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In python, how can I split a long list into a list of lists wherever I come across '-'. For example, how can I convert:

['1', 'a', 'b','---', '2','c','d','---','3','123','e','---','4']

to

[['1', 'a', 'b'],['2','c','d'],['3','123','e'],['4']]

Many thanks in advance.

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6 Answers

up vote 17 down vote accepted
In [17]: import itertools
# putter around 22 times
In [39]: l=['1', 'a', 'b','---', '2','c','d','---','3','123','e','---','4']

In [40]: [list(g) for k,g in itertools.groupby(l,'---'.__ne__) if k]
Out[40]: [['1', 'a', 'b'], ['2', 'c', 'd'], ['3', '123', 'e'], ['4']]
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+1 Nice (didn't immediately think of itertools.groupby here but it fits the bill indeed) –  ChristopheD Jul 12 '10 at 20:37
    
Thank you for your answer. Is there a way to check x=='---' in the above line with a regular expression (something like x==re.match('-'))? Many thanks –  DGT Jul 13 '10 at 0:37
    
Yes, you could use something like [list(g) for k,g in itertools.groupby(l,lambda x: re.match('---',x)) if not k]. The expression re.match(...) returns None when x does not match the pattern. Thus k is None for the elements you want to keep. So I changed the condition to if not k. –  unutbu Jul 13 '10 at 1:16
    
great! thanks a lot. –  DGT Jul 13 '10 at 1:21
    
You can use '---'.__ne__ instead of the lambda function –  gnibbler Jul 13 '10 at 11:13
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import itertools

l = ['1', 'a', 'b','---', '2','c','d','---','3','123','e','---','4']
r = []

i = iter(l)
while True:
  a = [x for x in itertools.takewhile(lambda x: x != '---', i)]
  if not a:
    break
  r.append(a)
print r

# [['1', 'a', 'b'], ['2', 'c', 'd'], ['3', '123', 'e'], ['4']]
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+1 I like this better then my similar solution (will delete it shortly) because of the efficient iter approach (only consume it once). But you probably mean to replace for j in range(7) with while True to handle arbitrary lengths. –  ChristopheD Jul 12 '10 at 20:35
    
@ChristopheD: Yes, fixed. –  Ignacio Vazquez-Abrams Jul 12 '10 at 20:37
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Here's one way to do it:

lst=['1', 'a', 'b','---', '2','c','d','---','3','123','e','---','4']
indices=[-1]+[i for i,x in enumerate(lst) if x=='---']+[len(lst)]
answer=[lst[indices[i-1]+1:indices[i]] for i in xrange(1,len(indices))]
print answer

Basically, this finds the locations of the string '---' in the list and then slices the list accordingly.

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import itertools

a = ['1', 'a', 'b','---', '2','c','d','---','3','123','e','---','4']
b = [list(x[1]) for x in itertools.groupby(a, '---'.__eq__) if not x[0]]

print b     # or print(b) in Python 3

Result is

[['1', 'a', 'b'], ['2', 'c', 'd'], ['3', '123', 'e'], ['4']]
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Here's a solution without itertools:

def foo(input):
    output = []
    currentGroup = []
    for value in input:
        if '-' in value:  #if we should break on this element 
            currentGroup.append( value )
        elif currentGroup:
            output.append( currentGroup )
            currentGroup = []
    if currentGroup:
        output.append(currentGroup) #appends the rest if not followed by separator    
    return output

print ( foo ( ['1', 'a', 'b','---', '2','c','d','---','3','123','e','---','4'] ) )
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1  
Beyond a certain threshold, readability is relative. That just looks like a big mass of code to me. –  Ignacio Vazquez-Abrams Jul 12 '10 at 20:42
1  
Using (1) value.find('-') == -1 instead of '-' in value (2) camelCase (2) redundant parentheses in (el)if sometimes (3) extraneous spaces inside parentheses sometimes (4) statement long enough to make SO insert the ferschlugginer horizontal scroll bar (5) no space after comma sometimes makes it look like a big mess of fugly code to me. –  John Machin Jul 12 '10 at 21:16
    
You're both right. Edited code and description. :) –  Gordon Gustafson Jul 13 '10 at 20:25
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It's been a while since I've done any python so my syntax is going to be way off, but a simple loop should suffice.

Keep track of the indexes in two numbers

firstList = ['1', 'a', 'b','---', '2','c','d','---','3','123','e','---','4']
listIndex = 0
itemIndex = 0
ii = 0
foreach item in firstList
  if(firstList[ii] == '---') 
    listIndex = listIndex + 1
    itemIndex = 0
    ii = ii + 1
  else secondList[listIndex][itemIndex] = firstList[ii]
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