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Is there a simple way to iterate over column name and value pairs?

My version of sqlalchemy is 0.5.6

Here is the sample code where I tried using dict(row), but it throws exception , TypeError: 'User' object is not iterable

import sqlalchemy
from sqlalchemy import *
from sqlalchemy.ext.declarative import declarative_base
from sqlalchemy.orm import sessionmaker

print "sqlalchemy version:",sqlalchemy.__version__ 

engine = create_engine('sqlite:///:memory:', echo=False)
metadata = MetaData()
users_table = Table('users', metadata,
     Column('id', Integer, primary_key=True),
     Column('name', String),
)
metadata.create_all(engine) 

class User(declarative_base()):
    __tablename__ = 'users'

    id = Column(Integer, primary_key=True)
    name = Column(String)

    def __init__(self, name):
        self.name = name

Session = sessionmaker(bind=engine)
session = Session()

user1 = User("anurag")
session.add(user1)
session.commit()

# uncommenting next line throws exception 'TypeError: 'User' object is not iterable'
#print dict(user1)
# this one also throws 'TypeError: 'User' object is not iterable'
for u in session.query(User).all():
    print dict(u)

Running this code on my system outputs:

sqlalchemy version: 0.5.6
Traceback (most recent call last):
  File "untitled-1.py", line 37, in <module>
    print dict(u)
TypeError: 'User' object is not iterable
share|improve this question
    
Repeating @S.Lott - please update your question with (a) the smallest piece of code that shows the problem and (b) the real error traceback. It's very hard to do this through comments and summaries of the code. Basically, when people answer the wrong question, you need to update your question so people answer the right one. –  Omnifarious Dec 24 '09 at 14:11
    
@Omnifarious , thanks for reminding me, I have added code now. –  Anurag Uniyal Dec 25 '09 at 5:14

14 Answers 14

up vote 47 down vote accepted

I couldn't get a good answer so I use this:

def row2dict(row):
    d = {}
    for column in row.__table__.columns:
        d[column.name] = str(getattr(row, column.name))

    return d

Edit: if above function is too long and not suited for some tastes here is a one liner (python 2.7+)

row2dict = lambda r: {c.name: str(getattr(r, c.name)) for c in r.__table__.columns}
share|improve this answer
7  
More succinctly, return dict((col, getattr(row, col)) for col in row.__table__.columns.keys()). –  argentpepper Mar 30 '12 at 19:13
1  
@argentpepper yeah you may even do row2dict = lambda row: dict((col, getattr(row, col)) for col in row.__table__.columns.keys()) to make it a real one liner, but I prefer my code to be readable, horizontally short, vertically long –  Anurag Uniyal Mar 30 '12 at 19:47
3  
What if my Column isn't assigned to an attribute of the same name? IE, x = Column('y', Integer, primary_key=True) ? None of these solutions work in this case. –  Buttons840 May 31 '12 at 20:46
3  
Warning: __table__.columns.keys() won't work, because columns dictionary keys are not always strings (as getattr requires), but possibly all sorts of objects like sqlalchemy.sql.expression._truncated_label. Using c.name instead of c works for me. –  drdaeman Jul 14 '12 at 17:49
4  
drdaeman is right, here is the correct snippet: return {c.name: getattr(self, c.name) for c in self.__table__.columns} –  charlax Aug 9 '12 at 13:41

You may access the internal __dict__ of a SQLAlchemy object, like the following::

for u in session.query(User).all():
    print u.__dict__
share|improve this answer
5  
Best answer in this thread, don't know why everyone else is proposing much more complicated solutions. –  Dave Rawks Jun 15 '12 at 15:45
2  
Thanks dude. Simple solution takes more effort than complicated solution. I guess as long as it solves the problem, most people do not care. –  hllau Jun 16 '12 at 5:07
    
this doesn't work –  Alex Okrushko Aug 3 '12 at 16:47
21  
This gives an extra '_sa_instance_state' field, at least in version 0.7.9. –  LucianU Oct 29 '12 at 13:04
1  
jberger, it's not a column name, so you have to remove it separately afterwards. –  LucianU Sep 27 '13 at 14:26
from sqlalchemy.orm import class_mapper

def asdict(obj):
    return dict((col.name, getattr(obj, col.name))
                for col in class_mapper(obj.__class__).mapped_table.c)
share|improve this answer
3  
Be aware of the difference between local_table and mapped_table. For example, if you apply some sort of table inheritance in your db (tbl_employees > tbl_managers, tbl_employees > tbl_staff), your mapped classes will need to reflect this (Manager(Employee), Staff(Employee)). mapped_table.c will give you the column names of both the base table and the inheriting table. local_table only gives you the name of your (inheriting) table. –  mike Jul 13 '12 at 21:49
    
This avoids giving the '_sa_instance_state' field, at least in version 0.8+. –  DJStroky Aug 15 '13 at 20:22
for row in resultproxy:
    row_as_dict = dict(row)
share|improve this answer
    
It says 'XXX object is not iterable', I am using 0.5.6, i get by session.query(Klass).filter().all() –  Anurag Uniyal Dec 24 '09 at 13:13
    
@Anurag Uniyal: Please update your question with (a) the smallest piece of code that shows the problem and (b) the real error traceback. It's very hard to do this through comments and summaries of the code. –  S.Lott Dec 24 '09 at 13:47
1  
Then you're using the ORM, which is entirely different from your actual question. This is a pretty basic thing which is thoroughly covered in the documentation: sqlalchemy.org/docs/05/ormtutorial.html –  Alex Brasetvik Dec 24 '09 at 14:04
    
Please see the updated code, I am using same example given in the links you have mentioned, I also see no use of dict there? –  Anurag Uniyal Dec 25 '09 at 5:15

The expression you are iterating through evaluates to list of model objects, not rows. So the following is correct usage of them:

for u in session.query(User).all():
    print u.id, u.name

Do you realy need to convert them to dicts? Sure, there is a lot of ways, but then you don't need ORM part of SQLAlchemy:

result = session.execute(User.__table__.select())
for row in result:
    print dict(row)

Update: Take a look at sqlalchemy.orm.attributes module. It has a set of functions to work with object state, that might be useful for you, especially instance_dict().

share|improve this answer
1  
I want to convert them to dict to, because some other code needs data as dict, and i want a generic way because I will not know what columns a model object have –  Anurag Uniyal Dec 25 '09 at 5:56
    
and when I get handle to them I have access to model objects only so i can't use session.execute etc –  Anurag Uniyal Dec 25 '09 at 5:57

I've found this post because I was looking for a way to convert a SQLAlchemy row into a dict. I'm using SqlSoup... but the answer was built by myself, so, if it could helps someone here's my two cents:

a = db.execute('select * from acquisizioni_motes')
b = a.fetchall()
c = b[0]

# and now, finally...
dict(zip(c.keys(), c.values()))
share|improve this answer
    
or, if you prefer..: [ dict(zip(i.keys(), i.values())) for i in b ] –  Mychot sad Aug 4 '12 at 16:38

as @balki mentioned:

The _asdict() method can be used if you're querying a specific field because it is returned as a KeyedTuple.

In [1]: foo = db.session.query(Topic.name).first()
In [2]: foo._asdict()
Out[2]: {'name': u'blah'}

Whereas, if you do not specify a column you can use one of the other proposed methods - such as the one provided by @charlax. Note that this method is only valid for 2.7+.

In [1]: foo = db.session.query(Topic).first()
In [2]: {x.name: getattr(foo, x.name) for x in foo.__table__.columns}
Out[2]: {'name': u'blah'}
share|improve this answer

Here is how Elixir does it. The value of this solution is that it allows recursively including the dictionary representation of relations.

http://elixir.ematia.de/trac/browser/elixir/tags/0.7.0/elixir/entity.py#L1054

share|improve this answer

rows have an _asdict() function which gives a dict

In [8]: r1 = db.session.query(Topic.name).first()

In [9]: r1
Out[9]: (u'blah')

In [10]: r1.name
Out[10]: u'blah'

In [11]: r1._asdict()
Out[11]: {'name': u'blah'}
share|improve this answer

I have a variation on Marco Mariani's answer, expressed as a decorator. The main difference is that it'll handle lists of entities, as well as safely ignoring some other types of return values (which is very useful when writing tests using mocks):

@decorator
def to_dict(f, *args, **kwargs):
  result = f(*args, **kwargs)
  if is_iterable(result) and not is_dict(result):
    return map(asdict, result)

  return asdict(result)

def asdict(obj):
  return dict((col.name, getattr(obj, col.name))
              for col in class_mapper(obj.__class__).mapped_table.c)

def is_dict(obj):
  return isinstance(obj, dict)

def is_iterable(obj):
  return True if getattr(obj, '__iter__', False) else False
share|improve this answer

Following @balki answer, since SQLAlchemy 0.8 you can use _asdict(), available for KeyedTuple objects. This renders a pretty straightforward answer to the original question. Just, change in your example the last two lines (the for loop) for this one:

for u in session.query(User).all():
   print u._asdict()

This works because in the above code u is an object of type class KeyedTuple, since .all() returns a list of KeyedTuple. Therefore it has the method _asdict(), which nicely returns u as a dictionary.

WRT the answer by @STB: AFAIK, anithong that .all() returns is a list of KeypedTuple. Therefore, the above works either if you specify a column or not, as long as you are dealing with the result of .all() as applied to a Query object.

share|improve this answer
class User(object):
    def to_dict(self):
        return dict([(k, getattr(self, k)) for k in self.__dict__.keys() if not k.startswith("_")])

That should work.

share|improve this answer
    
what happens if column name starts with "_" ? –  Anurag Uniyal Feb 11 '10 at 15:54
1  
I would imagine that you really shouldn't name your columns with a leading underscore. If you do, it won't work. If it's just the odd one, that you know about, you could modify it to add those columns. –  Singletoned Feb 12 '10 at 23:29

Here is a super simple way of doing it

row2dict = lambda r: dict(r.items())
share|improve this answer

The easiest way I found (using sqla 0.7.8):

dictlist = [dict(row) for row in somequery.execute().fetchall()]
share|improve this answer

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