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def foo(i):
  print len(A)
  return i < len(A)

if __name__ == '__main__':
  A = [12]
  print A 
  foo(10)

How can foo know about A?

I am writing this because stackoverflow insists that I write some more words.

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1  
A is a global name. It is visible to the functions in the same namespace, aka the current module. –  CppLearner Oct 16 '13 at 21:40
    
since you do it in if __name__ == "__main__": any variables are part of the global namespace ... which is searched if a variable cant be found in the local namespace ... if you created it in a function named main it would not be visible outside of that function unless it was explicitly declared as global –  Joran Beasley Oct 16 '13 at 21:40
    
This question (stackoverflow.com/questions/291978/…) has more information about how scope works in python. Basically if statements don't create a new scope so A is in the global scope. –  axblount Oct 16 '13 at 21:43

3 Answers 3

up vote 4 down vote accepted

A is a global variable. You may be thinking that it is local to the if __name__ == '__main__' block, but if statements do not create a separate namespace in Python. When foo is executed (not defined) the variable A exists in the global namespace so your current code runs without any issues.

If you want to see your expected behavior move everything from that block into a function and then call that from within the if __name__ == '__main__' block:

def foo(i):
  print len(A)      # A is local to main(), so this will raise an exception
  return i < len(A)

def main():
  A = [12]
  print A 
  foo(10)

if __name__ == '__main__':
  main()
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Check the generated bytecode:

>>> dis.dis(foo)
  2           0 LOAD_GLOBAL              0 (print) 
              3 LOAD_GLOBAL              1 (len) 
              6 LOAD_GLOBAL              2 (A) 
              9 CALL_FUNCTION            1 (1 positional, 0 keyword pair) 
             12 CALL_FUNCTION            1 (1 positional, 0 keyword pair) 
             15 POP_TOP              

  3          16 LOAD_FAST                0 (i) 
             19 LOAD_GLOBAL              1 (len) 
             22 LOAD_GLOBAL              2 (A) 
             25 CALL_FUNCTION            1 (1 positional, 0 keyword pair) 
             28 COMPARE_OP               0 (<) 
             31 RETURN_VALUE

To load the A variable it uses the LOAD_GLOBAL opcode. So, when the function runs (and not at definition) it will search for this variable in the global namespace

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+1 because you were the first to answer and you went through the trouble to pull up the bytecode. –  CppLearner Oct 16 '13 at 21:44

Because A is defined in the global scope, and isn't looked up in the function until it's called.

It's the same reason

def should_fail():
   print undefined_variable

print "runs OK!"

runs OK.

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