Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have an array returned by the function Search.all :

=> [#<Search id: 7, name: "ap", presence: true, created_at: "2012-03-16 00:58:42", updated_at: "2012-03-16 00:58:42">, #<Search id: 8, name: "papier", presence: true, created_at: "2012-03-16 01:14:32", updated_at: "2012-03-16 01:14:32">, #<Search id: 9, name: "carton de jus", presence: true, created_at: "2012-03-20 22:28:53", updated_at: "2012-03-20 22:28:53">, #<Search id: 10, name: "carton de jus", presence: true, created_at: "2012-03-20 22:29:01", updated_at: "2012-03-20 22:29:01">, #<Search id: 11, name: "Papier", presence: true, created_at: "2012-03-22 20:43:36", updated_at: "2012-03-22 20:43:36">, #<Search id: 12, name: "Papier", presence: true, created_at: "2012-03-22 20:43:47", updated_at: "2012-03-22 20:43:47">, #<Search id: 13, name: "Salut", presence: false, created_at: "2012-03-24 20:34:49", updated_at: "2012-03-24 20:34:49">, #<Search id: 14, name: "carton", presence: true, created_at: "2012-03-26 19:32:03", updated_at: "2012-03-26 19:32:03">, #<Search id: 15, name: "carton", presence: true, created_at: "2012-03-26 19:32:11", updated_at: "2012-03-26 19:32:11">, #<Search id: 16, name: "carton", presence: true, created_at: "2012-03-26 19:32:15", updated_at: "2012-03-26 19:32:15">, #<Search id: 17, name: "cellulaire", presence: true, created_at: "2012-03-26 19:32:28", updated_at: "2012-03-26 19:32:28">, #<Search id: 18, name: "cellulaire", presence: true, created_at: "2012-03-26 19:32:36", updated_at: "2012-03-26 19:32:36">, #<Search id: 19, name: "montre", presence: false, created_at: "2012-03-29 00:45:26", updated_at: "2012-03-29 00:45:26">, #<Search id: 20, name: "montre", presence: false, created_at: "2012-03-29 00:45:29", updated_at: "2012-03-29 00:45:29">, #<Search id: 21, name: "montres", presence: false, created_at: "2012-03-29 00:45:32", updated_at: "2012-03-29 00:45:32">, #<Search id: 22, name: "montre", presence: false, created_at: "2012-03-29 00:45:35", updated_at: "2012-03-29 00:45:35">]

I want to count the number of occurences of the same elements based on "name". I know how to find the occurences in an array like this one : ['a', 'b', 'a'] with

favoris.inject(Hash.new(0)) { |h,v| h[v] += 1; h }

But how can use that in the previous array?

share|improve this question
1  
Simple. Replace h[v] with h[v.name] (or however you get the name). –  Linuxios Mar 29 '12 at 0:56

2 Answers 2

up vote 3 down vote accepted
favoris.inject(Hash.new(0)) { |h,v| h[v.name] += 1; h }

:)

share|improve this answer
    
It worked, thanks! –  Justin D. Mar 29 '12 at 1:02
    
I needed to wait 8 minutes before I could. –  Justin D. Mar 29 '12 at 1:12

I prefer a solution based on each, as you're actually iterating on every element of the array, while producing side effects. That, for how I understand it, is not the reason inject was created.

h = Hash.new(0)
favoris.each { |el| h[el] += 1 }
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.