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How do I specify the column that I want in my query using a model (it selects all columns by default)? I know how to do this with the sqlalchmey session: session.query(self.col1), but how do I do it with with models? I can't do SomeModel.query(). Is there a way?

10 Answers 10

308

You can use the with_entities() method to restrict which columns you'd like to return in the result. (documentation)

result = SomeModel.query.with_entities(SomeModel.col1, SomeModel.col2)

Depending on your requirements, you may also find deferreds useful. They allow you to return the full object but restrict the columns that come over the wire.

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    with_entities() makes all() yield tuples of column values, not objects!
    – kolypto
    Jan 15, 2014 at 16:20
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    kolypto: It yields whatever you ask it to yield. SomeModel.query.with_entities(SomeModel) would yield the object. Just like session.query(SomeModel.col1, SomeModel.col2) would yield tuples of column values. Deferreds are what you'd use if you don't want columns coming over the wire, but you want the whole object anyway. Feb 6, 2014 at 17:29
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    Thanks it works. But how could we assign alias to the field ? Because in my case, I'm using JOIN and conflict ID field which is present in both table
    – Mitul Shah
    Jun 6, 2015 at 10:46
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    For alias, view this brief answer below ie. use .label() stackoverflow.com/a/11535992/248616
    – Nam G VU
    Mar 31, 2018 at 3:38
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    Note that result will just be a query, i.e. flask_sqlalchemy.BaseQuery object. You still need to execute the query - flask-sqlalchemy.palletsprojects.com/en/2.x/queries/…. For example, you can call result.all() or result.first(). May 28, 2020 at 3:22
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session.query().with_entities(SomeModel.col1)

is the same as

session.query(SomeModel.col1)

for alias, we can use .label()

session.query(SomeModel.col1.label('some alias name'))
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    The second one both sounds more logical and is shorter — win/win Jan 24, 2018 at 19:06
  • The first (and third) options are the best, by far, if you want to reuse existing query objects, especially in the case of performing multiple complex subqueries.
    – Jamie S
    Nov 28, 2019 at 9:39
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You can use load_only function:

from sqlalchemy.orm import load_only

fields = ['name', 'addr', 'phone', 'url']
companies = session.query(SomeModel).options(load_only(*fields)).all()
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    This solution is the best one as it is still working as an Object not only the list of results.
    – rborodinov
    Jul 2, 2019 at 13:09
  • Kudos to you for this solution. It has many advantages: - return exactly the same type of object as .first() and .one() (that will lazy/eager load fields and relations), - can be set as query component
    – Damien
    Apr 21, 2020 at 5:28
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    the code is clean but the sql query selects all fields from the database. I have used with_entities as given in the accepted answer and the query selected only that fields/. May 5, 2020 at 0:34
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    This returns the whole object.
    – alercelik
    Sep 29, 2020 at 12:50
  • This is not working, is returning the entire object. Jun 3, 2021 at 18:58
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You can use Model.query, because the Model (or usually its base class, especially in cases where declarative extension is used) is assigned Sesssion.query_property. In this case the Model.query is equivalent to Session.query(Model).

I am not aware of the way to modify the columns returned by the query (except by adding more using add_columns()).
So your best shot is to use the Session.query(Model.col1, Model.col2, ...) (as already shown by Salil).

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  • I believe there may also be a way to do this with a list of columns for query values() too, docs.sqlalchemy.org/en/latest/orm/… - but the syntactic sugar for the list eludes me at the moment.
    – JGFMK
    Feb 8, 2018 at 17:37
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You can use Query.values, Query.values

session.query(SomeModel).values('id', 'user')

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I usually use this snippet:

fields = ["col1", "col2", ...]\
session.query(map(lambda x: getattr(SomeModel.c, x), fields))
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  • I still had to use add_columns; not sure what is missing, but the idea is nice.
    – Nishant
    Dec 12, 2021 at 11:37
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result = ModalName.query.add_columns(ModelName.colname, ModelName.colname)

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    Could you please provide a bit more context for your answer? Why and how it works can help other people with similar problems. Thanks!
    – creyD
    Jun 21, 2021 at 9:00
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As session.query(SomeModel.col1) returns an array of tuples like this [('value_1',),('value_2',)] if you want t cast the result to a plain array you can do it by using one of the following statements:

values = [value[0] for value in session.query(SomeModel.col1)]
values = [model.col1 for model in session.query(SomeModel).options(load_only('col1'))]

Result:

 ['value_1', 'value_2']
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An alternate syntax to fetch entity with specific columns:

any_query.with_entities(Entity).options(load_only(Entity.col))
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An example here:

movies = Movie.query.filter(Movie.rating != 0).order_by(desc(Movie.rating)).all()

I query the db for movies with rating <> 0, and then I order them by rating with the higest rating first.

Take a look here: Select, Insert, Delete in Flask-SQLAlchemy

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