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My question is about coding style: When I want to apply a procedure to several variables, like:

from pylab import vstack     # the function to apply to many variables
v1 = range(5)      # some dummy variables
v2 = range(9)
...
v20 = range(8)

# now, I want to apply a function to all variables that changes them!
v1 = vstack(v1)   # I really do not need the "old" v1 anymore
v2 = vstack(v2)
...
v20 = vstack(v20)

These are 20 lines of almost the same code. Is there a way to write the conversions ( vx = vstack(vx) ) in fewer lines?

Putting them in an iterable does not work:

all_v = [v1, v2, v3, .... , v20]
for v in all_v:
    v = vstack(v)

type (v1) # -> v1: <type: list>
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2 Answers 2

up vote 0 down vote accepted

Do you really need them to be in separate variables to begin with? That's usually a code smell. I'd keep them in a list, or a dict if the names are significant, and update that:

my_data = {}
my_data['v1'] = range(5)
my_data['v2'] = range(9)
...etc...

my_data = {k: vstack(v) for k, v in my_data.iteritems()}
share|improve this answer
    
Your proposition to "bundle" the variables works of course, and I think I'll do this. However, I'd like to know (curiosity) if there is a solution for my problem? –  user2055010 Apr 8 '13 at 12:37
    
You can do it by updating the locals() dictionary. However, this really isn't recommended. locals().update({k: v for k, v in locals().items() if k in ['v1', 'v2' ... ]}) –  Daniel Roseman Apr 8 '13 at 12:46
    
That's it - Thanks! –  user2055010 Apr 8 '13 at 12:49
from pylab import vstack
parameters = (5, 9, ..., 8)

v = [vstack(range(p)) for p in parameters]

This will run a list comprehension on the parameters tuple, which contains your parameters to the range function. For each parameter in that tuple, the result of the range function is passed to the vstack function. The results are collected in a list.

So v[0] corresponds to the result for the parameter value parameters[0] etc.

In your code it didn’t work because you were locally overwriting the v variable within the loop. This will not change the item in the original list. If you wanted to create a (new) list from those results, you could use list.append:

all_v = [v1, v2, v3, .... , v20]
new_v = []
for v in all_v:
    new_v.append(vstack(v))
share|improve this answer
    
Thanks! However, for the practical part, I think Daniel's solution is fine. Still, I'm interested (pure curiosity) to know if there is a solution for my original problem. –  user2055010 Apr 8 '13 at 12:40
    
@user2055010 Isn’t that answered in the last paragraph & code extract? This is your original tried solution, just working. –  poke Apr 8 '13 at 12:41
    
Then, I don't have the new values on the old variable names. (Daniel proposed to update the locals() dictionary - that was what I was looking for.) –  user2055010 Apr 8 '13 at 12:49
    
@user2055010 You should never update those values directly. It’s very implementation specific and not guaranteed to work. Change the way you are storing the original values. –  poke Apr 8 '13 at 12:52

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