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Maybe a silly question but I noticed that my code has many statements like this:

var = "some_string"
var = some_func(var)
var = another_func(var)
print var # outputs "modified_string"

It's really annoying me, it's just look awful (in the opposite of whole python) How to avoid using that and start using it in way like this:

var = "some_string"
modify(var, some_func)
modify(var, another_func)
print var # outputs "modified_string"

Thank you in advance

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3  
In my experience, it is best to avoid side-effect like this. Instead, return the value (as in the first example). If there are multiple values, they might be wrapped compound type like a Tuple (and then decomposed by the caller). Alternatively, perhaps the problem is "just too many repeat assignments"? Consider: print another_func(some_func("some_string")) –  user166390 Jun 17 '11 at 23:36
    
possible duplicate of Python: How do I pass a variable by reference? –  Chris Lutz Jun 18 '11 at 0:06
3  
How does x = func(x) look worse than modify(x, func)? I'm 100% clear on what the first example should do, and 0% clear on what the second ought to do. –  Chris Lutz Jun 18 '11 at 0:09
    
@Chris Lutz, I'm not certain this is a duplicate. The literal question is "how do I pass a variable by reference," but the real question is "how do I avoid repeatedly assigning a new value to the same variable name." That's actually an interesting and worthwhile question. –  senderle Jun 18 '11 at 0:12
    
@senderle - I suppose something like x = chain_funcs(func1, func2, ..., x) would be kinda okay. It'd make the order of calling a bit ambiguous though. –  Chris Lutz Jun 18 '11 at 0:22

6 Answers 6

In fact, there's been at least one attempt to add a compose function to functools. I guess I understand why they didn't... But hey, that doesn't mean we can't make one ourselves:

def compose(f1, f2):
    def composition(*args, **kwargs):
        return f1(f2(*args, **kwargs))
    return composition

def compose_many(*funcs):
    if len(funcs) == 1:
        return funcs[0]
    if len(funcs) == 2:
        return compose(funcs[0], funcs[1])
    else:
        return compose(funcs[0], compose_many(*funcs[1:]))

Tested:

>>> def append_foo(s):
...     return s + ' foo'
... 
>>> def append_bar(s):
...     return s + ' bar'
... 
>>> append_bar(append_foo('my'))
'my foo bar'
>>> compose(append_bar, append_foo)('my')
'my foo bar'
>>> def append_baz(s):
...     return s + ' baz'
... 
>>> compose_many(append_baz, append_bar, append_foo)('my')
'my foo bar baz'

Come to think of it, this probably isn't the best solution to your problem. But it was fun to write.

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+1 for "fun to write" :-) –  kindall Jun 18 '11 at 1:47
    
Wow! I really over-engineered that one. Apart from there being a much simpler recursive solution, there's even a one-liner! lambda lst: reduce(lambda x, y: lambda *args, **kwargs: x(y(*args, **kwargs)), lst). It's not pretty, but it works; see here for a lambda-free version using functional. –  senderle Jun 18 '11 at 3:08

This question has been already asked and has quite a nice answear: Python: How do I pass a variable by reference?

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4  
Don't post duplicates as answers, post them as comments. –  Chris Lutz Jun 17 '11 at 23:54

the others already explained why that's not possible, but you could:

for modify in some_func, other_func, yet_another_func:
 var = modify(var)

or as pst said:

var = yet_another_func(other_func(some_func(var)))
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Strings are immutable in python, so your second example can't work. In the first example you are binding the name var to a completely new object on each line.

Typically multiple assignments to a single name like that are a code smell. Perhaps if you posted a larger sample of code someone here could show you a better way?

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I'm just gonna put this right here (since none of the answers seem to have addressed it yet)

If you're commonly repeating the same sequences of functions, consider wrapping them in a higher level function:

def metafunc(var):
    var = somefunc(var)
    var = otherfunc(var)
    var = thirdfunc(var)
    return lastfunc(var)

Then when you call the function metafunc you know exactly what's happening to your var: nothing. All you get out of the function call is whatever metafunc returns. Additionally you can be certain that nothing is happening in parts of your program that you forgot about. This is really important especially in scripting languages where there's usually a lot going on behind the scenes that you don't know about/remember.

There are benefits and drawbacks to this, the theoretical discussion is under the category of pure functional programming. Some real-world interactions (such as i/o operations) require non-pure functions because they need real-world implications beyond the scope of your code's execution. The principle behind this is defined briefly here:

http://en.wikipedia.org/wiki/Functional_programming#Pure_functions

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The problem is that str, int and float (long too, if you're in Py 2.x (True and False are really ints, so them too)) are what you call 'immutable types' in Python. That means that you can't modify their internal states: all manipulations of an str (or int or float) will result in a "new" instance of the str (or whatever) while the old value will remain in Python's cache until the next garbage collection cycle.

Basically, there's nothing you can do. Sorry.

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