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I have a generator defined like this:

def lengths(x):
    for k, v in x.items():
        yield v['time_length']

And it works, calling it with

for i in lengths(x):
    print i

produces:

3600
1200
3600
300

which are the correct numbers.

However, when I call it like so:

somefun(lengths(x))

where somefun() is defined as:

def somefun(lengths):
    for length in lengths():  # <--- ERROR HERE
        if not is_blahblah(length): return False

I get this error message:

TypeError: 'generator' object is not callable

What am I misunderstanding?

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1 Answer 1

up vote 7 down vote accepted

You don't need to call your generator, remove the () brackets.

You are probably confused by the fact that you use the same name for the variable inside the function as the name of the generator; the following will work too:

def somefun(lengen):
    for length in lengen:
        if not is_blahblah(length): return False

A parameter passed to the somefun function is then bound to the local lengen variable instead of lengths, to make it clear that that local variable is not the same thing as the lengths() function you defined elsewhere.

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That simple huh... :-D –  Prof. Falken Aug 22 '12 at 13:55
    
@AmigableClarkKant, what was the logic to put the parentheses there in the first place? –  unkulunkulu Aug 22 '12 at 13:56
    
@unkulunkulu: probably confusion with the function name that produces the generator. –  Martijn Pieters Aug 22 '12 at 13:56
2  
@AmigableClarkKant, :) logic is a great tool for a begginer. I mean, parameters to functions work close to 'replace with'. So if you replaced your lengths parameter with what you supply to the function (lengths(x)), then you would get for length in lengths(x)(): line, looks weird right :) –  unkulunkulu Aug 22 '12 at 13:59
2  
@AmigableClarkKant, then we are welcoming you in the warm lands of python where logic works and programmers are happy. –  unkulunkulu Aug 22 '12 at 16:05

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