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Example: I have an array like this: [0,22,56,74,89] and I want to find the closest number downward to a different number. Let's say that the number is 72, and in this case, the closest number down in the array is 56, so we return that. If the number is 100, then it's bigger than the biggest number in the array, so we return the biggest number. If the number is 22, then it's an exact match, just return that. The given number can never go under 0, and the array is always sorted.

I did see this question but it returns the closest number to whichever is closer either upward or downward. I must have the closest one downward returned, no matter what.

How do I start? What logic should I use?

Preferably without too much looping, since my code is run every second, and it's CPU intensive enough already.

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And the array is always sorted? –  Bergi Mar 4 '13 at 14:39
    
@Bergi Yes it is, edited question to reflect that. –  DJDavid98 Mar 4 '13 at 14:40

6 Answers 6

up vote 4 down vote accepted

You can use a binary search for that value. Adapted from this answer:

function index(arr, compare) { // binary search, with custom compare function
    var l = 0,
        r = arr.length - 1;
    while (l <= r) {
        var m = l + ((r - l) >> 1);
        var comp = compare(arr[m]);
        if (comp < 0) // arr[m] comes before the element
            l = m + 1;
        else if (comp > 0) // arr[m] comes after the element
            r = m - 1;
        else // arr[m] equals the element
            return m;
    }
    return l-1; // return the index of the next left item
                // usually you would just return -1 in case nothing is found
}
var arr = [0,22,56,74,89];
var i=index(arr, function(x){return x-72;}); // compare against 72
console.log(arr[i]);

Btw: Here is a quick performance test (adapting the one from @Simon) which clearly shows the advantages of binary search.

share|improve this answer
    
A binary search would be the best you could do. It would return your value in O(log n) although seeing as you didn't realize .grep is a loop in and of itself and that this problem can't be done without a loop of some sort then it is easy to see why you didn't realize this. –  spartacus Mar 4 '13 at 15:46
    
Wow, even faster? Thanks! In this case performance matters a lot to me so the shorter it takes to run is better :) –  DJDavid98 Mar 4 '13 at 21:01
    
@DJDavid98: Of course, since it's O(log n) :-) Yet you might notice the effect only for big arrays, the one in the test has 1000 items. –  Bergi Mar 5 '13 at 13:25
    
Nice solution :), but note that the binary search is faster as the array gets bigger (in your case size of 1000 random numbers), while a straight forward loop is better with smaller arrays like 10 or 20. See jsperf.com/test-a-closest-number-function/4. So the OP should evaluate which loop to take for his case. –  Simon Mar 6 '13 at 7:48
    
Btw: should give aquinas some credit for he's already given the binary search solution and I think extending the prototype is a pretty good idea ;). –  Simon Mar 6 '13 at 9:14
var theArray = [0,22,56,74,89];
var goal = 56;
var closest = null;

$.each(theArray, function(){
  if (this <= goal && (closest == null || (goal - this) < (goal - closest))) {
    closest = this;
  }
});
alert(closest);

jsFiddle http://jsfiddle.net/UCUJY/1/

share|improve this answer
Array.prototype.getClosestDown = function(find) {            
    function getMedian(low, high) {
       return (low + ((high - low) >> 1));
    }

    var low = 0, high = this.length - 1, i;  

    while (low <= high) {
     i = getMedian(low,high);
     if (this[i] == find) { 
         return this[i]; 
     }        
     if (this[i] > find)  { 
         high = i - 1;
     }
     else  { 
         low = i + 1;
     }
  }  
  return this[Math.max(0, low-1)];
}

alert([0,22,56,74,89].getClosestDown(75));
share|improve this answer

Here's a solution without jQuery for more effiency. Works if the array is always sorted, which can easily be covered anyway:

var test = 72,
    arr = [0,56,22,89,74].sort(); // just sort it generally if not sure about input, not really time consuming

function getClosestDown(test, arr) {
  var num = result = 0;

  for(var i = 0; i < arr.length; i++) {
    num = arr[i];
    if(num <= test) { result = num; }
  }

  return result;
}

Logic: Start from the smallest number and just set result as long as the current number is smaller than or equal the testing unit.

Note: Just made a little performance test out of curiosity :). Trimmed my code down to the essential part without declaring a function.

share|improve this answer
    
See this improved test :-) –  Bergi Mar 4 '13 at 17:49

As we know the array is sorted, I'd push everything that asserts as less than our given value into a temporary array then return a pop of that.

var getClosest = function (num, array) {
    var temp = [],
        count = 0,
        length = a.length;

    for (count; count < length; count += 1) {

        if (a[count] <= num) {
            temp.push(a[count]);
        } else {
            break;
        } 
    }

    return temp.pop();
}

getClosest(23, [0,22,56,74,89]);
share|improve this answer
    
If you only care about the last value, why don't you just have a variable that holds that value? i.e., instead of temp.push(a[count]); just do: currVal = a[count]; then return currVal;. –  aquinas Mar 6 '13 at 13:56

Here is edited from @Simon. it compare closest number before and after it.

var test = 24,
arr = [76,56,22,89,74].sort(); // just sort it generally if not sure about input, not really time consuming

function getClosest(test, arr) {
  var num = result = 0;
  var flag = 0;
  for(var i = 0; i < arr.length; i++) {
    num = arr[i];
    if(num < test) {
      result = num;
      flag = 1;
    }else if (num == test) {
      result = num;
      break;
    }else if (flag == 1) {
      if ((num - test) < (Math.abs(arr[i-1] - test))){
        result = num;
      }
      break;
    }else{
      break;
    }
  }
  return result;
}
share|improve this answer

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