m[7] = 31;
        m[8] = 30;
        m[9] = 31;
        m[10] = 30;
        m[11] = 31;
        //{31,28,31,30,31,30,31,31,30,31,30,31};

        String[] mo = new String[12];
        mo[0] = "January";
        mo[1] = "February";
        mo[2] = "March";
        mo[3] = "April";
        mo[4] = "May";
        mo[5] = "June";
        mo[6] = "July";
        mo[7] = "August";
        mo[8] = "September";
        mo[9] = "October";
        mo[10] = "November";
        mo[11] = "December";

        String[] we = new String[7];
        we[0] = "Sunday";
        we[1] = "Monday";
        we[2] = "Tuesday";
        we[3] = "Wednesday";
        we[4] = "Thursday";
        we[5] = "Friday";
        we[6] = "Saturday";

        Scanner ip = new Scanner(System.in);
        System.out.print("\nEnter year ");
        y = ip.nextInt();
        System.out.print("\nEnter month ");
        sm = ip.nextInt();
        System.out.print("\nEnter day ");
        sd = ip.nextInt();

        // Using the method Evgeniy Dorofeev kindly shared with us:
        if ((y % 4 == 0 && y % 100 != 0) || y % 400 == 0) {
            m[1] = m[1] + 1;
            System.out.print(y + " is a Leap Year. ");
        } else {
            System.out.print(y + " is an Ordinary year. ");
        }

        System.out.println(mo[sm - 1] + " month " + "has " + m[sm - 1] + " days");

        int dow = dayOfWeek(y, sm, sd);
        System.out.println("Day " + sd + " is a " + we[dow]);
    }

    //https://en.wikipedia.org/wiki/Determination_of_the_day_of_the_week#Implementation-dependent_methods_of_Sakamoto.2C_Lachman.2C_Keith_and_Craver
    public static int dayOfWeek(int y, int m, int d) {
        int t[] = {0, 3, 2, 5, 0, 3, 5, 1, 4, 6, 2, 4};
        y -= (m < 3 ? 1 : 0);
        return (y + y / 4 - y / 100 + y / 400 + t[m - 1] + d) % 7;
        // 0 is Sunday, 1 is monday, ...
    }
}
share|improve this answer
    
Thank You very Much... –  Mani Beginner Jan 6 at 6:40

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