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I want to call a function that takes a class as an argument, without passing it a class.

The function only uses an integer value from the class, and the place I call it from has information that can calculate the value independently.

My code looks like:

Function I want to call:

    def buckets_from_pairs(fs_pairs,par):

        # rest of function has no reference to par

Function I call from:

    def deltas(roots):
        if "buckets" in roots:
            # do function on    roots["buckets"]

        if "partition" in roots:
            #somehow define     value  such that  value.N=len(roots["roots"])

            buckets=buckets_from_pairs(roots["partition"], value)

            #do function on    buckets

I could change deltas to take par as an argument and I could change buckets_from_pairs to work without par but both would require a lot of reworking, and I would have to organise it with my supervisor who wrote both functions (he doesn't have this problem).

So I was hoping there was a simpler way of creating an object that can use the "dot" to reference something than creating a new class in the calling function.

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Why does that value have to be contained inside an object (please try and use correct terminology)? Why can't you just pass an integer? – Jonathon Reinhart Feb 19 '13 at 13:54
Maybe namedtuple? – John La Rooy Feb 19 '13 at 13:54
@JonathonReinhart The function I'm calling is one written by my supervisor and it's used in a bunch of modules I have nothing to do with - I honestly don't know why it's written that way, I'm just tying to use it. – Apple Feb 19 '13 at 13:58

5 Answers 5

up vote 4 down vote accepted
from collections import namedtuple
value = namedtuple('Value', 'N')(len(roots["roots"]))
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You can make a little adapter like this:

class Adapter(object):
    def __init__(self, n):
        self.N = n


buckets=buckets_from_pairs(roots["partition"], Adapter(len(roots["roots"]))
share|improve this answer

Why not just

def buckets_from_pairs(fs_pairs, N):

called with

buckets=buckets_from_pairs(roots["partition"], value.N)
share|improve this answer
He wants to leave buckets... unmodified. – Jonathon Reinhart Feb 19 '13 at 14:02
Sounds like any change to buckets_from_pairs would incur a lot of red tape, so the OP wants to avoid it if possible. "[it] would require a lot of reworking, and I would have to organise it with my supervisor" – Kevin Feb 19 '13 at 14:02
That sounds like a recipe for bad programming. It seems @gnibbler has the noblest solution. – danodonovan Feb 19 '13 at 14:03

@gnibbler answer is good and @John Zwinck had a good idea, but it can be made general:

class objval(object):
    def __init__(self, **kwargs):

par = objval(N=len(roots["roots"])

In general, objval allows you to create values wrapped in objects on the fly like:

o = objval(prop1=value1, prop2=value2)

Your choice of solution comes down to a matter of taste.

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If the value should be modifiable; you could use types.SimpleNamespace class in Python 3.3+:

from types import SimpleNamespace

value = SimpleNamespace(N=len(roots["roots"]))

On older Python versions you could use Adapter class.

For read-only case; you could use namedtuple.

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