2

I'm trying to build a method that would get 4 numbers and returns the maximum number of them.

I tried to write this code that gets 4 numbers but this not working:

Input and output:

double a = Math.max(10, 5, 4, 3);
    System.out.println(a);

public static int max(int a, int b, int c, int d) {
    if (a > b && a > c && a > d)
        return a;
    if (b > a && b > c && b > d)
        return b;
    if (c > a && c > b && c > d)
        return c;
    if (d > b && d > c && d > a)
        return d;
}
  • 4
    use Math.max(Math.max(Math.max(a,b),Math.max(c,d))) – Madhawa Priyashantha Dec 4 '14 at 11:40
  • you can use an int[] instead of 4 ints also – Eypros Dec 4 '14 at 11:42
  • What if two elements are both greatest? I suppose that max(2, 3, 4, 4) should be 4, but how would your code be supposed to get to that result? – Ole V.V. Dec 24 '16 at 8:11
  • Please (have you been told this before?) be more specific. “Not working” is not a problem description. You need to tell us exactly what your code does that differs from the desired. You also need to quote any error messages exactly. – Ole V.V. Dec 24 '16 at 8:12

10 Answers 10

14

I would simplify this by introducing a variable max:

public static int max(int a, int b, int c, int d) {

    int max = a;

    if (b > max)
        max = b;
    if (c > max)
        max = c;
    if (d > max)
        max = d;

     return max;
}

You could also use Math.max, as suggested by fast snail, but since this seems to be homework, I would prefer the algorithmic solution.

Math.max(Math.max(a,b),Math.max(c,d))
  • 1
    Patrick, I had expected you to be too experienced on Stackoverflow to solve people’s homework assignments for them. :-) – Ole V.V. Dec 24 '16 at 8:15
5

Try Math.max like below:

return Math.max(Math.max(a, b), Math.max(c, d));
1

You could always use a method like this which will work as you wanted for any number of integers:

public static Integer max(Integer... vals) {
    return new TreeSet<>(Arrays.asList(vals)).last();
}

Call, for example, as:

System.out.println(max(10, 5, 17, 4, 3));
0
if (c > a && c > b && c > d)
    return d;

here you are returning d instead of c.

  • Add more description so that other can understand – Yagnesh Agola Dec 4 '14 at 12:30
0

One more way to do it...

public static int max(int a, int b, int c, int d) {
    if (a > b && a > c && a > d)
        return a;
    if (b > c && b > d)
        return b;
    if (c > d)
        return c;
    return d;
}
0
public static Integer max(Integer... values)
{
     Integer maxValue = null
     for(Integer value : values)
         if(maxValue == null || maxValue < value)
              maxValue = value;
     return maxValue;
}
  • 1
    This trumps other suggestions for (a) handling any number of values and (b) accepting an array of values as input too, makes this far more flexible than a method accepting exactly four integers. – robjohncox Dec 4 '14 at 12:08
  • 1
    What about memory performance? Unnecessary varargs array creation and unnecessary boxing. Neither what the OP asked. – TWiStErRob Dec 3 '15 at 19:01
0
public static int max(int a, int b, int c, int d){
        return (a>b && a>c && a>d? a: b>c && b>d? b: c>d? c:d);
    }
0
public static int max(int a, int b, int c, int d) {

   int tmp1 = a > b ? a : b;
   int tmp2 = c > d ? c : d;

   return tmp1 > tmp2 ? tmp1 : tmp2;
}
0
public static int max(Integer... vals) {
    return Collections.max(Arrays.asList(vals));
}
0
private int max(int... p)
{
    int max = 0;
    for (int i : p) {
        max = i > max ? i : max; 
    }
    return max;

}

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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