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I have an array: @costumer_request = ['regular', '12/03/2013', '14/03/2013']. I need to verify if the first item is 'regular' or 'rewards', then verify if each date of the rest of the array is a weekend. I did something like this:

@costumer_request.each_with_index do |item, index|
  if index[0] == 'regular:'
    if DateTime.parse(index).to_date.saturday? or  DateTime.parse(index).to_date.sunday?
      print "It's a weekend"
    else
      print "It's not a weekend"
    end
  end
end

require 'date'

module HotelReservation

  class Hotel

    HOTELS = {
      :RIDGEWOOD   => 'RidgeWood',
      :LAKEWOOD    => 'LakeWood',
      :BRIDGEWOOD  => 'BridgeWood'
    }

    def weekend?(date)
      datetime = DateTime.parse(date)
      datetime.saturday? || datetime.sunday?
    end

    def find_the_cheapest_hotel(text_file)

      @weekends_for_regular = 0
      @weekdays_for_regular = 0

      @weekends_for_rewards = 0
      @weekdays_for_rewards = 0

      File.open(text_file).each_line do |line|

       @costumer_request = line.delete!(':').split
       @costumer_request = line.delete!(',').split

       #Here I want to process something in each array
       #but if I do something like bellow, it will
       #store the result of the two arrays in the same variable
       #I want to store the result of the first array, process something
       #and then do another thing with the second one, and so on.

       if(@costumer_request.first == 'regular')
         @costumer_request[1..-1].each do |date|
           if (weekend?(date))
            @weekends_for_regular +=1
           else
            @weekdays_for_regular +=1
           end
        end
        else
          if(@costumer_request.first == 'rewards')
            @costumer_request[1..-1].each do |date|
            if (weekend?(date))
              @weekends_for_rewards +=1
            else
              @weekdays_for_rewards +=1
            end
          end
        end
      end
    end
  end
end
end

The find_the_cheapest_hotel method should output the cheapest hotel based on the given data.

share|improve this question
1  
Where is the question? –  tessi Apr 28 '13 at 18:16
    
First: check if the costumer is a regular or reward costumer. Second: check if the given dates are weekends. In case of a weekend show the message "It's a weekend" else, show "It's not a weekend" –  Gabriel Lidenor Apr 28 '13 at 18:19
    
do you want to verify that all dates in the array are weekend days and what do you want to do if the first entry isn't regular or reward? What is the expected output? True if either matches and all dates are weekend days? or the list of matching days ? –  Doon Apr 28 '13 at 18:28
    
Yeah for the first question and for the second question I'd say I don't need to verify if the first entry doesn't match to 'regular' or 'rewards', because It's a pattern, It can't be different. –  Gabriel Lidenor Apr 28 '13 at 18:37
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5 Answers

up vote 0 down vote accepted

Here's a really clean way of doing it:

def is_weekend?(dt)
  dt.saturday? || dt.sunday?
end

type, *dates = @costumer_request

if(type == 'regular')
  dates.each do |date|
    if(weekend?(Date.parse(date))
      #do processing here
    end
  end
end
share|improve this answer
    
Thanks for the answer. *dates = creates an array of dates ? I didn't get this part. –  Gabriel Lidenor Apr 28 '13 at 22:23
    
That line uses the splat operator (*). It sets type to the first element of @customer_request and dates to the reset of the array. –  Anthony DeSimone Apr 28 '13 at 23:32
    
Got it. Thank you. –  Gabriel Lidenor Apr 28 '13 at 23:47
    
What if I have an array like this: [['regular', '12/03/2013'], ['regular''12/04/2013'], ['rewards', '12/04/2013']] ? I tried your code in this situation but It did something like this: got the 2 arrays which have regular as the first element and then created an array with all the dates of the two arrays. –  Gabriel Lidenor Apr 28 '13 at 23:58
    
I want that the code shows "It's a weekend" for the two arrays which has 'regular' as its first element" –  Gabriel Lidenor Apr 29 '13 at 0:02
show 2 more comments
require 'time'
require 'date'
@costumer_request = ['regular', '28/03/2013', '14/03/2013']
if @costumer_request.first == 'regular'
    if @costumer_request[1...-1].all?{|item| Time.local(item).saturday? || Time.local(item).sunday? }
        print "It's a weekend"
    else
        print "It's not a weekend"
    end
end

output:

It's a weekend
share|improve this answer
    
You probably want to move the first check outside the loop. –  Dave S. Apr 28 '13 at 18:28
    
@DaveS. I am done! please evaluate. –  Arup Rakshit Apr 28 '13 at 18:32
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require 'time'

def weekend?(date)
  datetime = DateTime.parse(date)
  datetime.saturday? || datetime.sunday?
end

@costumer_request = ['regular', '28/03/2013', '14/03/2013']

type = @costumer_request.shift

if type == 'regular'
  @costumer_request.each do |date|
     if weekend?(date)
       puts "#{date} a weekend"
     else
       puts "#{date} not a weekend"
     end
   end
end
share|improve this answer
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You may as well add weekend? directly to DateTime:

class DateTime
  def weekend?
    saturday? || sunday?
  end
end

Now you can convert all but the first element to DateTime objects, then check that all of them are on the weekend.

if @customer_request.first == 'regular'
  dates = @customer_request[1..-1].map { |date_string| DateTime.parse(date_string) }
  if dates.all?(&:weekend?)
    puts 'all dates on a weekend'
  else
    puts 'at least one date is not on a weekend'
  end
else
  puts 'not a regular customer request'
end
share|improve this answer
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@customer_request = ['regular', '12/03/2013', '14/03/2013']



def val
  @customer_request.first == 'regular' &&
    @customer_request.drop(1).inject(true)  do |m, e|
      wd = Time.local(*e.split('/').reverse.map(&:to_i))
      m &&= (wd.saturday? || wd.sunday?)
    end
end


p val
p val ? 'all are weekends' : 'something isn\'t a weekend'
share|improve this answer
    
why do you assign the instance variable to a single letter variable name? This is completely unreadable. –  Chris Apr 28 '13 at 18:35
    
@chris, updated... –  DigitalRoss Apr 28 '13 at 18:58
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