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I have an array with subarrays and wish to sort numerically and descending by the first item in the subarrays. So for example, I wish to take the following array"

array = [[2,text],[5,text],[1,text]]

and sort it to become

array = [[5,text],[2,text],[1,text]]

Is there any simple function to use? Thanks!

3 Answers 3

25
array = [[2,text],[5,text],[1,text]];
array.sort(function(a,b){return a[0] < b[0]})
5
  • i'm glad that i could help sir,
    – Hilmi
    Commented Jun 11, 2013 at 11:39
  • Can this be set up generically, so that I can pass it which element to sort on?
    – jlbriggs
    Commented Oct 9, 2015 at 19:14
  • 1
    @jlbriggs you can use closures for this like for example function genericSort(index, arr) {array.sort(function(a,b){return a[index] < b[index]})} and then you can call it as array = [[2,3],[5,1],[1,2]];genericSort(0, array); /*this will sort on the first index*/ genericSort(1, array); and this one on the second hope this could help
    – Hilmi
    Commented Oct 28, 2015 at 21:39
  • 3
    doesn't work. The right answer is below, with a "-" instead of a "<" !
    – xem
    Commented Jul 20, 2019 at 13:24
  • 2
    @xem depends on browser. FF accepts true/false and +/-. Spyware (Chrome and its derivatives), and Safari/Webkit, only accept +/-
    – SamGoody
    Commented Dec 4, 2019 at 16:54
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array = [[2,text],[5,text],[1,text]];
array.sort(function(a,b){return a[0] - b[0]})

working of the sort function
if the function returns

  • less than zero, sort a before b
  • greater than zero, sort b before a
  • zero, leave a and b unchanged with respect to each other

Additional information at source.

1
  • 3
    You can shorten that to array.sort((a,b) => a[0] - b[0])
    – SamGoody
    Commented Dec 4, 2019 at 16:55
0
array.sort(key=lambda x: x[0], reverse=True)

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