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Considering a sorted array arr

1- Simple case:

var arr = [3, 6, 12, 18];
indexesAround(6)
//> [1, 1]
indexesAround(7)
//> [1, 2]

2- More complex case:

var arr = [3, 3, 6, 6, 18, 18];
indexesAround(6)
//> [2, 3]
indexesAround(7)
//> [3, 4]

How would you implement(or pseudo code) a such indexesAround(value) function ?

--

Here is what I have for now, but I think this could be enhanced:

function indexesAround(val) {
  var lower = 0;
  var upper = lower;

  var el;
  for (var i = 0, len = arr.length; i < len; i++) {
    el = arr[i];

    if (el > val) {break;}
    if (arr[lower] < el) {lower = upper = i;}
    if (arr[upper] <= el) {upper = i;}
  }

  return [lower, upper];
}
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What happens in either case when your array contains triples and you send that number to the function? var arr = [3, 3, 6, 6, 6, 18, 18]; indexesAround(6); –  rrowland Oct 10 '12 at 23:07
    
@rrowland: [2, 4] –  abernier Oct 10 '12 at 23:08
    
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2 Answers

Considering the array is sorted:

function indexesAround(arr, val) {
  if (!~arr.indexOf(val)) return false; // not found
  var start = arr.indexOf(val);
  var end = (arr.length - 1) - arr.reverse().indexOf(val);
  arr.reverse(); // restore original order
  return [start, end];
}
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@alcidesqueiroz: you're right edited! –  elclanrs Oct 10 '12 at 23:40
    
You're right again... It was put quickly together but last edit should do it. Return false if not found. –  elclanrs Oct 10 '12 at 23:41
    
Oh I see now, let me see what I can do... My answer was posted before OP's question was edited so I didn't see the other requirements. –  elclanrs Oct 10 '12 at 23:48
    
indexesAround([3, 3, 6, 6, 6, 18], 7) is supposed to return [4, 5] not false ;) –  abernier Oct 10 '12 at 23:49
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This solution covers every possibility and works exactly to OP's specifications. Run it on jsfiddle.

Code

function indexesAround(target,array) {
    var start;
    var len = array.length;

    for(i = 0; i < len; i++) {
        if (array[i] == target && !start) { start = i; }
        if (array[i] > target) {
            if(i == 0) { return [ 0, 0 ]; }   // Target lower than array range
            if(!start) { return [ i-1, i ]; } // Target inside array range but not found
            return [ start, i-1 ];            // Target found
        }
    }

    if(start) { return [ len-1, len-1 ]; } // Target higher than array range
    return [ start, len-1 ];               // Target found and extends until end of array
}
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I think indexesAround(1) should return [0,1] –  Alcides Queiroz Aguiar Oct 10 '12 at 23:26
    
@alcidesqueiroz: true :) –  abernier Oct 10 '12 at 23:29
    
This function has been updated. It responds correctly to every possible sorted numeric array without throwing errors. –  rrowland Oct 10 '12 at 23:41
    
And updated again, shortened. Same functionality. –  rrowland Oct 10 '12 at 23:58
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