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I'm new to Ruby. After a ton of refactoring I came down to this. Is there a better way to write this?

 51   def tri_num?(n)
 52     i = 1
 53     while i < n
 54       return i if i * (i + 1) / 2 == n
 55       i += 1
 56     end 
 57     raise InvalidTree
 58   end
share|improve this question
    
define 'better'? You mean visually, or speed? Because if it's the latter you care about, a while loop is probably the fastest. I agree it's not too visually appealing though. Check out Fixnum#times: n.times { |i| return i if i * (i + 1) / 2 == n for example –  Lee Jarvis Oct 4 '11 at 23:18

4 Answers 4

up vote 5 down vote accepted

What about solving it directly?

def tri_num? n

  i = (0.5*(-1.0 + Math.sqrt(1.0 + 8.0*n))).to_i

  if i*(i+1)/2 == n
    return i
  else
    raise InvalidTree
  end

end

Though I don't know if tri_num? is a good name. Usually a function ending with a ? should return true or false.

share|improve this answer
    
I'm not acquainted with that equation, any reference? –  CamelCamelCamel Oct 4 '11 at 23:33
    
I just did a little algebra and solved the quadratic equation i^2 + i - 2*n = 0. –  dantswain Oct 4 '11 at 23:42
    
I wish I had math skills. Good solution. –  CamelCamelCamel Oct 4 '11 at 23:47

Yes.

def tri_num?(n)
  1.upto(n-1) do |i|
    return i if i * (i + 1) / 2 == n
  end
  raise InvalidTree
end
share|improve this answer
    
+1 :) you beat me by a few seconds –  Tilo Oct 4 '11 at 23:19
2  
Isn't this wasting cycles? say n is 11, which is not a triangle number: this is running up until the 10th triangle number which is 55, way above n. –  CamelCamelCamel Oct 4 '11 at 23:21
    
My algorithm is basically the same as the one you originally posted in the question, but it is just written more concisely. Your algorithm has the same inefficiency. I noticed it but did not bother to improve it. A "break" statement at the appropriate time would make this algorithm more efficient in the case where it raises an exception. –  David Grayson Oct 5 '11 at 5:24

I thought the same as dantswain, basically invert the equation:

=> i * (i + 1) / 2 = n
=> i * (i + 1) = 2*n
=> i^2 + i = 2*n
=> i^2 + i -2*n = 0

And the solutions for the above are:

i = (-1 +- sqrt(1+8n))/2

Here I don't consider the - solution as it will give negative for any value of n bigger than 0, in the end the code is:

def tri_num?(n)
    i = (-1 + Math.sqrt(1 + 8*n))/2.0
    return i.to_i if i == i.to_i
    raise InvalidTree
end
share|improve this answer
def tri_num?(n)
  (1...n).each do |i|
    return i if i * (i + 1) / 2 == n
  end
  rails InvalidTree # not defined..                                             
end
share|improve this answer
    
yes.. he wanted to do go up to n-1 -- that's what the '...' syntax does, it does not include the end value. e.g. 3 dots, not 2 –  Tilo Oct 4 '11 at 23:38
    
duh.. that was a typo! thanks for pointing that out.. i meant to type "1" of course :-P –  Tilo Oct 5 '11 at 0:10

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