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What's wrong with this Ruby code? I'm trying to solve the first Project Euler question.

I think the problem is in the syntax of sum += num, but I can't figure out what the proper syntax for this would be.

sum = 0
num = 0
num2 = 0

loop do
  num += 1
  if num % 3 == 0
    sum += num
    break if num > 1000
  end
end

loop do
  num2 += 1
  if num2 % 5 == 0
    sum += num2
    break if num2 > 1000
  end
end

puts sum
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1  
Are there any numbers that you might be counting twice? –  Jon Kiparsky Jul 13 '13 at 3:12
1  
Nothing is wrong. It is valid Ruby code. –  sawa Jul 13 '13 at 3:55

3 Answers 3

Here's an alternative:

(1...1000).select { |x| x % 3 == 0 || x % 5 == 0 }.reduce(:+)
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Why did you put &:+ inside the reduce? I've always seen it done with :+. –  Doorknob 冰 Jul 13 '13 at 11:58
    
See here: blog.thoughtfolder.com/…. –  Benjamin Tan Jul 13 '13 at 16:40
    
Well, yes, I knew what it does, but why not just use :+ instead of &:+? It's shorter, easier to understand, and it removes and unnecessary call to to_proc. –  Doorknob 冰 Jul 13 '13 at 19:59
    
You are probably right. Force of habit actually. Doing too many User.all.map(&:name). :X. I'll edit my answer for better clarity. Thanks! –  Benjamin Tan Jul 14 '13 at 5:25
    
Alright, just wondering since Ruby isn't really my main language :P –  Doorknob 冰 Jul 14 '13 at 12:53

You are making this way more complicated than it needs to be. Also, if the number is a multiple of 3 and 5, it gets added twice. Try something like this:

sum = 0 # initialize the sum
(1...1000).each { |x| # loop from 1 to 1000
    sum += x if x % 3 == 0 || x % 5 == 0 # add the number to the sum if it is
                                         # divisible by 3 or 5
}
puts sum # output the sum
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This runs, your syntax is okay, but does not give the right answer because, as mentioned, you add multiples of both 3 and 5 twice, once in the first loop, with num, and the second loop, with num2.

So you have two loops, but you actually only need one.

You only need to consider each number once, you can check it to see if it is a multiple of either 3 or 5. This will solve your double-counting issue and also make your code more concise.

Also, like Doorknob shows, the each syntax would save you some lines on those loops. You could also use the for syntax:

for num in (1..1000)
  <stuff here>
end

Check out the kinds of loops in "Loops: How to do thousands of operations with a few lines of code.".

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