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Are there any functions (as part of a math library) which will calculate mean, median, mode and range from a set of numbers.

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1  
If it's a homework, the solution using any library might not be acceptable, I am afraid. –  Adeel Ansari Nov 16 '10 at 6:45

6 Answers 6

up vote 27 down vote accepted

Have look at Apache Commons Math. Here is the API docs. The classes of interest, Mean and Median.

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1  
Damn, beat me by a second ;) –  javamonkey79 Nov 16 '10 at 6:43
    
+1 of course... :) –  javamonkey79 Nov 16 '10 at 6:50
1  
Apache Commons Math apparently (according to docs) relies on a full sort to get the median. This is very inefficient for large datasets. If performance is an issue I recommend you search out a proper "selection algorithm" implementation. I'm looking for this in Java so will post back if I find it. –  Chinasaur Aug 24 '12 at 18:45
1  
Here's a good example of how it works: commons.apache.org/proper/commons-math/userguide/stat.html –  JackDev Sep 11 '13 at 5:24
2  
@Chinasaur, Apache Commons Math version 2.2+ uses a selection algorithm to find percentiles (including median). –  John Velonis Sep 17 '13 at 20:15

Yes, there does seem to be 3rd libraries (none in Java Math). Two that have come up are:

http://opsresearch.com/app/

http://www.iro.umontreal.ca/~simardr/ssj/indexe.html

but, it is actually not that difficult to write your own methods to calculate mean, median, mode and range.

MEAN

public static double mean(double[] m) {
    double sum = 0;
    for (int i = 0; i < m.length; i++) {
        sum += m[i];
    }
    return sum / m.length;
}

MEDIAN

// the array double[] m MUST BE SORTED
public static double median(double[] m) {
    int middle = m.length/2;
    if (m.length%2 == 1) {
        return m[middle];
    } else {
        return (m[middle-1] + m[middle]) / 2.0;
    }
}

MODE

public static int mode(int a[]) {
    int maxValue, maxCount;

    for (int i = 0; i < a.length; ++i) {
        int count = 0;
        for (int j = 0; j < a.length; ++j) {
            if (a[j] == a[i]) ++count;
        }
        if (count > maxCount) {
            maxCount = count;
            maxValue = a[i];
        }
    }

    return maxValue;
}

UPDATE

As has been (rather rudely) pointed out by Neelesh Salpe, the above does not cater for multi-modal collections. We can fix this quite easily:

public static List<Integer> mode(final int[] a) {
    final List<Integer> modes = new ArrayList<Integer>();
    final Map<Integer, Integer> countMap = new HashMap<Integer, Integer>();

    int max = -1;

    for (final int n : numbers) {
        int count = 0;

        if (countMap.containsKey(n)) {
            count = countMap.get(n) + 1;
        } else {
            count = 1;
        }

        countMap.put(n, count);

        if (count > max) {
            max = count;
        }
    }

    for (final Map.Entry<Integer, Integer> tuple : countMap.entrySet()) {
        if (tuple.getValue() == max) {
            modes.add(tuple.getKey());
        }
    }

    return modes;
}
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thanks, but I would prefer to use something out of the box if possible –  user339108 Nov 16 '10 at 6:47
    
@Stephen C. Sorry about that, I updated the link again. –  Nico Huysamen Nov 16 '10 at 6:57
    
This class will have issues if you have a very large array or have to calculate values on the fly. It can be written without an array for mean and standard deviation; not as certain for median and mode. –  duffymo Nov 16 '10 at 10:30
1  
As mentioned in my comment on Adeel's answer, sorting the whole array to get the median is pretty inefficient. –  Chinasaur Aug 24 '12 at 18:47
    
@NeeleshSalpe - Thanks for pointing that out. Updated my answer. –  Nico Huysamen Jan 7 at 12:34

Check out commons math from apache. There is quite a lot there.

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You should receive an upvote, whatsoever ;). +1 –  Adeel Ansari Nov 16 '10 at 6:49
    
See comment on Adeel's answer: Apache Commons Math appears to use a pretty inefficient median algorithm. –  Chinasaur Aug 24 '12 at 18:47

The MODE algorithm is not considering cases with more than one mode (bimodal, trimodal, ...) - it happens when there is more than one number appearing in the same number of times as maxCount. Considering this, it should return an array instead of a single int value.

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I´m a java programming noob. Based on your question I just made a method that can organize an array from smallest to biggest, give you the median, the mode and the mean.

The parameter String MUST be like this "2,33,4,2,3,4,5,2,22,1". This gives you the advantage of have a quick application and you just have to imput this line that allows you to see everything you write in the JOptionPane.showInput....

from the main class you can improve your little application so if you make a mistake it won´t send an Exception and erase all your numbers, but to tell you "Hey, there´s a mistake" and keep the text you wrote....

It is a bit better than the upper(or lower) comment, because the MODE can vary this way:

2,2,2,3,3 Mode= 2; ... 2,2,3,3,4 Mode= 2,3; ... 2,2,3,3,4,4 Mode = No existing mode.

I´m noob. This is why the code is so big. With time I´ll improve, but the code works fine!

public String calcularEnOrden2(String numeros){
        int contadorModa =0;
        ArrayList<String> enteros = new ArrayList<String>();
        int repetidoAlmacenado=0;
        String[] numbers0 = numeros.split(",");
        int[] numbers = new int[numbers0.length];
        for(int x=0; x<numbers.length;x++){
            numbers[x]= Integer.parseInt(numbers0[x]);
        }
        int[] numbersP = new int[numbers.length];
        for(int i=0; i<numbers.length;i++){
            int repetidos =0;
            int mayor = 0;
            for(int j=0; j<numbersP.length;j++){
                if(numbers[i] == (numbers[j])){
                    repetidos++;
                }
                if(numbers[i]>numbers[j]){
                    mayor++;
                }
            }
            int contador = repetidos;
            if(repetidoAlmacenado<repetidos){
                if(repetidoAlmacenado!=0){
                    enteros.clear();
                    enteros.add(numbers[i]+"");
            }
                repetidoAlmacenado = repetidos;
            }
            else if(repetidoAlmacenado == repetidos){
                 boolean verdad = true;
                 contadorModa++;
                for(int y=0; y<enteros.size();y++){
                    if(Integer.parseInt(enteros.get(y)) == numbers[i]){
                        verdad = false;
                    }
            }
                if(verdad){
                    enteros.add(numbers[i]+"");
                }
            }
            for(int m=mayor; m<numbers.length;m++){
                if(contador != 0){
                    numbersP[m] = numbers[i];
                    contador--;
                }
            }
        }
        int length = numbersP.length;
        double dos = 2.0;
        double mediana=0;
        double contador = numbersP.length;
        double bruto = 0;
        String respuesta= "";
        for(int h=0; h<numbersP.length;h++){
            respuesta = respuesta + " " + numbersP[h];
            bruto = bruto + numbersP[h];
        }
        if(numbersP.length%2 !=0){
            Double mediana0 = ((numbersP.length/2) - 0.5);
            mediana = numbersP[mediana0.intValue()];
        }
        else{
            mediana = ((numbersP[length/2] + numbersP[(length/2)-1])/dos);
        }
        String modas="";
        if(contadorModa == numbers.length-1){
            modas ="No hay moda.";
        }
        else{
        for(int l=0;l<enteros.size();l++){
            if(l==0){
                modas =enteros.get(l);
            }
            else{
                modas = modas + ", " + enteros.get(l);              
            }
        }
        }
        double neto = bruto/contador;
        String final2 = "Menor a Mayor: \n"+ 
                        respuesta+"\n"+
                        "Promedio: \n"
                        +neto+"\n"+
                        "Mediana:\n"+
                        +mediana+"\n"+
                        "Moda: \n"
                        +modas+"";
        return final2;
    }
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public class Mode {

public static void main(String[] args) {

    int[] unsortedArr = new int[] { 3, 1, 5, 2, 4, 1, 3, 4, 3, 2, 1, 3, 4,
            1 ,-1,-1,-1,-1,-1};
    Map<Integer, Integer> countMap = new HashMap<Integer, Integer>();

    for (int i = 0; i < unsortedArr.length; i++) {

        Integer value = countMap.get(unsortedArr[i]);

        if (value == null) {

            countMap.put(unsortedArr[i], 0);

        } else {

            int intval = value.intValue();
            intval++;

            countMap.put(unsortedArr[i], intval);

        }

    }

    System.out.println(countMap.toString());

    int max = getMaxFreq(countMap.values());

    List<Integer> modes = new ArrayList<Integer>();

    for (Entry<Integer, Integer> entry : countMap.entrySet()) {
        int value = entry.getValue();

        if (value == max) {
            modes.add(entry.getKey());
        }
    }

    System.out.println(modes);
}

public static int getMaxFreq(Collection<Integer> valueSet) {

    int max = 0;
    boolean setFirstTime = false;

    for (Iterator iterator = valueSet.iterator(); iterator.hasNext();) {
        Integer integer = (Integer) iterator.next();

        if (!setFirstTime) {

            max = integer;
            setFirstTime = true;

        }
        if (max < integer) {

            max = integer;
        }

    }

    return max;

}

}

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Test data Modes {1,3} for { 3, 1, 5, 2, 4, 1, 3, 4, 3, 2, 1, 3, 4, 1 }; Modes {-1} for { 3, 1, 5, 2, 4, 1, 3, 4, 3, 2, 1, 3, 4, 1 ,-1,-1,-1,-1,-1}; –  Neelesh Salpe Dec 21 '13 at 14:50

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