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I need to find the lowest value in an array, but I want to know how to handle multiple results. Say my array contains [1,4,7,5,3,1] - my result should be 1,1. Any ideas?

double minimum = array1[0]; //sets the first to be the smallest
for (int i = 0; i < array1.length; i++) //goes through your array
{
 if (array1[i] < array1[0]) //checks and replaces if necessary
 {
    minimum = array[i];   

 }
}

System.out.println( minimum ); //returns the value of the smallest
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1  
How about you keep a counter for how many occurrences of that minimum you've seen? Also, be aware that directly comparing double values for equality is rarely a good idea. You might want some kind of tolerance level. Do you actually need to use double rather than int? – Jon Skeet Sep 17 '13 at 6:08
    
Sort the array; iterate from the beginning until the value of your current element is the same as the previous value. – Maggie Sep 17 '13 at 6:09
    
Say I needed to get the index of the minimum values though? Rather than just counting the the amount of lowest values I want to store their indexes in an array? – tattykeeran Sep 17 '13 at 18:14
up vote 1 down vote accepted

you have a small mistake in your code, you should have compare the current value to the minimum and not to the first value

double minimum = array1[0]; //sets the first to be the smallest
var minValueCounter = 0;
for (int i = 0; i < array1.length; i++) //goes through your array
{
 if (array1[i] < minimum) //checks and replaces if necessary
 {
    minimum = array[i];  
    minValueCounter  = 1; 

 }
 else if (array1[i] == minimum) //checks and replaces if necessary
 {
    minValueCounter++;

 }
}
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Arrays.sort(array1);
ArrayList<Integer> smallestValues = new ArrayList<Integer>();
smallestValues.add(array1[0]);
int i=1;
while (i<array1.length && (array1[i] == array1[i-1])) {
     smallestValues.add(array1[i]);
    i++;
 }
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Keep another variable to count duplicates. If you find values that are equal to the current minimum value, increment this count. Remember to reset the count everytime the minimum changes.

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One thing can be "Sort" your array in ascending order & then display values from the start till they are equal

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I would do it this way

    int[] a = { 1, 4, 7, 5, 3, 1 };
    Arrays.sort(a);
    int n = 1;
    for (int i = 1; i < a.length && a[i] == a[0]; i++)
        n++;
    int[] res = Arrays.copyOf(a, n);
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How about using Collections.sort()

i am assuming your array1[] is of double type

double array1[] = new double[] { 1, 4, 7, 5, 3, 1 };
ArrayList<Double> al = new ArrayList<Double>();
for (int i = 0; i < array1.length; i++)
    al.add(array1[i]);
Collections.sort(al);
System.out.println(al.toString());

Output:

[1.0, 1.0, 3.0, 4.0, 5.0, 7.0]

To Print All Equal Smallest Values use

for (int i = 0; i < (al.size() - 1); i++) { // why (al.size() - 1), Its better if try to learn yourself
    if (Double.compare(al.get(i), al.get(i+1))==0)
       System.out.print(""+al.get(i) + "," + al.get(i + 1));
    else
       break;
}

Output:

1.0,1.0
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Just for the fun of it, a solution without for loop:

    Integer[] inputA = new Integer[]{1,4,7,5,3,1};
    List<Integer> inputL = Arrays.asList(inputA);        

    Collections.sort(inputL);

    int last = Collections.frequency(inputL, Collections.min(inputL));

    inputA = Arrays.copyOfRange(inputL.toArray(new Integer[inputL.size()]), 0, last);

    System.out.println(Arrays.deepToString(inputA));

outputs:

   [1, 1]

relevant methods apidoc (all static):

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