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Is it possible to rewrite this loop:

for k,n in [[aa,1],[ab,2], [ac,3], [ad,4], [ba,5], [bb,6], [bc,7], [bd,8], 
            [ca,9],[cb,10],[cc,12],[cd,13],[da,14],[db,15],[dc,16],[dd,17],...zd,220]]:

with two range functions or "list multiplication"? I have tried all sorts of approaches, but none worked so far.

Thank you.

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1  
What's aa, ab, ...? –  delnan Nov 15 '10 at 15:41
    
it is a series of matplotlib objects. each controls one subplot of the larger chart. –  relima Nov 15 '10 at 15:46
    
Unless you have all those aa, etc. in some kind of iterable, there is no way to make this any shorter. –  Björn Pollex Nov 15 '10 at 15:48
    
See @Space_C0wb0y... are the objects in an iterable (e.g. list)? If yes, it's easy - otherwise pretty much impossible. –  delnan Nov 15 '10 at 15:50
1  
btw there are well under 220 elements. 26*4=104 –  jon_darkstar Nov 15 '10 at 16:15

6 Answers 6

up vote 4 down vote accepted

If you have the objects in a list its actually quite simple:

object_list = [aa, ab, ... ]
for n, k in enumerate( object_list, start=1):
     ...

So you should look for a way to put them in a list instead.

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Excellent. Thank you. –  relima Nov 15 '10 at 15:56

You didn't give much information, so this might not be what you are looking for but:

l = [aa, ab, ... ]
for i in xrange(len(l)):
  k = l[i]
  n = i+1
  //the rest of your code

That being said, based on the names of your variables, it looks like you have a matrix of values. If that is the case, it would make more sense you use that kind of structure and just iterate over both indices rather than having lots of named variables.

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Whenever you write [x]range(len(...)) in Python, you either have very weird requirements, or you don't use iterators properly. –  delnan Nov 15 '10 at 15:55
    
good point, it kind of screams for a 26x4 table. I didn't consider that in my answer. –  jon_darkstar Nov 15 '10 at 16:17

Assuming you have these matplotlib in an iterable, objs:

([i, obj] for i, obj in enumerate(objs, 1))

This can be made much shorter and simpler if you used 2-tuples instead of lists of length two (you propably want this anyway!): enumerate(objs, 1).

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Since he iterates over them anyway (for k, n in ...) you do not even have to make it a list. –  Björn Pollex Nov 15 '10 at 15:55
    
@Space_C0wb0y: Yes, thanks for the hint - turned it into a generator. –  delnan Nov 15 '10 at 15:56

If all those objects are in the modules global namespace you could do something like this:

from string import ascii_lowercase
n = 1
for a in ascii_lowercase:
    for b in ascii_lowercase[0:4]:
        k = globals()[a+b]
        n+=1

If they are in a function's namespace you could try locals() instead of globals()

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Same as @pyfunc: What makes you think the OP wants strings? –  Björn Pollex Nov 15 '10 at 15:50
    
Oh oops I misread that part. –  GWW Nov 15 '10 at 15:51

try these.

[[j,i] for i,j in enumerate([c1+c2 for c1 in ascii_lowercase for c2 in ascii_lowercase[0:4]])]

[j,i] just for printing in the order you said. put function or whatever you want there.
or if you prefer loop to list-comp

for i,j in enumerate([c1+c2 for c1 in ascii_lowercase for c2 in ascii_lowercase[0:4]]):
    #loop body

im guessing aa thru zd are either in global namespace or (hopefully) a dict? just put either eval() or dict name around the c1+c2

for i,j in enumerate([dictname['c1+c2'] for c1 in ascii_lowercase for c2 in ascii_lowercase[0:4]]):
    #loopbody
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A naive approach :

alphabet = ['a','b','c','d','e',] # Continue to have a complete alphabet

# Generator that returns every combination of a given alphabet with a given length
def xcombinations(items, n): 
    if n==0: yield []
    else:
        for i in xrange(len(items)):
            for cc in xcombinations(items[:i]+items[i+1:],n-1):
                yield [items[i]]+cc



gen = xcombinations(alphabet, 2)

for p,k in enumerate(gen):
    print ["".join(k), p]

Edit :

xcombinations can be replaced by itertools.permutations who does the same things.

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i see that everybody loves 'enumerate' –  ohe Nov 15 '10 at 16:02
2  
string.ascii_lowercase, itertools.permutations. Know your standard library. –  delnan Nov 15 '10 at 16:05
    
don't be so offensive. string.asccii_lowercase can't be used until we don't know the corpus that must be used for the generation of his range. Indeed, we can replace my xcombinations with itertools.permutations. –  ohe Nov 16 '10 at 7:09

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