28

given a standard model (called Image) with an autoset 'id', how do I get the max id?

So far I've tried:

max_id = Image.objects.all().aggregate(Max('id'))

but I get a 'id__max' Key error.

Trying

max_id = Image.objects.order_by('id')[0].id

gives a 'argument 2 to map() must support iteration' exception

Any help?

  • Why do you want the max id? Do you want the last thing loaded? The thing with the largest date? The ID's are random numbers, they don't mean much and there's no guarantee that max(id) has any useful properties at all. What are you really trying to do? – S.Lott May 21 '10 at 18:21
46

Just order by reverse id, and take the top one.

Image.objects.all().order_by("-id")[0]
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  • 1
    Isn't this going to evaluate the queryset and perform object construction? Image.objects.values('id').aggregate(min_id=Min('id')) would produce a single-key dict containing the min_id. Maybe this wasn't possible 10 years ago. – Ivan Jan 10 at 20:20
69

In current version of django (1.4) it is even more readable

Image.objects.latest('id').id

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  • 3
    If there are no objects this will throw a Image.DoesNotExist exception – Necrolyte2 Mar 7 '13 at 16:38
  • 4
    Yes and previous answer will raise IndexError in this case. – Raz Mar 8 '13 at 18:10
  • 1
    It works on any field. Look at the source. It is just syntax sugar for QuerySet.order_by('-%s' % field)[:1].get(). – Raz Apr 3 '14 at 7:04
  • 1
    Only works if there is at least one object, try catch would be appropriate along with this. – Mutant Dec 5 '14 at 15:19
  • To save other people time, this is how you would do it: from django.db import models max_id = None try: max_id = Image.objects.latest('id').id except models.DoesNotExist: pass – theQuestionMan Oct 16 at 1:05
14

I know this already has a right answer but here it's another way of doing it:

prev = Image.objects.last()

This gives you the last object.

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3

Your logic is right, this will return the max id

res = Image.objects.filter().aggregate(max_id=Max('pk'))
res.get('max_id')
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  • 1
    filter() is redundant, just res = Image.objects.aggregate(max_id=Max('pk')) – Stan Zeez Jun 18 '19 at 8:27
2

this also work perfectly:

max_id = Image.objects.values('id').order_by('-id').first()
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-1

Latest object without catching exception and using django orm:

Image.objects.filter().order_by('id').first()

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  • 1
    First would return the smallest id, wouldn't it? Shouldn't you use last()? or '-' with id to give descending? – TzurEl Nov 7 '18 at 14:17

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