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How do I create objects on the fly in Python? I often want to pass information to my Django templates which is formatted like this:

{'test': [a1, a2, b2], 'test2': 'something else', 'test3': 1}

which makes the template look untidy. so I think it's better to just create an object which is like:

class testclass():
    self.test = [a1,a2,b2]
    self.test2 = 'someting else'
    self.test3 = 1
testobj = testclass()

so I can do:

{{ testobj.test }}
{{ testobj.test2 }}
{{ testobj.test3 }}

instead of calling the dictionary.

Since I just need that object once, is it possible to create it without writing a class first? Is there any short-hand code? Is it ok to do it like that or is it bad Python?

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4  
Well, first you've got to get the fly to stand still. Then you need to create some VERY SMALL objects... (Sorry, couldn't resist.) – Hot Licks Dec 20 '11 at 13:19
up vote 11 down vote accepted

You can use built-in type function:

testobj = type('testclass', (object,), 
                 {'test':[a1,a2,b2], 'test2':'something else', 'test3':1})()

But in this specific case (data object for Django templates), you should use @Xion's solution.

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5  
Please don't do this. Simple is better than complex. – Karl Knechtel Dec 20 '11 at 13:33
1  
@number5 I will vote for your answer if you also suggest not to use this code! (at least not for this specific case) – Tommaso Barbugli Dec 20 '11 at 14:11
    
+1 This answers the question that I asked to Google. – MrOodles Aug 9 '12 at 20:53
1  
Although this is really handy for creating ad hoc objects for stubbing during testing, i.e. from a dictionary. Thanks. – Rohan Nicholls Dec 10 '14 at 13:54

In Django templates, the dot notation (testobj.test) can resolve to the Python's [] operator. This means that all you need is an ordinary dict:

testobj = {'test':[a1,a2,b2], 'test2':'something else', 'test3':1}

Pass it as testobj variable to your template and you can freely use {{ testobj.test }} and similar expressions inside your template. They will be translated to testobj['test']. No dedicated class is needed here.

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thank you, that solved the django related part of my problem :) i just checked the other answer because people coming here from google would probably prefer to see the python related answer. – JasonTS Dec 20 '11 at 13:34
    
@JasonTS, the python related answer would be to use Karl Knechtel's answer of collections.namedtuple. – Duncan Dec 20 '11 at 13:47

Use collections.namedtuple.

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The code below also require a class to be created however it is shorter:

 >>>d = {'test':['a1','a2','b2'], 'test2':'something else', 'test3':1}
 >>> class Test(object):
 ...  def __init__(self):
 ...   self.__dict__.update(d)
 >>> a = Test()
 >>> a.test
 ['a1', 'a2', 'b2']
 >>> a.test2
 'something else'
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