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I have an Array of Arrays that I want to sort by longest length to shortest. I achieved this easily enough with a sort_by

> a =  [ [1, 2, 9],
         [4, 5, 6, 7],
         [1, 2, 3] ]
> a.sort_by(&:length).reverse # or a.sort_by {|e| e.length}.reverse
=> [[4, 5, 6, 7], [1, 2, 3], [1, 2, 9]]

What I want, however is to have a sort of tie-breaker for lists of equal length. If two lists' lengths are equal, the list whose last entry is greater should come first. So in the above, [1, 2, 9] and [1, 2, 3] should be switched.

I don't care abouth the case where two lists have both equal length and equal last element, they can be in whatever order if that occurs. I don't know if/how I can acheive this with ruby built-in sorting.

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Use a block, like in the example in the docs: ruby-doc.org/core-2.0/Enumerable.html#method-i-sort_by –  Nirk Aug 16 '13 at 2:02

3 Answers 3

up vote 8 down vote accepted

You can still do this with sort_by, you just need to realize that Ruby arrays compare element-by-element:

ary <=> other_ary → -1, 0, +1 or nil

[...]

Each object in each array is compared (using the <=> operator).

Arrays are compared in an “element-wise” manner; the first two elements that are not equal will determine the return value for the whole comparison.

That means that you can use arrays as the sort_by key, then throw in a bit of integer negation to reverse the sort order and you get:

a.sort_by { |e| [-e.length, -e.last] }

That will give you the [[4, 5, 6, 7], [1, 2, 9], [1, 2, 3]] that you're looking for.

If you're not using numbers so the "negation to reverse the order" trick won't work, then use Shaunak's sort approach.

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Excellent answer, though it may seem ordinary to fluent Rubyists. –  Boris Stitnicky Aug 16 '13 at 6:17
    
@BorisStitnicky: Thanks. I actually see that as an SQL inspired solution, that's pretty much a straight transliteration of order by length desc, last desc (except the SQL version would work equally well with strings since it doesn't depend on the "negation reverses the order" trick). –  mu is too short Aug 16 '13 at 6:55
    
Excellent answer @muistooshort. Out of curiosity, is there a computational difference between how your solution will compare against mine? especially if the arrays are too big and complex? I am not sure how sory_by executes its block will it sort twice or like in my solution it just modifies the comparison in the same go. –  Shaunak Aug 16 '13 at 15:31
1  
@Shaunak: sort_by does a Schwartzian Transform so the block will be executed once per array element. The difference isn't worth worrying about for small arrays; for large arrays, you'd need to weight the expense of the block's computation against the memory overhead of the memorization. –  mu is too short Aug 16 '13 at 17:19
1  
Thanks! That helps. Downside of using ruby sugar is we tend overlook these things. –  Shaunak Aug 16 '13 at 17:40

You could use

a.sort_by {|i| [i.length, i.last] }.reverse
# => [[4, 5, 6, 7], [1, 2, 9], [1, 2, 3]]
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There you go :

a =  [ [1, 2, 9],[4, 5, 6, 7],[1, 2, 3] ]
a.sort { |a, b| (b.count <=> a.count) == 0 ? (b.last <=> a.last): (b.count <=> a.count)  } 

That should give you:

[[4, 5, 6, 7], [1, 2, 9], [1, 2, 3]]

How this works: we pass a block to sort function, which first checks if the array length is same, if not it continues to check for last element.

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2  
I think (a.length == b.length) for the first condition would better match your explanation if the array length is same. –  Bryan Ash Aug 16 '13 at 2:28
    
not sure what you mean, can you write it down please? –  Shaunak Aug 16 '13 at 15:23
    
All I'm, suggesting is: (a.length == b.length) ? instead of (b.count <=> a.count) == 0 ? –  Bryan Ash Aug 18 '13 at 15:20

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