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In javascript (underscore) , how do I test whether a list of numbers is already sorted or not?

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1  
what have you tried? – Esailija Jun 6 '12 at 13:18
    
@Esailija I am trying to implement a unit test like "should the array be sorted" – Lorraine Bernard Jun 7 '12 at 11:17
up vote 10 down vote accepted

You can use _.every to check whether all elements are in order:

_.every(arr, function(value, index, array) {
  // either it is the first element, or otherwise this element should 
  // not be smaller than the previous element.
  // spec requires string conversion
  return index === 0 || String(array[index - 1]) <= String(value);
});
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If there's a sort that can handler the NaN values, then its comparator could be used. – Pointy Jun 6 '12 at 13:24
    
@Pointy: I'm reading the specs and it appears that in case of NaN, its string representation is used. It's not just <= unfortunately. I'll edit. – pimvdb Jun 6 '12 at 13:30
    
It turned out not to be much more complicated in fact. – pimvdb Jun 6 '12 at 13:39

A simple solution would be to simply iterate over the list, examining whether each element is smaller than its next neighbor:

function is_sorted(arr) {
    var len = arr.length - 1;
    for(var i = 0; i < len; ++i) {
        if(arr[i] > arr[i+1]) {
            return false;
        }
    }
    return true;
}
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var last = undefined,
    sorted = true;
_.forEach(arr, function(val) {
    if(last !== undefined && val < last) sorted = false;
    last = val;
});
alert(sorted);
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I found this very helpful link.

/*
* check the array is sorted
* return: if sorted in ascending ->  1
*         if sorted in descending -> -1
*         not sorted  ->  0
*/

Array.prototype.isSorted = function() {
  return (function(direction) {
  return this.reduce(function(prev, next, i, arr) {
    if (direction === undefined)
      return (direction = prev <= next ? 1 : -1) || true;
    else
      return (direction + 1 ?
        (arr[i-1] <= next) : 
        (arr[i-1] >  next));
    }) ? Number(direction) : false;
  }).call(this);
}

var arr = [3,2,1,0];
arr.isSorted(); // Will return -1
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It would cost you probably almost as much as just sorting it again, it depends of the situation but sometimes you should just force the sort again.

you didn't say sorting according to what though.

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1  
No, a pass over the array to check whether it's sorted is just an O(n) operation. Sorting again is somewhat more expensive. – Pointy Jun 6 '12 at 13:23
    
Specifically O(n log n) unless someone has used the wrong algorithm. Whether that matters in a given case is a different question. – Justin Blank Jun 6 '12 at 13:27
    
+1 on this. If properly using the array's "sort" method sorting numerically is not very expensive. Of course, situations differ, but it is a point one should at least keep in mind and test for your implementation. – Jimbo Jonny Jun 6 '12 at 13:30
1  
Actually I am going to implement a unit test. So I need just to check if the array is sorted. – Lorraine Bernard Jun 7 '12 at 11:16

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