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

So QuerySets are "lazy" and only run in certain instances (repr,list,etc.). I have created a custom QuerySet for doing many queries, but these could end up having millions of items!! That is way more than I want to return.

When returning the evaluated QuerySet, it should not have more than 25 results! Now I know I could do the following:

first = example.objects.filter(...)
last = first.filter(...)
result = last[:25]
#do stuff with result

but I will be doing so many queries with example objects that I feel it unnecessary to have the line result = last[:25]. Is there a way to specify how a QuerySet is returned?

If there is, how can I change it so that whenever the QuerySet would be evaluated it only returns the first x items in the QuerySet where, in this case, x = 25

Important note:

slicing must be on evaluation because that way I can chain queries without limited results, but when I return a result upon evaluation, it would have a max of x

share|improve this question

I'm not sure I understand what your issue with slicing the queryset is. If it's the extra line of code or the hardcoded number that's bothering you, you can run

example.objects.filter(**filters)[:x]

and pass x into whatever method you're using.

share|improve this answer
    
it's the extra line of code, I know I can use x, I just feel it unnecessary because this will be called many times, like thousands, and I can't do it for each custom filter because slicing evaluates it and then you wouldn't be able to chain – Ryan Saxe Nov 22 '13 at 21:31
    
Docs say: "Generally, slicing a QuerySet returns a new QuerySet – it doesn’t evaluate the query." So I'd say your answer is the way to go. – XORcist Nov 22 '13 at 21:31
    
@möter "Generally", there are cases in which it does, time is excruciatingly important and I cannot risk it evaluating. Also this is for an API and it would break the API – Ryan Saxe Nov 22 '13 at 21:34
    
@möter Plus, I would then have to put a slice at the end of every single query method, in which there are over 50 and many will continue to be added. If I could have it simply always return the first x results, that would be ideal. – Ryan Saxe Nov 22 '13 at 21:35
    
@RyanSaxe Generally here means when not slicing with the 'step' argument. – XORcist Nov 22 '13 at 21:36

You can write a custom Manager:

class LimitedNumberOfResultsManager(models.Manager):
    def get_queryset(self):
        return super(LimitedNumberOfResultsManager, self).get_queryset()[:25]

Note: You may think that adding a slice here will immediately evaluate the queryset. It won't. Instead information about the query limit will be saved to an underlying Query object and used later, during the final evaluation - as long as it is not overwritten by an another slice in the meantime.

Then add the manager to your model:

class YourModel(models.Model):
    # ...

    objects = LimitedNumberOfResultsManager()

After setting this up YourModel.objects.all() and other operations on your queryset will always return only up to 25 results. You can still overwrite this any time using slicing. For example:

This will return up to 25 resuls:

YourModel.objects.filter(lorem='ipsum')

but this will return up to 100 resuls:

YourModel.objects.filter(lorem='ipsum')[:100]

One more point. Overwriting the default manager may be confusing to other people reading your code. So I think it would be better to leave the default manager alone and use the custom one as an optional alternative:

class YourModel(models.Model):
    # ...

    objects = models.Manager()
    limited = LimitedNumberOfResultsManager()

With this set up this will return all results:

YourModel.objects.all()

and this will return only up to 25 results:

YourModel.limited.all()

Depending on your exact use case you man also want to look at pagination in Django.

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.