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I am aware that similar questions to this have been asked, but I have looked through these and am absolutly baffled as to a) how they work, and b) how I could adapt them to fit my purpose. I have therefore started a new question.

I have an array of only 4 indices, each index holds a number. My aim is to find the lowest value in this array and return the index of that lowest value. This has not been a problem...

The problem arises when the lowest value is repeated in more than one index.

In this case what I would like is to be able to first run a "count" on the array to find out if the lowest value is repeated, then if the count is >1 then do the following: find the indices of the repeated values, Finally I need to take the values of these indices and do a furthur calculation before finding the lowest value between them.

Example:

    array[ 12.44 , 10.33 , 17.45 , 10.33]
    //First I need a count to find the number of times the lowest value (10.33) occurs
    //Then I would like a function to return either a string containing 1,3 to 
    //represent the indices, or an array[ 1 , 3 

Once again I apologise if this question has been answered already but please could you explain the answer as I have tried repeatedly to understand he previous answers and can't make head way.

Why is it so complicated to find repeated values in an array using js?

Thanks in advance for your help, and time!

John

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3 Answers 3

up vote 0 down vote accepted
var arr = [12.44, 10.33, 17.45, 10.33],
    lowest = Math.min.apply(Math, arr), //.. 10.33
    index = $.map(arr, function(o,i) { if (o === lowest) return i; }), //.. [1,3]
    numOfTimes = index.length; //.. 2

explanation:

Math.min is a function. You can call any function and change the context of that function using function.call(context, param1, param2, paramEtc...) or function.apply(context, param[]).

Math.min doesn't allow us to pass in an array by calling Math.min(arr), since it is expecting a comma separated list of parameters; that is why we have that funny syntax Math.min.apply(Math, arr)

$.map() is just a convenient iterator, you could have used any method to get an array of indexes

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what is underscore.js? and will this return two indices? or just one? –  TranquilityEden Apr 27 '12 at 9:18
    
@TranquilityEden: i removed that comment, since the code using jquery is just at clean. Underscore.js is a VERY power little javascript library. If you work with js often, you should become familiar with it. –  rkw Apr 27 '12 at 9:23
    
ahh I think I understand. I will attempt to plug this into my code thankyou for your help! –  TranquilityEden Apr 27 '12 at 9:30

How about this way with pure JS?

var myArr = [12.44 , 10.33 , 17.45 , 10.33];  //Your array    
var lowest = Math.min.apply(Math, myArr);     //Find the lowest number
var count = 0;                                //Set a count variable
var indexes = [];              //New array to store indexes of lowest number

for(var i=0; i<myArr.length;i++) //Loop over your array
{
    if(myArr[i] == lowest) //If the value is equal to the lowest number
    {
       indexes.push(i); //Push the index to your index array
       count++;         //Increment your counter
    }
}
alert(count);           //2
alert(indexes);         //1, 3

and a working jsFiddle here

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Ok this I understand. Are they any advantages to using jquery for this task over javascript? This function will be called many upto 100 times every 1200 milisecs –  TranquilityEden Apr 27 '12 at 9:25
    
@TranquilityEden jQuery code is neater and more compact as you can see in rkws' implementation. I can't comment on performance (not experienced enough) but i can't see how there would be much difference in any case. (i'm sure someone will correct me on that). If you put this code into a re-usable function then that is a pretty good way of achieving what you want. –  Mark Walters Apr 27 '12 at 9:31

You could just create a filter, to filter out all duplicates and after that, run some magic on a temporarily array to get the desired number. For instance

var arr      = [ 12.44 , 10.33 , 17.45 , 10.33],
    filtered = [ ],
    lowest;

arr.forEach(function( value ) {
    if( filtered.indexOf( value ) === -1 )
        filtered.push( value );
});

lowest = Math.min.apply( null, filtered );  // 10.33
arr.indexOf( lowest ); // 1
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Thankyou for your responce! So am I right that you are going through the arr checking the index value against "value", then filling a new array called "filtered" with the repeated value? I am after the index, not the value of the the duplicate. I am sorry if I am being dim.... –  TranquilityEden Apr 27 '12 at 9:16
    
@TranquilityEden: yes basically I'm doing that. creating a new array which has no duplicates and then getting the index in the original array. Actually it would be more correct to get the index out of the filtered array, because some index may not be existent or wrong in the original array. –  jAndy Apr 27 '12 at 9:31

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