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Today's month is November (11). With 1.years.ago.to_date..Date.today how can I output:

11 - 2010, 12 - 2010, 01 - 2011, 02 - 2011, 03 - 2011, etc

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4 Answers 4

up vote 3 down vote accepted
strftime 

Use function for all date modifications in ruby

Refer This DOC

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Sorry but the answer is incomplete... I know about strftime. How does it fit into 1.years.ago.to_date..Date.today to output the desired results? –  Christian Fazzini Nov 23 '11 at 13:16
2  
just chain the method on, e.g. 1.years.ago.to_date.Date.today.strftime("%m-%Y") Note we are trying to help and guide not usually just write the final code. –  Michael Durrant Nov 23 '11 at 13:30
    
@ChristianFazzini: Your question title asks only about formatting. If you want a way to iterate by month, check this SO question and answer: stackoverflow.com/q/1724735/82592 –  Mladen Jablanović Nov 23 '11 at 17:10

There's probably a more efficient way to do this, but this will give you the output you want:

require "active_support/core_ext/integer/time"

((1.year.ago.to_date)..(Date.today)).map { |d| d.strftime("%m-%Y") }.uniq!
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For print date used strtotime() function.

//For today print a date used the following code

echo date('m/d/Y',strtotime("today"));

//For one year ago print a date used the following code

echo date('m.d.Y',strtotime("-1 years"));

//For coming year date from today used following code

echo date('m.d.Y',strtotime("1 years"));
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You can to add a new format to your locales.

#/config/locales/en.yml
en:
  date:
    formats:
      month_year: "%m - %Y"

and to use it with I18n.l(your_date, :format => :month_year)

This will help if you want to change the format later, you will change in a unique point.

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