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I have 2 tables say TableA and TableB

   class A(models.Model)
      A_name = models.CharField(max_length=48,primary_key=True)
      A_version = models.DecimalField(max_digits=3, decimal_places=0,null=False,blank=False)
      A_type = models.CharField(max_length=32, blank=True)
      class Meta:
             unique_together = ("A_name", "A_version") 

   class B(models.Model)
     B_number = models.CharField(max_length=32 ,primary_key=True)
     A_name = models.ForeignKey(A,related_name="AA_name",on_delete=models.DO_NOTHING)
     A_version = models.ForeignKey(A,related_name="AA_version",on_delete=models.DO_NOTHING)
         class Meta:
             unique_together = ("B_number","A_name", "A_version") 

Now i want to do something like this: select * from A, B where B.B_name=A.A_name and B.B_version=A.A_version and A.A_type="type_name". I can't perform a get as A_type is not unique and it can return mutiple objects. Plz help

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2 Answers

No sure if this answers your question but if you want to get all objects with only one query by using join, you can use select_related:

all_b = B.objects.all().select_related('A_name', 'A_version')
some_b = all_b[0]
some_b.A_name # does not incur extra db query

If you want more control of the query, you can always add filters:

B.objects.filter(A_name__A_type='type_name').select_related('A_name', 'A_version')
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miki725, I want all data from TableB which have A_type="type_name" –  arjun Oct 18 '12 at 3:49
    
from which foreign key, A_name or A_version? –  miki725 Oct 18 '12 at 4:06
    
adjusted answer which for A_name –  miki725 Oct 18 '12 at 4:08
    
Both, Basically i want all the data from TableB which has A_type=typename and the TableA and TableB should be joined based on A_name and A_version –  arjun Oct 18 '12 at 4:09
    
Hey sorry miki725 i just saw the other piece of code you posted. I did that change but now am getting a database error. The error says: –  arjun Oct 18 '12 at 4:32
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I don't think the design of the models is very good. The A model has A_name and A_version as unique together. That means that there will always be ONE object which has a unique composition of A_name and A_version.

In model B you can reference the ID field because that will give you the unique combination A_name and A_version.

What you need to do in B:s save method is to make sure that no new or existing records gets the same B_number and A reference as already exsiting in the DB

 class B(models.Model)
     B_number = models.CharField(max_length=32, unique=True) #Don't use as primary key
     A        = models.ForeignKey(A,on_delete=models.DO_NOTHING)

    def save(self, *args, **kvargs):
        if self.id:
            try:
                b_s = B.objects.get(B_number=self.B_number, A=self.A).exclude(pk=self.id)

                #The existing combination already exists:
                raise ValueError('The combination of B_number and A already exists')

            except B.DoesNotExist:
                #No existing records violates the rule
                pass
        else:
            try:
                b_s = B.objects.get(B_number=self.B_number, A=self.A)

                #The existing combination already exists:
                raise ValueError('The combination of B_number and A already exists')

            except B.DoesNotExist:
                #No existing records violates the rule
                pass

         #All is good, no violation
         super(B, self).save(*args, **kvargs)

Once this is in place you know for sure that when you run a query on A_type the underlying B:s are unique

Example data:

ID        A_name        A_version    A_type
 1        "name1"       1.0          "type1"
 2        "name2"       1.1          "type1"
 3        "name2"       1.2          "type2"

 Model B
 ID  B_number  A
 1    "10"     1
 2    "20"     1
 3    "30"     2
 4    "40"     3

#Will return A.id=1 and A.id=2
a_s = A.objects.filter(A_type="type1")

for a in a_s:
    for b in a.b.all():
        print b.number, a.A_number, a.A_version

I make a reservation for typos since I haven't got the time to test it myself.

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