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In javascript how to convert sequence of numbers in an array to range of numbers?

eg. [2,3,4,5,10,18,19,20] to [2-5,10,18-20]

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How are you determining where a range begins and ends? –  Jonathan Sampson Feb 16 '10 at 5:45
4  
@gokul: I edited your question (removed example from title, formatted body). You can motivate people to help by formatting your question properly. –  Peter Lang Feb 16 '10 at 5:45

14 Answers 14

Here is an algorithm that I made some time ago, originally written for C#, now I ported it to JavaScript:

function getRanges(array) {
  var ranges = [], rstart, rend;
  for (var i = 0; i < array.length; i++) {
    rstart = array[i];
    rend = rstart;
    while (array[i + 1] - array[i] == 1) {
      rend = array[i + 1]; // increment the index if the numbers sequential
      i++;
    }
    ranges.push(rstart == rend ? rstart+'' : rstart + '-' + rend);
  }
  return ranges;
}

getRanges([2,3,4,5,10,18,19,20]);
// returns ["2-5", "10", "18-20"]
getRanges([1,2,3,5,7,9,10,11,12,14 ]);
// returns ["1-3", "5", "7", "9-12", "14"]
getRanges([1,2,3,4,5,6,7,8,9,10])
// returns ["1-10"]
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5  
would suggest sorting the values first, so you can deal with mixed values like: [1,3,2,6,5,7] –  Tracker1 Feb 16 '10 at 7:57

I found this answer useful, but needed a Python version:

def GroupRanges(items):
  """Yields 2-tuples of (start, end) ranges from a sequence of numbers.

  Args:
    items: an iterable of numbers, sorted ascendingly and without duplicates.

  Yields:
    2-tuples of (start, end) ranges.  start and end will be the same
    for ranges of 1 number
  """
  myiter = iter(items)
  start = myiter.next()
  end = start
  for num in myiter:
    if num == end + 1:
      end = num
    else:
      yield (start, end)
      start = num
      end = num
  yield (start, end)


numbers = [1, 2, 3, 5, 6, 7, 8, 9, 10, 20]
assert [(1, 3), (5, 10), (20, 20)] == list(GroupRanges(numbers))
assert [(1, 1)] == list(GroupRanges([1]))
assert [(1, 10)] == list(GroupRanges([1, 2, 3, 4, 5, 6, 7, 8, 9, 10]))
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Just having fun with solution from CMS :

  function getRanges (array) {
    for (var ranges = [], rend, i = 0; i < array.length;) {
      ranges.push ((rend = array[i]) + ((function (rstart) {
        while (++rend === array[++i]);
        return --rend === rstart;
      })(rend) ? '' : '-' + rend)); 
    }
    return ranges;
  }
share|improve this answer
    
++ for the trick while loop. btw, this is equiv. function getRanges(c){for(var b=[],a,d=0;d<c.length;)b.push((a=c[d])+(function(b){for(;++a===c[++d];);return--‌​a===b}(a)?"":"-"+a));return b}; (google closure compiler) –  Orwellophile Jan 12 at 3:01

Here is a version for Perl:

use strict;
use warnings;

my @numbers = (0,1,3,3,3,4,4,7,8,9,12, 14, 15, 19, 35, 35, 37, 38, 38, 39);
@numbers =  sort {$a <=> $b} @numbers ; # Make sure array is sorted.

# Add "infinity" to the end of the array.
$numbers[1+$#numbers] = undef ;

my @ranges = () ; # An array where the range strings are stored.

my $start_number = undef ;
my $last_number  = undef ;
foreach my $current_number (@numbers)
{
  if (!defined($start_number))
  {
    $start_number = $current_number ;
    $last_number  = $current_number ;
  }
  else
  {
    if (defined($current_number) && (($last_number + 1) >= $current_number))
    {
      $last_number = $current_number ;
      next ;
    }
    else
    {
      if ($start_number == $last_number)
      {
        push(@ranges, $start_number) ;
      } 
      else
      {
        push(@ranges, "$start_number-$last_number") ;
      }
      $start_number = $current_number ;
      $last_number  = $current_number ;
    }
  }
}

# Print the results
print join(", ", @ranges) . "\n" ; 
# Returns "0-1, 3-4, 7-9, 12, 14-15, 19, 35, 37-39"
share|improve this answer
    
A shorter answer from PerlMonks: http://www.perlmonks.org/?node_id=87538 –  Roy Tinker Sep 9 '11 at 20:27

I was just looking for this exact thing. I needed a PHP version so ported CMS's solution. Here it is, for anyone who stops by this question looking for the same thing:

function getRanges( $nums )
{
    $ranges = array();

    for ( $i = 0, $len = count($nums); $i < $len; $i++ )
    {
        $rStart = $nums[$i];
        $rEnd = $rStart;
        while ( isset($nums[$i+1]) && $nums[$i+1]-$nums[$i] == 1 )
            $rEnd = $nums[++$i];

        $ranges[] = $rStart == $rEnd ? $rStart : $rStart.'-'.$rEnd;
    }

    return $ranges;
}
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In C#

    public string compressNumberRange(string inputSeq)
    {
        //Convert String array to long List and removing the duplicates
        List<long> longList = inputSeq.Split(',').ToList().ConvertAll<long>(s => Convert.ToInt64(s)).Distinct().ToList();

        //Sort the array
        longList.Sort();

        StringBuilder builder = new StringBuilder();


        for (int itr = 0; itr < longList.Count(); itr++)
        {
            long first = longList[itr];
            long end = first;

            while (longList[itr + 1] - longList[itr] == 1) //Seq check 
            {
                end = longList[itr + 1];
                itr++;
                if (itr == longList.Count() - 1)
                    break;
            }
            if (first == end) //not seq
                builder.Append(first.ToString() + ",");
            else //seq
                builder.Append(first.ToString() + "-" + end.ToString() + ",");
        }

        return builder.ToString();
    }
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If you simply want a string that represents a range, then you'd find the mid-point of your sequence, and that becomes your middle value (10 in your example). You'd then grab the first item in the sequence, and the item that immediately preceded your mid-point, and build your first-sequence representation. You'd follow the same procedure to get your last item, and the item that immediately follows your mid-point, and build your last-sequence representation.

// Provide initial sequence
var sequence = [1,2,3,4,5,6,7,8,9,10];
// Find midpoint
var midpoint = Math.ceil(sequence.length/2);
// Build first sequence from midpoint
var firstSequence = sequence[0] + "-" + sequence[midpoint-2];
// Build second sequence from midpoint
var lastSequence  = sequence[midpoint] + "-" + sequence[sequence.length-1];
// Place all new in array
var newArray = [firstSequence,midpoint,lastSequence];

alert(newArray.join(",")); // 1-4,5,6-10

Demo Online: http://jsbin.com/uvahi/edit

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1  
Wouldn't the output be 1-10, since the numbers 1-10 appear in sequence with none missing? –  Nick Presta Feb 16 '10 at 7:53

You could iterate over the numbers and see if the next number is 1 bigger then the current number. So have a:

struct range {
    int start;
    int end;
} range;

where if array[i+1] == array[i]+1; (where i is the currently observed number) then range.end = array[i+1];. Then you progress to the next i; If array[i+1] != array[i]+1; then range.end = array[i];

you could store the ranges in a vector< range > ranges;

printing would be easy:

for(int i = 0; i < ranges.size(); i++) {
    range rng = (range)ranges.at(i);
    printf("[%i-%i]", rng.start, rng.end);
}
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 ; For all cells of the array
    ;if current cell = prev cell + 1 -> range continues
    ;if current cell != prev cell + 1 -> range ended

int[] x  = [2,3,4,5,10,18,19,20]
string output = '['+x[0]
bool range = false; --current range
for (int i = 1; i > x[].length; i++) {
  if (x[i+1] = [x]+1) {
    range = true;
  } else { //not sequential
  if range = true
     output = output || '-' 
  else
     output = output || ','
  output.append(x[i]','||x[i+1])
  range = false;
  } 

}

Something like that.

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Here's my take on this...

function getRanges(input) {

  //setup the return value
  var ret = [], ary, first, last;

  //copy and sort
  var ary = input.concat([]);
  ary.sort(function(a,b){
    return Number(a) - Number(b);
  });

  //iterate through the array
  for (var i=0; i<ary.length; i++) {
    //set the first and last value, to the current iteration
    first = last = ary[i];

    //while within the range, increment
    while (ary[i+1] == last+1) {
      last++;
      i++;
    }

    //push the current set into the return value
    ret.push(first == last ? first : first + "-" + last);
  }

  //return the response array.
  return ret;
}
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PHP

function getRanges($nums) {
sort($nums);
$ranges = array();

for ( $i = 0, $len = count($nums); $i < $len; $i++ )
{
    $rStart = $nums[$i];
    $rEnd = $rStart;
    while ( isset($nums[$i+1]) && $nums[$i+1]-$nums[$i] == 1 )
        $rEnd = $nums[++$i];

    $ranges[] = $rStart == $rEnd ? $rStart : $rStart.'-'.$rEnd;
}

return $ranges;
}


echo print_r(getRanges(array(2,21,3,4,5,10,18,19,20)));
echo print_r(getRanges(array(1,2,3,4,5,6,7,8,9,10)));
share|improve this answer
1  
print_r already prints to stdout unless you set the optional second parameter to true: echo print_r(array(), true); or just print_r(array()); –  Gavin Towey Jul 18 '12 at 22:00
import java.util.ArrayList;
import java.util.Arrays;



public class SequencetoRange {

    /**
     * @param args
     */
    public static void main(String[] args) {
    // TODO Auto-generated method stub

        int num[] = {1,2,3,63,65,66,67,68,69,70,80,90,91,94,95,4,101,102,75,76,71};

        int l = num.length;
        int i;
        System.out.print("Given number : ");
        for (i = 0;i < l;i++ ){
            System.out.print("  " + num[i]);
        }
        System.out.println("\n");
        Arrays.sort(num);

        ArrayList newArray = new ArrayList();
        newArray = getRanges(num);
        System.out.print("Range : ");
        for(int y=0;y<newArray.size();y++)
        {
            System.out.print(" " +newArray.get(y));
        }
    }

    public static ArrayList getRanges(int num[])
    {  
        ArrayList ranges = new ArrayList();
        int rstart, rend;   
        int lastnum = num[num.length-1];
        for (int i = 0; i < num.length-1; i++) 
        {     
            rstart = num[i];     
            rend = rstart;     
            while (num[i + 1] - num[i] == 1) 
            {       
                rend = num[i + 1]; 
                // increment the index if the numbers sequential       
                if(rend>=lastnum)
                {
                    break;
                }
                else
                {
                    i++;
                }  
            }  
            if(rstart==rend)
            {
                ranges.add(rend);
            }
            else
            {
                ranges.add(+rstart+"..."+rend);
            }
        } 
        return ranges; 
    } 
}
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I've written my own method that's dependent on Lo-Dash, but doesn't just give you back an array of ranges, rather, it just returns an array of range groups.

[1,2,3,4,6,8,10] becomes:

[[1,2,3,4],[6,8,10]]

http://jsfiddle.net/mberkom/ufVey/

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Here is a port of CMS's code for BASH:

#!/usr/bin/env bash
# vim: set ts=3 sts=48 sw=3 cc=76 et fdm=marker: # **** IGNORE ******
get_range() { RANGE= # <-- OUTPUT                  **** THIS   ******
   local rstart rend i arr=( "$@" )  # ported from **** JUNK   ******
   for (( i=0 ; i < $# ; i++ )); do  # http://stackoverflow.com
      (( rstart = arr[i] ))          # /a/2270987/912236
      rend=$rstart; while (( arr[i+1] - arr[i] == 1 )); do
      (( rend = arr[++i] )); done; (( rstart == rend )) &&
   RANGE+=" $rstart" || RANGE+=" $rstart-$rend"; done; } # }}}
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