Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Problem: User(B) needs help from a set of Users(A) based on certain criteria. This criteria is set by Users(A) in their profile.

class UsersAProfiles(db.Model):
    industries = db.StringListProperty()  #technology, etc. (total 20)
    agegroups  = db.StringListProperty()  #teenagers, etc. (total 10)
    tags       = db.StringListProperty()  #cooking, etc.
    (while each User A can enter at most 10 tags, but there is no limit on 
     what tags are used, e.g., sql, gym, etc. (limited by dictionary!)
    ...                                   #there are many other properties

User(B)'s sets the criteria that is stored separately

class UserBRequestForHelp(db.Model):
    myindustries = db.StringListProperty()  #technology, etc. (<20)
    myagegroups  = db.StringListProperty()  #teenagers, etc. (<10)
    mytags       = db.StringListProperty()  #cooking, etc.
    ...                                     #there are many other properties

Now I need list of all Users A that can potentially help B. For that I try to run the following query:

query = db.GqlQuery("SELECT * FROM UsersAProfiles WHERE 
        industries IN :1 AND 
        agegroups  IN :2 AND
        tags       IN :3", 
        userB_obj.myindustries , userB_obj.myagegroups, userB_obj.mytags)

But I get the following error:

  Cannot satisfy query -- too many IN/!= values.

I am really stuck here and don't know how to solve this problem. How to run such queries. Furthermore, do I need to design the model classes differently so that I can run such queries? If yes, could someone please help.

Thanks a ton in advance!

share|improve this question

When you create a query using IN, GAE has to break that query into a number of "index = value" subqueries, executing each and collecting the results assembling them as though they had been one search. There is a limit to the number of subqueries that a query can expand out to, and that limit is 30. If you're creating queries with 31 subqueries, that would explain why you are running into this. In other words, your situation is that len(userB_obj.myindustries) + len(userB_obj.myagegroups) + len(userB_obj.mytags) > 30.

share|improve this answer
    
Thanks for the information. Greatly appreciate it. I was also wondering what the solution should be. (just came up with an alternative solution (slept thinking about the solution and let the subconscious mind work over it last night :-)). Will post the answer soon. Thank again for the information! – dev-vb Feb 11 '13 at 19:26
up vote 0 down vote accepted

For problems like above, the following approach may be useful.

  1. List TAGS in a separate model with list of all matching UserA profiles.

    class TAGS(db.Model):
        UserAIds  = db.StringListProperty() 
    

    In the above, each tag is the key. (tag = technology, teenagers, cooking, etc.)

  2. When User B sets the criteria, then to find matching Users A, the queries that we can run are as follows:

    i = 0
    for industry in userB_obj.myindustries:
          t1_obj[i] = TAGS.get_by_key_name(industry)
          i = i + 1
    

    (in the above t1_obj[i] you have list of User A profiles that have matching industries)

    j = 0
    for agegroup in userB_obj.myagegroups:
          t2_obj[j] = TAGS.get_by_key_name(agegroup)
          j = j + 1
    

    (in the above t2_obj[j] you have list of User A profiles that have matching agegroups)

    k = 0
    for tag in userB_obj.mytags:
          t3_obj[k] = TAGS.get_by_key_name(tag)
          k = k + 1
    

    (in the above t3_obj[k] you have list of User A profiles that have matching tags)

  3. Next, all you need to do is find UserA profiles that are present in ALL three, i.e., t1_obj, t2_obj, t3_obj and that's all! Now to find UserA profiles that are present in all 3 above, not sure if there is a python function that can do that. But, using model instances you can solve it as follows

    class MatchingUserAs(db.Model):
          count  = db.IntegerProperty(default=0) 
          source = db.StringProperty(default=None)
    

    (in the above model class, UserA id is the key. This UserAids are stored in t1_key[i].UserAIds, t2_key[j].UserAids, t3_key[k].UserAIds)

  4. Now, loop through t1_obj[i], t2_obj[j], t3_obj[k] and insert UserA id in MatchingUserAs and increment the count by 1 each time you insert a row / update a row.

    <"loop through t1_obj[i]">:
          Matchkey = MatchingUserAs.get_or_insert(t1_obj[i].UserAId)
          Matchkey.count = 1
          Matchkey.source = 'industry'
          Matchkey.put()
    
    <"loop through t2_obj[j]">:
          Matchkey = MatchingUserAs.get_or_insert(t2_obj[j].UserAId)
          #the following if check has been added to avoid incrementing the counter
          #when same UserAid is present in, say, t2_obj[0], and t2_obj[1], etc.
          if(Matchkey.source != 'agegroup')
              Matchkey.count  = Matchkey.count + 1
              Matchkey.source = 'agegroup'
          Matchkey.put()
    
    <"loop through t3_obj[j]">:
          Matchkey = MatchingUserAs.get_or_insert(t3_obj[j].UserAId)
          if(Matchkey.source != 'tags')
              Matchkey.count  = Matchkey.count + 1
              Matchkey.source = 'tags'
          Matchkey.put()
    
  5. Now, all you need to do is fetch those UserAs from MatchingUserAs with a count of 3 (because there are 3 list of tags that we want to match: industries, agegroups, and tags).

There may be some syntax errors in above code samples especially for keys and objects usage; and in some cases pseudocode has been used. I just wanted to give an overview of the solution. Hope this helps. Feel free to share any comments.

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.