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I'm trying to solve questions from Project Euler in Ruby one-liners, and I'm curious if there's a more elegant solution for question two:

Each new term in the Fibonacci sequence is generated by adding the previous two terms. By starting with 1 and 2, the first 10 terms will be:

1, 2, 3, 5, 8, 13, 21, 34, 55, 89, ...

By considering the terms in the Fibonacci sequence whose values do not exceed four million, find the sum of the even-valued terms.

Here is my one line solution in Ruby:

(1..32).inject([0,1]) {|arr, i| (arr << arr[-1] + arr[-2] if arr[-1] + arr[-2] <= 4000000) || arr}.inject(0) {|total, i| total += i.even? ? i : 0}

My main concern here is that I'm using the range (1..32) only because I happen to know that that's all that's necessary until numbers in the Fibonacci sequence begin to exceed 4,000,000. I would prefer that this be built into the one-line somehow, but I haven't been able to figure it out.

Semi-colons are not allowed!

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2  
I think it's subverting the spirit of your challenge a bit if the "one-liner" solutions include multiple blocks. I mean, you could do a Java one-liner the same way, if you didn't mind having a line that was 500 characters long and completely unreadable. –  aroth Jun 20 '11 at 23:07
    
It's nothing to do with Ruby specifically, that's just the language I'm learning. It's just for fun. –  clem Jun 20 '11 at 23:16
    
@aroth, Chaining blocks in Ruby is as natural as an assignment with multiple arithmetic operators. For a one-liner which bends the spirit of the rules more, see my solution: the semicolons are a dead givaway. –  Wayne Conrad Jun 21 '11 at 0:26
1  
@Wayne - If chaining blocks in Ruby is always done by using a single line of code, then all I can say is ugh...I will never understand why seeming rational people take a practice that needlessly obfuscates code and make it "natural". Part of the design philosophy behind Ruby as a language was that it should be easy for a human to read and understand, and of your two example solutions the multi-line one is by far the most readable. –  aroth Jun 21 '11 at 0:40
2  
@aroth, I agree. I don't chain blocks on one line unless it's more readable. Sometimes it is, often it isn't. The one-liner in my example is because the OP asked for it, not because it's what I'd write. That said, writing one-liners is a valid exercise, like a musician playing musical scales. You wouldn't write one liners in production code, nor would you play musical scales in a concert. –  Wayne Conrad Jun 21 '11 at 1:12

11 Answers 11

up vote 5 down vote accepted

Inspired on Alex's answer:

# Ruby 1.8.7
f = lambda { |x| x < 2 ? x : f.call(x-1) + f.call(x-2) }
puts f.call(6)   #=> 8

# Ruby 1.9.2
f = ->(x){ x < 2 ? x : f[x-1] + f[x-2] }
puts f[6]        #=> 8
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1  
fib = ->(n, i=0, j=1){(1..n).map{i=j+j=i}} Call it with fib[7] –  Jonas Elfström Jan 29 '13 at 19:35
    
I wonder why the syntax you used seems to have disappeared in Ruby 1.9.3. –  Jonas Elfström Jan 29 '13 at 19:37
1  
i=j+j=i is evaluated from left to right. Starting point i=0;j=1. First i will be set to 1 + 0 since = precedes +. Now i=1;j=0. i will be set to 0 + 1. We arrive at i=1;j=1. i will be set to 1 + 1. i=2;j=1. i will be set to 1 + 2. i=3;j=2. i will be set to 2 + 3. i=5;j=3 and so on, thus producing the Fibonacci sequence. –  Jonas Elfström Oct 18 '13 at 8:04
1  
@MikeH-R ...and the ;i is synonym for ; return i. –  Sony Santos Oct 18 '13 at 11:30
1  
Array#each returns the array and Integer#times returns self. ruby-doc.org/core-2.0.0/Array.html#method-i-each ruby-doc.org/core-2.0.0/Integer.html#method-i-times –  Jonas Elfström Oct 23 '13 at 20:53

My favorite solution to this is to use a Hash, the values of which can be determined by an anonymous function:

fibonacci = Hash.new{ |h,k| h[k] = k < 2 ? k : h[k-1] + h[k-2] }

fibonacci[6]  # => 8 
fibonacci[50] # => 12586269025

It's a "genuine" one-liner and very Ruby-ish.

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3  
Very clever! But you're using a colon - isn't that twice as bad as using a semicolon? –  Andrew Grimm Aug 10 '11 at 22:29
2  
Bravo! You get automagic memoization by using the hash to drive the function. This is elegance! –  Patrick Farrell Aug 20 '12 at 2:24
    
so sexy! i am excited! –  Syntactic Sugar Mar 19 '13 at 19:39
1  
fibonacci[2299] # => stack level too deep (SystemStackError) –  Amit Kumar Gupta Dec 14 '13 at 21:14

Using a Ruby 1.9 Enumerator:

fib = Enumerator.new do |yielder|
  i = 0
  j = 1
  loop do
    i, j = j, i + j
    yielder.yield i
  end
end

p fib.take_while { |n| n <= 4E6 }
# => [1, 1, 2 ... 1346269, 2178309, 3524578]

As one line:

p Enumerator.new { |yielder| i, j = 0, 1; loop {i, j = j, i + j; yielder.yield i} }.take_while { |n| n <= 4E6}
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A while ago I found out about the strange construct i=j+j=i. It's the same thing as i, j = j, i + j. –  Jonas Elfström Jan 29 '13 at 19:43
    
@Jonas, Did you mean j = i + i = j? It's an interesting construct! It's not one I'd like to use in production code, but a good one for thinking about how Ruby works. Thank you for pointing it out. –  Wayne Conrad Jan 29 '13 at 20:12
    
I wouldn't use it in production code either and me confusing them is a good indicator of why. –  Jonas Elfström Jan 30 '13 at 12:28

Here's a ruby 2.0 solution, without using inject/reduce which is not lazy:

(1..Float::INFINITY).
  lazy.
  with_object([0,1]).
  map { |x, last| last[1] = last[0] + (last[0] = last[1]) }.
  select { |x| x % 2 == 0 }.
  take_while { |x| x < 4_000_000 }.
  reduce(&:+)

I don't particularly like the fibonacci generator, because it doesn't include the initial 0. This solution also takes advantage of the first odd number being F3 (F1 in this sequence generator).

A cleaner (Fibonacci-wise) and correct (In Liber Abaci's definition) solution would be:

(1..Float::INFINITY).
  lazy.
  with_object([0,1]).
  map { |x, last| last[1] = last[0] + (last[0] = last[1]);last[0] }.
  select { |x| x % 2 == 0 }.
  take_while { |x| x < 4_000_000 }.
  reduce(&:+)

This solution includes a semi-colon, but I don't know if it counts when used this way :).

[Update]

Here's a proper Fibonacci generator (starting on 0) solution, with no semi-colon (btw, is this a javascript semi-colon wars thingy ?!?) :)

(1..Float::INFINITY).
  lazy.
  with_object([0,1]).
  map { |x, last| last[0].tap { last[1] = last[0] + (last[0] = last[1]) } }.
  select { |x| x % 2 == 0 }.
  take_while { |x| x < 4_000_000 }.
  reduce(&:+)
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Building on Alex's Hash, this may make you go blind, but it's one line, no semicolons and eliminates the range dependency. the instance_eval trick is very useful for oneliners and golf, although it's horrible Ruby.

Hash.new{|h,k|h[k]=k<2?k:h[k-1]+h[k-2]}.update(sum: 0,1=>1).instance_eval {self[:sum]+= self[keys.last+1].even? ? self[keys.last] : 0 while values.last < 4E6 || puts(fetch :sum)}

Outputs: 4613732

I warned you it was horrible. I can't make it actually return the value without using a semicolon, sorry.

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How about this?

(((1 + 5 ** 0.5) / 2) ** 35 / 5 ** 0.5 - 0.5).to_i / 2

(See this answer for an explanation.)

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I like this solution, but wouldn't you have to know the significance of why you are using 35? Given the Euler project questions, you really only know the number 4000000 and to sum the even numbers. –  pjammer Dec 23 '12 at 3:59
    
@pjammer: 35 can be replaced with (Math.log(4000000 * 5 ** 0.5, (1 + 5 ** 0.5) / 2) + 2).to_i, if you like. –  Gareth Rees Jan 5 '13 at 13:06

My favorite is:

def fib(n)
  (0..n).inject([1,0]) { |(a,b), _| [b, a+b] }[0]
end

from https://gist.github.com/1007228

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With the new lazy in ruby 2.0, you can write like this.

puts (1..Float::INFINITY).lazy.map{|n| (0..n).inject([1,0]) {|(a,b), _| [b, a+b]}[0] }.take_while{|n| n < 4000000}.select{|x| x % 2 == 0}.reduce(:+)
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I realize this is an ancient question and has been classed as answered but no-one manages to solve the question in one block, none of them actually give the sum of the even valued terms in one line and in one block and with no semi colons (just noticed that waynes does solve with one line but I thought a one block solution might be nice in response to aroth). here is a solution that does:

(1..Float::INFINITY).inject([0,1,0]){|a| if a[0]+a[1] < 4000000 then [a[1],a[0]+a[1],(a[0]+a[1]).even? ? a[2] + (a[0]+a[1]) : a[2]] else break a[2] end }

for a slightly clearer version with one semi colon.

(1..Float::INFINITY).inject([0,1,0]){|a| sum=a[0]+a[1]; if sum < 4000000 then [a[1],sum,sum.even? ? a[2] + sum : a[2]] else break a[2] end }

I figure I'll explain it too, three pieces of information get carried forward in the array (as a at each iteration) the first fibonacci number, the second fibonacci number and the sum of the even terms. bearing this in mind I think this code is quite clear ruby.

it should be noted that this is basically the same as clems except in one block

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And afaik it seems to be efficient and memoises the information without storing too much of it (so both speed and memory efficient) –  Mike H-R Jun 25 '13 at 12:36

Here's a one line ruby solution to Euler prob #2

(0..4000000).take_while{|i| (0..i).reduce([1,0]){|(a,b), _| [b, a+b]}[0] <= 4000000 }.map{|i| (0..i).reduce([1,0]){|(a,b), _| [b, a+b]}[0] }.select{|i| i%2 == 0}.reduce(:+)

Or for better readability??

(0..4000000) .
take_while {|i| (0..i).reduce([1,0]){|(a,b), _| [b, a+b]}[0] <= 4000000} .
map {|i| (0..i).reduce([1,0]){|(a,b), _| [b, a+b]}[0]} .
select {|i| i%2 == 0} .
reduce(:+)
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Returns correct values up to Fib(70), beyond that just an approximation. But extremely fast:

(((Math.sqrt(5.0) + 1.0) / 2.0)**n / Math.sqrt(5.0) + 0.5).floor

(see https://en.wikipedia.org/wiki/Fibonacci_number#Computation_by_rounding for explanation)

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