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Write a function that prints out all the factors for each of the numbers 1 through 100.

Really amateur coder but here's my attempt so far.

def factors_numbers(n1,n2)
  (n1..n2).each do |n|
    factors = []
    factors << 1 ##every number has a factor of 1
    factors << n ##every number is a factor of itself
    i = 1
    while i < n 
        new_number = n % (n-i) 
        if new_number == 0 #if 0, divisible and that means two numbers are factors
            factors << new_number
            factors << (n-i)
        end
        i += 1
    end
    return factors
  end
end
share|improve this question
    
1. You are adding new_number to factors when it is zero. That way all numbers will show to have a factor of zero. 2. Your question doesn't require returning the factors, just printing them out. Use some puts statements to achieve that. If you need to return, use a Hash. – Chandranshu Nov 17 '13 at 0:34
    
If n1 = 3 and n2 = 5, by suggesting you "return a hash", @Chandranshu means return {3=>[1,3], 4=>[1,2,4], 5=>[1,5]}. – Cary Swoveland Nov 17 '13 at 0:38
    
What is the question? Does it not work or do you want us to do a code review? If it's the later then the "question" needs to be on codereview.stackexchange.com. And, is this homework or a tutorial? In either case, are you asking for help for something you should be doing yourself? – the Tin Man Nov 17 '13 at 0:51
    
@linsaurus - You have multiple correct answers below. They all use different constructs and have their own advantages. Please read and understand all of them. One way to improve your understanding would be to compare your code to my code and then chipping away at my code to arrive at the code from Peter Alfvin and then to the code from James Adam. And don't forget to accept an answer so that this question shows up as solved. – Chandranshu Nov 17 '13 at 0:59
    
@Chandranshu! thank you, your help is much appreciated! thanks everyone else for their help too. @the Tin Man- it's a problem I found in one of the ruby tutorials. couldn't figure it out myself so thought I could get some help. – linsaurus Nov 17 '13 at 3:09
up vote 1 down vote accepted

Here is an improved version of your code:

def factors_numbers(n1,n2)
  all_factors = {}
  (n1..n2).each do |n|
    factors = []
    (1..Math.sqrt(n).floor).each do |i|
      remainder = n % i
      if remainder == 0 #if 0, divisible and that means two numbers are factors
        factors << i
        factors << n/i
      end
    end
    factors = factors.sort.uniq
    puts "Factors of #{n}: #{factors.join(',')}"
    all_factors[n]=[factors]
  end
  return all_factors
end
share|improve this answer
    
@CarySwoveland - No, Math.sqrt is to improve performance. All factors of n less than Math.sqrt(x) have a counterpart bigger than Math.sqrt(x). It's for this reason that you only need to check up to the square root of a number to test for primality. – Chandranshu Nov 17 '13 at 0:47
    
@CarySwoveland - And my code would happily return 8. I'm iterating on all values from 1 till Math.sqrt(n) and not just prime numbers. – Chandranshu Nov 17 '13 at 0:50
    
You are correct. My mistake. Didn't read your code carefully enough. I'll delete my comments, including this one, to reduce comment clutter. – Cary Swoveland Nov 17 '13 at 0:52

Do you want unique factors? That is, in the range 1-100, should I get the number 1 a hundred times, or only once?

The easiest way to do this is by leveraging the "inject" Enumerable method.

def find_all_factors_between(n1,n2)
  (n1..n2).inject([]) do |factors, num|
    factors + (1..num).inject([]) { |arry, test| num % test == 0 ? arry + [test] : arry }
  end
end

One final thing to note is that Ruby has implicit returns; that is, as long as the output of the last line of your method is your factors variable, you don't have to say return factors.

share|improve this answer

And my entry would be:

def find_all_factors_between(n1, n2)
  factors = -> (n) { (1..n).select {|i| n % i == 0} }
  (n1..n2).each { |n| puts "Factors of #{n}: #{factors.(n).join(', ')}" }
end

find_all_factors_between(1,100)
share|improve this answer
    
Within the interpolated string, shouldn't it be factors(n) rather than factors.(n)? – Chandranshu Nov 17 '13 at 0:57
    
@Chandranshu Nope. factors.(n) is short for factors.call(n). You need the call because it's a Proc. – Peter Alfvin Nov 17 '13 at 1:08
    
thanks for the clarification! I was not aware of this. – Chandranshu Nov 17 '13 at 1:28
    
@Chandranshu, factors[n] and factors.yield(n) also work. Here the method yield is not to be confused with the keyword of the same name. – Cary Swoveland Nov 19 '13 at 17:26
    
yep, I read the documentation day before yesterday after Peter's reply. Thanks for pointing it out again? – Chandranshu Nov 19 '13 at 17:34

Well, if you wanted to do it with enumerables, there's always

def factor_numbers(rng)
  factors = rng.map do |n|
    (1..Math.sqrt(n).floor)         # search numbers <= square root
      .select { |d| n % d == 0 }    # find factors <= square root
      .flat_map { |x| [x, n / x] }  # combine with factors >= square root
      .sort                         # order from least to greatest
      .uniq                         # remove dupes (basically the square root)
  end

  Hash[rng.zip(factors)]            # rng = keys, factors = values
end

puts factor_numbers(1..100)

It's not the most efficient, but my point is just that many of the for/while constructs you'd see in languages like C or JavaScript can be expressed in other ways in Ruby.

share|improve this answer
(n1..n2).each{|x| print "#{x}: #{(1..x).select{|y| x % y == 0}}\n"}

That oughta do it :)

edit: Implemented Cary Swoveland's suggestion

share|improve this answer
1  
You don't need to return y in your select block, just a boolean, so simply x % y == 0 will do. – Peter Alfvin Nov 17 '13 at 0:51
    
Correct sir! Saved me a couple characters :) – James Adam Nov 17 '13 at 0:52
    
James, that would be a big deal at codegolf. – Cary Swoveland Nov 17 '13 at 2:56
1  
I like your use of select. If printing the results is all that is required, you could replace map with each and print what's inside the block for each x. – Cary Swoveland Nov 20 '13 at 0:47
(1..100).each do |i|
    factors = []
    (1..100).each do |j|
        factors << j unless i % j != 0
    end

    p "#{i}" => factors
end
share|improve this answer

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