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If I set up a class like below in Python, as I expect the lambda expressions created should be bound to the class A. I don't understand why when I put a lambda inside a list like in g it isn't bound.

class A(object):
  f = lambda x,y: (x + y)
  g = [lambda x,y: (x + y)]


a = A()

#a.f bound
print a.f
<bound method A.<lambda> of <__main__.A object at 0xb743350c>>

#a.g[0] not bound
print a.g[0]
<function <lambda> at 0xb742d294>

Why is one bound and not the other?

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Do you mean a.f instead of a.l? –  Ismail Badawi Jun 30 '11 at 5:04
    
yes. fixed, sorry –  Mike Jun 30 '11 at 5:05

2 Answers 2

up vote 15 down vote accepted

f is bound because it's a part of the class as per the definition. g is not a method. g is a list. The first element of this list incidentally happens to be a lambda expression. That's got nothing to do with whether g is defined inside a class definition or not.

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2  
docs.python.org/reference/… "User-defined methods" –  Ned Deily Jun 30 '11 at 5:16

If you want g[0] to be a bound method too, do:

class A(object):
  f = lambda x,y: (x + y)
  _ = lambda x,y: (x + y)
  g = [_]
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