7

Can you destructure function parameters directly in Ruby :

def get_distance(p1,p2)
  x1,y1 = p1
  x2,y2 = p2
  ((y2-y1)**2 + (x2-x1)**2)**0.5
end

I tried the obvious :

def get_distance([x1,y1],[x2,y2])
  ((y2-y1)**2 + (x2-x1)**2)**0.5
end

But the compiler didn't like that.

2
  • 1
    In #1, if p1 and p2 are each 2-element arrays, that should work fine. In #2 try get_distance(((x1,y1), (x2,y2)), assuming you are calling the method get_distance(a,b), where a and b are each 2-element arrays. I don't understand, however, why you are asking this question, as it is covered in every book on Ruby, and in countless blogs and articles. I just googled, "Ruby destructuring", which produced many hits. The first was this one. Aug 10, 2018 at 17:13
  • 3
    On another note, **0.5 is nearly twice as slow as simply using Math.sqrt, you aren't doing yourself any favors there, and it doesn't read as well. Aug 10, 2018 at 17:35

2 Answers 2

16

How about that:

def f((a, b), (c, d))
  [a, b, c, d]
end

f([1, 2], [3, 4]) # ==> [1, 2, 3, 4]
1

As well as destructuring array parameters, you can also destructure hashes. This approach is called keyword arguments

# Note the trailing colon for each parameter. Default args can be listed as keys
def width(content:, padding:, margin: 0, **rest)
  content + padding + margin
end

# Can use args in any order
width({ padding: 5, content: 10, margin: 5 }) # ==> 20
2
  • 3
    This isn't really destructuring. If your hash has an extra parameter, the method call will fail. For "true" has destructuring one should add an additional parameter: def f(a:, **rest) which will capture the rest keys
    – Nondv
    Dec 3, 2020 at 19:51
  • Thanks for the clarification! I'll update my answer Feb 1, 2022 at 5:41

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