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I need more optimized javascript code to find 3 largest element in array. I have tried with this code.

var maxIndex = new Array();
var maxPoints = new Array();
var scoreByPattern = new Array(93,17,56,91,98,33,9,38,55,78,29,81,60);

function findLargest3(){ 

      maxPoints[0]=0;
      maxPoints[1]=0;
      maxPoints[2]=0;
    for(i=0;i < scoreByPattern.length; i++){        
        if( scoreByPattern[i] > maxPoints[0]){                               
             maxPoints[0] = scoreByPattern[i];
             maxIndex[0]=i;   
        }


    }

    for(i=0;i < scoreByPattern.length; i++){        
        if( scoreByPattern[i] > maxPoints[1] && scoreByPattern[i]< maxPoints[0] ){                               
             maxPoints[1] = scoreByPattern[i];
             maxIndex[1]=i;   
        }            
    }

    for(i=0;i < scoreByPattern.length; i++){        
        if( scoreByPattern[i] > maxPoints[2] && scoreByPattern[i]< maxPoints[1] ){                               
             maxPoints[2] = scoreByPattern[i];
             maxIndex[2]=i;   
        }            
    }

alert(scoreByPattern+"/******/"+maxPoints[0]+"/"+maxPoints[1]+"/"+maxPoints[2]);
//alert(maxIndex);
}

how to optimized the above ? (I need indexes of largest numbers)Is any other easy methods to solve the problem ?

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2  
sort and get three last elements of array –  CyberDem0n Aug 3 '12 at 8:36
7  
0% of accept rate won't really encourage people to answer... –  Fabrizio Calderan Aug 3 '12 at 8:38
    
On the topic of JavaScript optimization: Google I/O 2012 - Breaking the JavaScript Speed Limit: youtube.com/watch?v=UJPdhx5zTaw –  Lavabeams Aug 3 '12 at 8:41
    
The answer is simple for loop that updates the best 1,2 and 3. –  barak1412 Aug 3 '12 at 9:04
    
Hey Tilak, what's up now? Did you sove your Problem. Mind if you accept one of the answers? –  Christoph Aug 3 '12 at 10:13
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8 Answers

up vote 3 down vote accepted

Sort the array descending, then get the first three elements of it:

var maxPoints = new Array();
var scoreByPattern = new Array(93,17,56,91,98,33,9,38,55,78,29,81,60);

findLargest3();

function findLargest3(){
    // sort descending
    scoreByPattern.sort(function(a,b) {
        if (a < b) { return 1; }
        else if (a == b) { return 0; }
        else { return -1; }
    });

    alert(scoreByPattern+"/******/"+scoreByPattern[0]+"/"+scoreByPattern[1]+"/"+scoreByPattern[2]);
}

Example fiddle

share|improve this answer
    
I think sorting is bad here, you can do it in O(n). –  barak1412 Aug 3 '12 at 8:46
    
I guess that, if you sort by using a sort function, it will be slower then doing a normal built-in sort() followed by reverse(). If you specify a sorting function, you can as well do a forEach and just take the highest 3 values out. –  Wouter Huysentruit Aug 3 '12 at 8:50
    
You could indeed. Most ways of skinning this particular cat had already been put into this answer before I posted this method. Personally, I'd use yours @WouterH. –  Rory McCrossan Aug 3 '12 at 8:51
    
Considering the fact, that sorting the huge array might be very costly I'd prefer not to sort it first. Have a look at my solution. –  Christoph Aug 3 '12 at 9:02
add comment

Modified version

I have modified my answer to make it more generic. It searches for the indices of the n largest numbers of elements in the array:

var scoreByPattern = [93,255,17,56,91,98,33,9,38,55,78,29,81,60];

function findIndicesOfMax(inp, count) {
    var outp = [];
    for (var i = 0; i < inp.length; i++) {
        outp.push(i); // add index to output array
        if (outp.length > count) {
            outp.sort(function(a, b) { return inp[b] - inp[a]; }); // descending sort the output array
            outp.pop(); // remove the last index (index of smallest element in output array)
        }
    }
    return outp;
}

// show original array
console.log(scoreByPattern);

// get indices of 3 greatest elements
var indices = findIndicesOfMax(scoreByPattern, 3);
console.log(indices);

// show 3 greatest scores
for (var i = 0; i < indices.length; i++)
    console.log(scoreByPattern[indices[i]]);

Here is a jsFiddle

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2  
Can be slightly condensed as well jsfiddle.net/qS5Zr/1 +1 –  Fabrício Matté Aug 3 '12 at 8:45
    
Bad for huge array. I'd prefer a solution without sorting. –  Christoph Aug 3 '12 at 8:54
    
This only accidentally appears to work because all the largest numbers are lexicographically "largest" as well. See it break here: jsfiddle.net/qS5Zr/2 –  Esailija Aug 3 '12 at 8:59
    
@Christoph: fixed –  Wouter Huysentruit Aug 3 '12 at 10:57
    
@Esailija: fixed –  Wouter Huysentruit Aug 3 '12 at 10:57
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The default javascript sort callback won't work well because it sorts in a lexicographical order. 10 would become before 5(because of the 1)

No credit to me but:

my_array.sort(function(a,b) {
    return a-b;
});
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I need indexes of the largest elements . so cant sort the array . –  tilak Aug 3 '12 at 8:46
    
@SaniHuttunen [4,5,26,2,6,256].sort() //[2, 256, 26, 4, 5, 6]; Not expected imo.. –  Esailija Aug 3 '12 at 8:46
1  
@tilak if you need to preserve indexes, I think you should update your question whit this relevant detail –  Fabrizio Calderan Aug 3 '12 at 8:48
    
@Esailija, thanks for good looking edit. For the ones interested. Just type the comment code from Esailija in a browser console.(at least chrome shows the wrong order) –  René Geuze Aug 3 '12 at 8:53
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Assuming a fairly normal distribution, this should be fairly optimal:

var max_three, numbers = new Array(93,17,56,91,98,33,9,38,55,78,29,81,60);

max_three = (function (numbers) {
    var i, one, two, three;
    one = -9999;
    two = -9999;
    three = -9999;

    for (i = 0; i < numbers.length; i += 1) {
        num = numbers[i];
        if (num > three) {
            if (num >= two) {
                three = two;
                if (num >= one) {
                    two = one;
                    one = num;
                }
                else {
                    two = num;
                }
            }
            else {
                three = num;
            }
        }
    }

    return [one, two, three]

}(numbers))



document.write(max_three)​​​​​​​

98,93,91

share|improve this answer
    
If all the elements of the array are number that little than -9999, this algorithm won't work –  barak1412 Aug 3 '12 at 9:05
    
@barak: Just initialize one, two, three with the first value from numbers –  Wouter Huysentruit Aug 3 '12 at 9:07
    
@barak1412 that's correct although easy to fix. There is also no specification of what to do when the array.length is less than 3 –  robert king Aug 5 '12 at 20:35
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Why don't you just sort it and take the first (or last if sorted in ascending order) three elements.

var maxPoints = new Array();
var scoreByPattern = new Array(93,17,56,91,98,33,9,38,55,78,29,81,60);
scoreByPattern.sort();
maxPoints[0] = scoreByPattern[scoreByPattern.length - 1];
maxPoints[1] = scoreByPattern[scoreByPattern.length - 2];
maxPoints[2] = scoreByPattern[scoreByPattern.length - 3];

Edit
If you need the indeces of the largest arrays you can make a copy which you sort and then find the indices in the original array:

var scoreByPattern = new Array(93,17,56,91,98,33,9,38,55,78,29,81,60);

// Make a copy of the original array.
var maxPoints = scoreByPattern.slice();

// Sort in descending order.
maxPoints.sort(function(a, b) {
    if (a < b) { return 1; }
    else if (a == b) { return 0; }
    else { return -1; }

});

// Find the indices of the three largest elements in the original array.
var maxPointsIndices = new Array();
maxPointsIndices[0] = scoreByPattern.indexOf(maxPoints[0]);
maxPointsIndices[1] = scoreByPattern.indexOf(maxPoints[1]);
maxPointsIndices[2] = scoreByPattern.indexOf(maxPoints[2]);

Another approach to find the indices without sorting is this:

var scoreByPattern = new Array(93,17,56,91,98,33,9,38,55,78,29,81,60);
var maxIndices = new Array(Number.MIN_VALUE, Number.MIN_VALUE, Number.MIN_VALUE);

for (var i = 0; i < scoreByPattern.length; i++) {
  if (maxIndices[0] < scoreByPattern[i]) {
    maxIndices[2] = maxIndices[1];
    maxIndices[1] = maxIndices[0];
    maxIndices[0] = scoreByPattern[i];
  }
  else if (maxIndices[1] < scoreByPattern[i]) {
    maxIndices[2] = maxIndices[1];
    maxIndices[1] = scoreByPattern[i];
  }
  else if (maxIndices[2] < scoreByPattern[i]) maxIndices[2] = scoreByPattern[i];
}
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Without sorting the huge array: Runs in O(n) considering the large array. Returns an array of array with [x,y] where x is the value and y the index in the large array.

var ar = [3,172,56,91,98,33,9,38,55,78,291,81,60];

function getMax(ar){
    if (ar.length < 3) return ar;
    var max = [[ar[0],0],[ar[1],1],[ar[2],2]],
        i,j;

    for (i = 3;i<ar.length;i++){
        for (j = 0;j<max.length;j++){
            if (ar[i] > max[j][0]){
                max[j] = [ar[i],i];
                if (j<2){
                    max.sort(function(a,b) { return a[0]-b[0]; });
                }
               break;            
            }
        }
    }
    return max; 
}
result = getMax(ar);

console.log(result); alert(result);

check out the Example

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The best way is to use a combination of sort and slice:

This simple one liner will solve your problem.

[1, -5, 2, 8, 17, 0, -2].sort(function(a, b){return b - a}).slice(0, 3)

So if you have an array and want to find N biggest values:

arr.sort(function(a, b){return b - a}).slice(0, n)

And for N smallest values:

arr.sort(function(a, b){return a - b}).slice(0, n)
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http://jsfiddle.net/GGkSt/

var maxPoints = [];
var scoreByPattern = [93,17,56,91,98,33,9,38,55,78,29,81,60];

function cloneArray(array) {
    return array.map(function(i){ return i; });
}    
function max3(array) {
    return cloneArray(array).sort(function(a,b) { return b-a; }).slice(0,3);
}
function min3(array) {
     return cloneArray(array).sort(function(a,b) { return a-b; }).slice(0,3);
}

var array=scoreByPattern;
alert("Max:"+ max3(array)[0] +' '+max3(array)[1] +' '+max3(array)[2]);
alert("Min:"+ min3(array)[0] +' '+min3(array)[1] +' '+min3(array)[2]);
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