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which way below is more efficient to accomplish this task. I want to loop through a model, check if a list made up of integer vals associated with each model_id is greater than 0. If it is then take the corresponding models into a list of models.

@models = Model.find(:all).collect{|m| m }.reject{ |i| modellist[i.id] < 1 }

or like this

finalModels = []
Model.find_each do |model|
  if modellist[model.id] > 0 #edited
  #if modellist[model.id] != 0
    finalModels.push( model )
  end
end
@models = finalModels

Im leaning towards the second approach, but im not sure. Maybe some insight into how .collect and .reject works to see how efficient it is.

  • Edit

My model is called Picture. modellist (or pList) contains data similar to this.

[nil,nil,nil,3,nil,nil,nil,nil,nil,nil,nil,nil,nil,nil,
nil,nil,7,nil,nil,nil,0,nil,nil,nil,0,0,nil,nil,1,3]

I the index number of pList corresponds to the picture id for this. So i need to find pics where pList[picture id] is greater than 0.

  • Edit

Used Benoit Garrets answer. What i had to do was make sure that pList was declared by pList = Hash.new and not pList = []. the exact query i used was

@pictures = Picture.find(pList.select {|k, v| v > 0}.keys)
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2  
@models = Model.find(:all).collect{|m| m }.reject{ |i| modellist[i.id] < 1 } is better written as: @models = Model.all.reject{ |i| modellist[i.id] < 1 } –  Swanand Nov 16 '11 at 13:55
    
.collect{|m|m} is not necessary. How's modellist or pList stored? –  jimworm Nov 16 '11 at 13:59
    
Both ways are inefficient, loading the entire table. find_each will lock up your db slightly less if the table is large, but takes longer. The only correct solution so far is also the only answer with 0 votes. –  jimworm Nov 17 '11 at 5:11

4 Answers 4

up vote 2 down vote accepted

Assuming your modellist and pList already exist and are Hash, you could filter them before and use find with an array:

@models = Model.find(modellist.reject {|k, v| v < 1} .keys)

Same thing with your second example:

@pictures = Picture.find(pList.reject {|k, v| v > 0} .keys)

This way, you won't be looping over your entire database.

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You can just do this in the database directly:

@models = Model.find(:all, :conditions => ["id in (?)", modellist.select{ |i| i && i > 0}])

Or the shorter version:

@models = Model.find(modellist.select{ |i| i && i > 0})
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+1. Minor pick: I'd prefer .all to `find(:all) –  Swanand Nov 16 '11 at 14:03
    
looks good, but i get the error undefined method `>' for nil:NilClass , this is probably because i have a bunch of nil vals within the list, do you think there is a way to add a check if it is not nil, then i do this part of the query –  jack Nov 16 '11 at 21:25
    
Just replace i > 0 with i && i > 0 –  Dylan Markow Nov 16 '11 at 21:27
    
the first sol'n gives no results when it should be 2 results. The second gives -- Couldn't find all Pictures with IDs (1, 2) (found 0 results, but was looking for 2) -- maybe this is because your function took only a list of when the criteria is passed (so it would look for index 1 and 2, when my pic ids can be as high as 200, with nil vals in between for non-existent pics) –  jack Nov 16 '11 at 22:10
    
is modellist an array of integers, or is it something else? It'd be easier to diagnose if you update your question with the actual code you're using (e.g. Picture instead of Model) and a sample of what modellist might contain. –  Dylan Markow Nov 16 '11 at 22:16

Why not map the modellist array and pull out the indexes/keys with values not equal to 0, and pass that array of ids to the Model finder?

(would rustle up some code, but am not in front of my pc)

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Kinda silly to store the values in an id-indexed array, because you can't manipulate it without changing the indices and putting all the ids out of whack.

ids = []
modellist.each_index{|i| ids << i if modelist[i] > 0}
@models = Model.find ids

If modellist was a hash instead:

@models = Model.find modellist.select{|k,v| v > 0}.keys
share|improve this answer
    
i could've used either yours or benoit garrets. I just had change the if statement to if (modellist[i] && modelist[i]>0). for the second, for some reason i didn't know to declare the difference between making an array and hash. i had to change my array modellist =[] to modellist = Hash.new , then everythings perfect. thanks –  jack Nov 17 '11 at 15:00
    
No prob. I got rid of my PHP habits the same way. –  jimworm Nov 18 '11 at 7:49

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