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In IPython I type the following program

def foo():
   ...:     return 2
   ...: print(foo())

I would expect to see the output '2'.I don't see anything of that sort?I can't seem to figure out why?

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3  
add a newline after the return – J.F. Sebastian Apr 13 '14 at 0:32
    
This example works for me and prints 2. – ebarr Apr 13 '14 at 0:32
up vote 3 down vote accepted

IPython expects another a newline after your return statement, so just hit the enter key when you're done defining foo. It won't finish letting you define foo until you've closed the last level of indentation.

You may also notice that when you add the newline IPython immediately executes the print function in the code block you've just defined.

In [1]: def foo():
   ...:     return 2
   ...: print(foo())
   ...: 
2

In [2]:

If you want to avoid that side effect define your foo function, add a newline after your return to close off the function definition, and then call print separately like so:

In [1]: def foo():
   ...:     return 2
   ...: 

In [2]: print(foo())
2

In [3]:

Even if you do choose to write your code block the way you've written it now foo will still be defined as expected since your call to print is outside the scope of foo. Any subsequent calls to foo should work as expected.

In [1]: def foo():
   ...:     return 2
   ...: print(foo())
   ...: 
2

In [2]: foo??
Type:       function
String Form:<function foo at 0x246cde8>
File:       /home/siemenr/<ipython-input-1-f97d0fe9d8f9>
Definition: foo()
Source:
def foo():
    return 2

In [3]: print(foo())
2

In [4]:
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