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I need an array with the numbers for the months in the current quarter. I want to supply Date.today and then get eg. [1,2,3].

How do I do that in the easiest way? (Not by using switch/case).

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3  
Why are you against using a case statement here? It would be a very simple way to do what you're asking. –  Andy Waite Jun 12 '11 at 13:30
    
I agree with Andy Waite, you really SHOULD use a switch statement for such a problem. Everything else would just be a waste of CPU time. –  x3ro Jun 12 '11 at 14:02

6 Answers 6

up vote 4 down vote accepted
def quarter_month_numbers(date)
  quarters = [[1,2,3], [4,5,6], [7,8,9], [10,11,12]]
  quarters[(date.month - 1) / 3]
end
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1  
Well - since this is the fastest solution and also very concise, this will be the winner :-) Thanks for your suggestions! –  jriff Jun 15 '11 at 11:52
    
I posted a super-easy one-liner method below. stackoverflow.com/a/18668602/839583 –  bob Sep 10 '13 at 19:15

I would suggest building a hash indexed by month like so:

@quarters_by_month = Hash[(1..12).map {|v| i=((v-1)/3)*3; [v,[i+1, i+2, i+3]]}]

then any future lookup is just

@quarters_by_month[month]

Since @x3ro mentioned CPU time I thought it would be fun to benchmark all of the proposed solutions including the case statement which the OP wanted to exclude. Here are the results:

> ruby jeebus.rb 
                     user     system      total        real
case_statement:  0.470000   0.000000   0.470000 (  0.469372)
quarter_month:   0.420000   0.000000   0.420000 (  0.420217)
solution1:       0.740000   0.000000   0.740000 (  0.733669)
solution2:       1.630000   0.010000   1.640000 (  1.634004)
defined_hash:    0.470000   0.000000   0.470000 (  0.469814)

Here is the code:

def case_statement(month)
  case month
  when 1,2,3
    [1,2,3]
  when 4,5,6
    [4,5,6]
  when 7,8,9
    [7,8,9]
  when 10,11,12
    [10,11,12]
  else
    raise ArgumentError
  end
end

def defined_hash(month)
  @quarters_by_month[month]
end

def solution1(month)
  (((month - 1) / 3) * 3).instance_eval{|i| [i+1, i+2, i+3]}
end

def solution2(month)
  [*1..12][((month - 1) / 3) * 3, 3]
end

def quarter_month_numbers(month)
  @quarters[(month - 1) / 3]
end


require 'benchmark'

n = 1e6

Benchmark.bm(15) do |x|
  x.report('case_statement:') do
    for i in 1..n do
      case_statement(rand(11) + 1)
    end 
  end

  x.report('quarter_month:') do
    @quarters = [[1,2,3], [4,5,6], [7,8,9], [10,11,12]]

    for i in 1..n do
      quarter_month_numbers(rand(11) + 1)
    end 
  end

  x.report('solution1:') do
    for i in 1..n do
      solution1(rand(11) + 1)
    end 
  end

  x.report('solution2:') do
    for i in 1..n do
      solution2(rand(11) + 1)
    end 
  end

  x.report('defined_hash:') do
    @quarters_by_month = Hash[(1..12).map {|v| i=((v-1)/3)*3; [v,[i+1, i+2, i+3]]}]

    for i in 1..n do
      defined_hash(rand(11) + 1)
    end
  end
end
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Very interesting, I didn't think too much on my solution, but as soon as I had answered with mine, I had a feeling that using a Hash might just be a faster solution. def quarter_month_numbers(date) quarters = {0 => [1,2,3], 1 => [4,5,6], 2 => [7,8,9], 3 => [10,11,12]} quarters[(date.month - 1) / 3] end But it's nice to see though that amongst the solutions you compared mine is the fastest :) –  Dhruva Sagar Jun 13 '11 at 13:33
    
Thanks a lot for your benchmark - very cool way to compare the different solutions :-) –  jriff Jun 15 '11 at 11:54
def quarter(date)
  1 + ((date.month-1)/3).to_i
end
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Solution 1

(((Date.today.month - 1) / 3) * 3).instance_eval{|i| [i+1, i+2, i+3]}

Solution 2

[*1..12][((Date.today.month - 1) / 3) * 3, 3]
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1  
[*1..12] that is a neat way to write (1..12).to_a, thanks for that, didn't know! –  Dhruva Sagar Jun 13 '11 at 13:30

Have a look at this little snippet:

months = (1..12).to_a
result = months.map do |m|
  quarter = (m.to_f / 3).ceil
  ((quarter-1)*3+1..quarter*3).to_a
end

puts result.inspect
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You can do the following:

m = date.beginning_of_quarter.month
[m, m+1, m+2]

Demonstrated below in irb:

>> date=Date.parse "27-02-2011"
=> Sun, 27 Feb 2011  
>> m = date.beginning_of_quarter.month
=> 1
>> [m, m+1, m+2]
=> [1, 2, 3]

I don't know how fast this is compared to the other methods, perhaps @Wes can kindly benchmark this way as well.

One advantage of this approach I think is the clarity of the code. It's not convoluted.

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