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class Sample(models.model):
sampleID = models.AutoField(primary_key=True)
    something = models.IntegerField()
    .
    .
    .

def save(self, *args, **kwargs):
    is_new = self.pk is None
    super(Sample, self).save(*args, **kwargs)
    if is_new:
        alpha = AnotherSample()
        alpha.asampleID =  self.pk
        alpha.say = "Lolz"
        alpha.save()

I cannot assign my primary key to the AnotherSample's referencing key for Sample. It always say

Cannot assign "1L": "AnotherSample.asampleID" must be a "Sample" instance.
share|improve this question

From the docs:

Behind the scenes, Django appends "_id" to the field name to create its database column name.

alpha.asampleID_id = self.pk

This is why having a suffix of "ID" is inappropriate.

share|improve this answer
    
also alpha.pk is allowed? – danihp Sep 30 '12 at 16:55
    
@danihp: Sure. But that doesn't mean that there's a Sample with that PK. – Ignacio Vazquez-Abrams Sep 30 '12 at 16:57
    
sampleID is the PK ... – danihp Sep 30 '12 at 16:59

From the given error message, it looks like you are trying to save a relationship. You should pass the actual object, not its primary key.

def save(self, *args, **kwargs):
    is_new = self.pk is None
    super(Sample, self).save(*args, **kwargs)
    if is_new:
        alpha = AnotherSample()
        alpha.asampleID =  self
        alpha.say = "Lolz"
        alpha.save()
share|improve this answer

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