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I am looking to find an index against a certain value in a Java array of type int.

How can I do this? Can I apply the binarySearch method to a non sorted array?

Below is what I tried, but some times it gives correct answer but most of the time incorrect. What am I doing wrong?

Arrays.binarySearch(array, value);

share|improve this question
5  
Binary search will never work on an unsorted array. – Chris May 30 '11 at 1:57
    
Then can you suggest me something, how should i do it. Because if i sort the array, i loose track of indexes, and i need to know which index the value came from?? – Jeomark May 30 '11 at 1:59
    
EDIT: i forgot to add, i need to find array index for double values as well. – Jeomark May 30 '11 at 2:10
    
If you don't want to sort the array, just use a simple for loop to find the value. – Jamie Curtis May 30 '11 at 2:11
    
It is generally good to read documentation of functions :) From binarySearch: "Searches the specified array of ... for the specified value using the binary search algorithm. The array must be sorted (as by the sort(long[]) method) prior to making this call. If it is not sorted, the results are undefined. ..." – user166390 May 30 '11 at 2:12
Integer[] array = {1,2,3,4,5,6};

Arrays.asList(array).indexOf(4);

Note that this solution is threadsafe because it creates a new object of type List.

Also you don't want to invoke this in a loop or something like that since you would be creating a new object every time

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Thanks but would it work for type double? Sorry i forgot to mention in the question, but i need to work this for double values as well. It works fine with ints though. – Jeomark May 30 '11 at 2:09
    
Yes it would, you don't have to change anything (but the array type obviously) – Pablo Fernandez May 30 '11 at 2:32
31  
Actually the code doesn't work. Check Why is indexOf failing to find the object? – teloon Nov 4 '12 at 11:45
6  
You need to convert array to Integer[] instead of int[]. primitive arrays are not autoboxed. – Leon Helmsley Oct 9 '13 at 8:10

Another option if you are using Guava Collections is Ints.indexOf

// Perfect storm:
final int needle = 42;
final int[] haystack = [1, 2, 3, 42];

// Spoiler alert: index == 3
final int index = Ints.indexOf(haystack, needle);

This is a great choice when space, time and code reuse are at a premium. It is also very terse.

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Thanks for the down vote. Awesome since your feedback is so constructive. – btiernay Feb 21 '13 at 2:05
    
Thanks for the re-up vote random dude(tte)! – btiernay May 2 '13 at 0:43

A look at the API and it says you have to sort the array first

So:

Arrays.sort(array);
Arrays.binarySearch(array, value);

If you don't want to sort the array:

public int find(double[] array, double value) {
    for(int i=0; i<array.length; i++) 
         if(array[i] == value)
             return i;
}
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4  
+1 However it should be noted that Arrays.sort mutates the input and the original array will be modified. – user166390 May 30 '11 at 2:08
    
thank you, the 2nd method somehow worked me after adding some logic for duplicate values with different indexes. – Jeomark May 30 '11 at 3:33

Copy this method into your class

 public int getArrayIndex(int[] arr,int value) {

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

            if(arr[i]==value){
                k=i;
                break;
            }
        }
    return k;
}

Call this method with pass two perameters Array and value and store its return value in a integer variable.

int indexNum = getArrayIndex(array,value);

Thank you

share|improve this answer

You need to sort values before using binary search. Otherwise, the manual way is to try all ints in your tab.

public int getIndexOf( int toSearch, int[] tab )
{
  for( int i=0; i< tab.length ; i ++ )
    if( tab[ i ] == toSearch)
     return i;

  return -1;
}//met

An alternative method could be to map all index for each value in a map.

tab[ index ] = value;
if( map.get( value) == null || map.get( value) > index )
    map.put( value, index );

and then map.get(value) to get the index.

Regards, Stéphane

@pst, thanks for your comments. Can you post an other alternative method ?

share|improve this answer
    
This is one way, yes. However it is not the only way. The use of the boolean variable found here is useless (and not used) and should be removed. A +1 for showing "the manual loop method" though (stylistic and formatting issues aside). – user166390 May 30 '11 at 2:13

You can either walk through the array until you find the index you're looking for, or use a List instead. Note that you can transform the array into a list with asList().

share|improve this answer
/**
     * Method to get the index of the given item from the list
     * @param stringArray
     * @param name
     * @return index of the item if item exists else return -1
     */
    public static int getIndexOfItemInArray(String[] stringArray, String name) {
        if (stringArray != null && stringArray.length > 0) {
            ArrayList<String> list = new ArrayList<String>(Arrays.asList(stringArray));
            int index = list.indexOf(name);
            list.clear();
            return index;
        }
        return -1;
    }
share|improve this answer
    
The clear and the new ArrayList are unnecessary operations. Allocating a new ArrayList copies the whole array, which is pointless, because Arrays.asList already returns a List which has an indexOf method. Clearing the copy of the list is unnecessary, GC will take it away anyway. – TWiStErRob Nov 19 '15 at 16:42

You can do it like this:

 public class Test {

public static int Tab[]  = {33,44,55,66,7,88,44,11,23,45,32,12,95};
public static int search = 23;

public static void main(String[] args) {
    long stop = 0;
    long time = 0;
    long start = 0;
    start = System.nanoTime();
    int index = getIndexOf(search,Tab);
    stop = System.nanoTime();
    time = stop - start;
    System.out.println("equal to took in nano seconds ="+time);
    System.out.println("Index  of searched value is: "+index);
    System.out.println("De value of Tab with searched index is: "+Tab[index]);
    System.out.println("==========================================================");
    start = System.nanoTime();
    int Bindex = bitSearch(search,Tab);
    stop = System.nanoTime();
    time = stop - start;
    System.out.println("Binary search took nano seconds ="+time);
    System.out.println("Index  of searched value is: "+Bindex);
    System.out.println("De value of Tab with searched index is: "+Tab[Bindex]);
}



public static int getIndexOf( int toSearch, int[] tab ){
     int i = 0;
     while(!(tab[i] == toSearch) )
     {  i++; }
       return i; // or return tab[i];
   }
public static int bitSearch(int toSearch, int[] tab){
    int i = 0;
    for(;(toSearch^tab[i])!=0;i++){
    }
    return i;

}

}

Added a XOR :)

share|improve this answer
    
tab.equals(toSearch) is comparing an array with an int. Maybe tab[i] == toSearch instead. – Mike Samuel Nov 25 '13 at 16:27
    
This works thanks Mike... Google for binary search, some nice articles out there and its an interesting method – Andre Nov 25 '13 at 18:32
    
@Andre if you're trying to prove a point give them a level playing field (same order, same control flow): while (tab[i] != toSearch) i++; VS while ((tab[i] ^ toSearch) != 0) i++;. – TWiStErRob Dec 6 '15 at 16:53
    
In any case the this way of timing doesn't work, for me bitSearch is always faster than getIndexOf; while if I simply swap the calls to the two methods getIndexOf gets faster than bitSearch. This clearly demonstrates that the second one is always faster for some reason of JVM internals. You should be repeating the experiment many times (probably millions), averaging the values, discarding extreme values and doing a warmup that is very similar to the test. – TWiStErRob Dec 6 '15 at 16:55

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