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In python how can we create a new object without having a predefined Class and later dynamically add properties to it ?

example:

dynamic_object = Dynamic()
dynamic_object.dynamic_property_a = "abc"
dynamic_object.dynamic_property_b = "abcdefg"

What is the best way to do it?

EDIT Because many people advised in comments that I might not need this.

The thing is that I have a function that serializes an object's properties. For that reason, I don't want to create an object of the expected class due to some constructor restrictions, but instead create a similar one, let's say like a mock, add any "custom" properties I need, then feed it back to the function.

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1  
What exactly is a "dynamic property"? as in setattr(dynamic_object, variable_with_property_name, variable_with_property_value)? you need a collection to associate some 'properties' to values, and the "type" of that thing is used in one place... could you maybe really want a dict? –  SingleNegationElimination Dec 24 '12 at 1:05
    
@TokenMacGuy check updated question –  Jimmy Kane Dec 24 '12 at 9:40

4 Answers 4

up vote 17 down vote accepted

Just define your own class to do it:

class Expando(object):
    pass

ex = Expando()
ex.foo = 17
ex.bar = "Hello"
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1  
This. Defining a class is cheap, why not use just them? –  Martijn Pieters Dec 23 '12 at 23:45
    
Is it ok if I define the Expando class inside a the only function that needs the dynamic object ? –  Jimmy Kane Dec 24 '12 at 0:22
1  
@JimmyKane: that sounds suspiciously like a different question, but yes, its "ok"; on the other hand, it doesn't buy you a thing; put it at the module scope and save the overhead of creating one-use classes. –  SingleNegationElimination Dec 24 '12 at 1:02
1  
@JimmyKane: It sounds suspiciously much like you wanted to use a namedtuple class instead. –  Martijn Pieters Dec 24 '12 at 8:24
    
@MartijnPieters Please check updated question. –  Jimmy Kane Dec 24 '12 at 9:39

Using an object just to hold values isn't the most Pythonic style of programming. It's common in programming languages that don't have good associative containers, but in Python, you can use use a dictionary:

my_dict = {} # empty dict instance

my_dict["foo"] = "bar"
my_dict["num"] = 42

You can also use a "dictionary literal" to define the dictionary's contents all at once:

my_dict = {"foo":"bar", "num":42}

Or, if your keys are all legal identifiers (and they will be, if you were planning on them being attribute names), you can use the dict constructor with keyword arguments as key-value pairs:

my_dict = dict(foo="bar", num=42) # note, no quotation marks needed around keys

Filling out a dictionary is in fact what Python is doing behind the scenes when you do use an object, such as in Ned Batchelder's answer. The attributes of his ex object get stored in a dictionary, ex.__dict__, which should end up being equal to an equivalent dict created directly.

Unless attribute syntax (e.g. ex.foo) is absolutely necessary, you may as well skip the object entirely and use a dictionary directly.

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Did you try your code? You can't add attributes to an object(). –  Ned Batchelder Dec 24 '12 at 2:06
    
Hmm, how odd, I could have sworn I'd done it before. I'll take that part out and just leave the part about the dicts, which was my main suggestion. –  Blckknght Dec 24 '12 at 2:28
1  
Or use the collections.namedtuple class factory.. –  Martijn Pieters Dec 24 '12 at 8:24

Use the collections.namedtuple() class factory to create a custom class for your return value:

from collections import namedtuple
return namedtuple('Expando', ('dynamic_property_a', 'dynamic_property_b'))('abc', 'abcdefg')

The returned value can be used both as a tuple and by attribute access:

print retval[0]                  # prints 'abc'
print retval.dynamic_property_b  # prints 'abcdefg'  
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One way that I found is also by creating a lambda. It can have sideeffects and comes with some properties that are not wanted. Just posting for the interest.

dynamic_object = lambda:expando
dynamic_object.dynamic_property_a = "abc"
dynamic_object.dynamic_property_b = "abcdefg"
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6  
You created a lambda. That's not the best way to create an instance; the fact that you can add attributes to it is now being used as a side-effect. –  Martijn Pieters Dec 23 '12 at 23:43
1  
wow, weird..... –  Ned Batchelder Dec 23 '12 at 23:45
1  
Note that this comes with a couple of attributes predefined (for instance, try dynamic_object.__name__) –  David Robinson Dec 23 '12 at 23:46
    
@DavidRobinson Yes this might create a problem. Indeed you are right. –  Jimmy Kane Dec 24 '12 at 0:40

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