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Hi heres an example of what i am trying to do

lets say there is an ordered list of words

list = ["Ack","Ashley","book","channel","Charlie","David","Eli,"George""Zebra"]

how can i print this so that

  1. if there is one variable it will print without brackets or qutations
  2. if there is more then one it will group with a bracket them based on a dictionary for example

dictmap = {1: ["a", "A", "b", "B", "c", "C"], 2:["d", "D", "e", "E", "f", "F"],..

so all the words starting with letters that are mapped from 1: will be grouped in a bracket and so forth

so the desired output of the above list would simply be

[Ack,Ashely,book,channel,Charlie] [David,Eli] George Zebra
share|improve this question
    
I don't know what to try – pyCthon Jul 12 '12 at 5:27
    
can you be more clear about the grouping you want? I can't see the connection between the list and dictmap – xvatar Jul 12 '12 at 5:34
1  
Are you grouping by the first letter? I think your dictmap is useless, you need the letters as keys.eg {v:k for k,v in dictmap.items() for v in v}. Then use itertools.groupby – John La Rooy Jul 12 '12 at 5:37
    
@xvatar is it more clear? i just want to group them based on the key it its mapped from in the dictionary – pyCthon Jul 12 '12 at 5:38
1  
oh and don't name your variables the same as builtins. list(g) in my answer won't work if you have shadowed list with a local variable – John La Rooy Jul 12 '12 at 5:50
up vote 2 down vote accepted

Something along these lines should work

from itertools import groupby
L = ["Ack","Ashley","book","channel","Charlie","David","Eli","George","Zebra"]
D ={v:k for k,v in dictmap.items() for v in v}
groups = itertools.groupby(L, key=lambda x:D.get(x[0]))

for k,g in groups:
    g=list(g)
    if len(g)>1:
        print g,
    else:
        print g[0],
share|improve this answer
    
thanks so to print this on the same line, i would switch print with sys.stdout.write ? – pyCthon Jul 12 '12 at 5:54
    
@pyCthon, sure, or just add a comma to the end of the print statment. I'll add them to my answer – John La Rooy Jul 12 '12 at 5:55

If the original list is sorted by the same key your doing the grouping over, this should be a straightforward application of itertools.groupby.

Here's an untested example:

lst = [ ...here's the list of strings... ]

def grouping_key(elem) :
    for i, first_letters in dictmap.iteritems() :
         if elem[0] in first_letters :
             return i
    return None

for group_key, group_elems in itertools.groupby(lst, key=grouping_key) :
    group_elems = list(group_elems)
    if len(group_elems) == 1 :
        print group_elems[0]
    else :
        print group_elems
share|improve this answer

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