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April 24, 2012 20:36
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Different solutions for Fizz Buzz in Ruby
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| def fizz_buzz_1(max) | |
| arr = [] | |
| (1..max).each do |n| | |
| if ((n % 3 == 0) && (n % 5 == 0)) | |
| arr << "FizzBuzz" | |
| elsif (n % 3 == 0) | |
| arr << "Fizz" | |
| elsif (n % 5 == 0) | |
| arr << "Buzz" | |
| else | |
| arr << n | |
| end | |
| end | |
| return arr | |
| end | |
| def fizz_buzz_2(max) | |
| arr = [] | |
| (1..max).each do |n| | |
| if (n % 3 == 0) | |
| if (n % 5 == 0) | |
| arr << "FizzBuzz" | |
| else | |
| arr << "Fizz" | |
| end | |
| elsif (n % 5 == 0) | |
| arr << "Buzz" | |
| else | |
| arr << n | |
| end | |
| end | |
| return arr | |
| end | |
| def fizz_buzz_3(max) | |
| arr = [] | |
| (1..max).each do |n| | |
| text = "" | |
| if (n % 3 == 0) | |
| text << "Fizz" | |
| end | |
| if (n % 5 == 0) | |
| text << "Buzz" | |
| end | |
| if !((n % 3 == 0) || (n % 5 == 0)) | |
| text = n | |
| end | |
| arr << text | |
| end | |
| return arr | |
| end |
#FizzBuzz
(1..100).each do |number|
if (number % 3 == 0) and (number % 5 != 0)
puts "Fizz"
elsif (number % 5 == 0 ) and (number % 3 != 0)
puts "Buzz"
elsif (number % 5 == 0) and (number % 3 == 0)
puts "FizzBuzz"
else
puts number
end
end
buzzer = lambda do |i|
map = {ff: i, tf: 'Fizz', ft: 'Buzz', tt: 'FizzBuzz'}
map[((i%3==0).to_s[0] + (i%5==0).to_s[0]).to_sym]
end
puts (1..100).map(&buzzer)
(0..100).map{|i|i%15==0?'FizzBuzz':i%3==0?'Fizz':i%5==0?'Buzz':i}
#66 chars :)
This one requires presence from Rails (i.e., it works in rails console):
puts 1.upto(100).map { |n| "#{'Fizz' if n%3==0}#{'Buzz' if n%5==0}".presence || n }
(1..100).map{|n|({3=>['Fizz'],5=>['Buzz']}.map{|x,y|y[n%x]}.join.gsub(/^$/,n.to_s))}
@willwright82 's solution modified for less == 0:
(1..100).map do |m|
case 0
when m % 15 then 'FizzBuzz'
when m % 3 then 'Fizz'
when m % 5 then 'Buzz'
else m
end
end
def fizzbuzz(int)
if int % 3 == 0 && int % 5 == 0
"FizzBuzz"
elsif int % 3 == 0
"Fizz"
elsif int % 5 == 0
"Buzz"
else int % 4 == 0
nil
end
end
70 characters
(1..100).map{|x|puts x%15==0?'FizzBuzz':x%5==0?'Buzz':x%3==0?'Fizz':x}
When I thought we already had way too many solutions... !
module BeingMultiple
refine Integer do
def eitherFizzOrBuzz!
return "FizzBuzz" if multiple?(3) && multiple?(5)
return "Fizz" if multiple?(3)
return "Buzz" if multiple?(5)
self
end
private
def multiple?(target)
self % target == 0
end
end
end
using BeingMultiple
puts (1..n).map(&:eitherFizzOrBuzz!).join("\n")
require "fizzbuzz"
RSpec.describe FizzBuzz do
describe "#compute" do
context "when number is dvisisble by 3" do
it "returns fizz" do
expect(FizzBuzz.compute(6)).to eq("fizz")
end
end
context "when number is dvisisble by 5" do
it "returns buzz" do
expect(FizzBuzz.compute(10)).to eq("buzz")
end
end
context "when number is dvisisble by both 3 and 5" do
it "returns buzz" do
expect(FizzBuzz.compute(15)).to eq("fizzbuzz")
end
end
end
end
class FizzBuzz
def self.compute(number)
return "fizzbuzz" if (number % 15).zero?
if (number % 3).zero? "fizz" else "buzz" end
end
end
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(1..100).each do |i|
if i % 5 == 0 && i % 3 == 0
puts 'FizzBuzz'
elsif i % 5 == 0
puts 'Buzz'
elsif i % 3 == 0
puts 'Fizz'
else
puts i
end
end