Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to remove all spaces from the input which is list of list of lists... I don't know what to do for the "else:"

def removespace(lst):
   if type(lst) is str:
      return lst.replace(" ","")
   else:
      ?????

Example:

lst = [ apple, pie ,    [sth, [banana     , asd, [    sdfdsf, [fgg]]]]]

The output should be:

lst2 = [apple,pie,[sth,[banana,asd,[sdfdsf,[fgg]]]]] 

and what to do if the lst contains integers or floating points? I have received errors for integers.

example input :

 L = [['apple', '2 * core+1* sth'], ['pie', '1*apple+1*sugar+1*water'], ['water', 60]]
share|improve this question
1  
Post those lists in the question body. –  undefined is not a function Jan 17 '13 at 10:15
1  
Your example list is not a valid Python code. –  eumiro Jan 17 '13 at 10:16
    
In your example, Python will see your list as a python list, and apple, pie, etc, must be variables. There is no string here. It's certainly not what you want. –  Jean-Claude Arbaut Jan 17 '13 at 10:19

4 Answers 4

up vote 4 down vote accepted
def removespace(a):
    if type(a) is str:
        return a.replace(" ", "")
    elif type(a) is list:
        return [removespace(x) for x in a]
    elif type(a) is set:
        return {removespace(x) for x in a}
    else:
        return a

Here is a sample:

>>> removespace([["a ",["   "]],{"b ","c d"},"e f g"])
[['a', ['']], {'b', 'cd'}, 'efg']
share|improve this answer
    
type(a) is str is not good. –  gdbdmdb Jan 17 '13 at 10:23
    
@thg435. isinstance would be better, but I used the same code as the OP. For those who are interested : link –  Jean-Claude Arbaut Jan 17 '13 at 10:36

I'd suggest to follow EAFP and catch an exception instead of using isinstance. Also, never miss an opportunity to make a function a bit more generic:

def rreplace(it, old, new):
    try:
        return it.replace(old, new)
    except AttributeError:
        return [rreplace(x, old, new) for x in it]

Example:

a = [" foo", ["    spam", "ham"], "  bar"]
print rreplace(a, " ", "")     

Or even more generic, although that might be an overkill for your problem:

def rapply(it, fun, *args, **kwargs):
    try:
        return fun(it, *args, **kwargs)
    except TypeError:
        return [rapply(x, fun, *args, **kwargs) for x in it]

a = [" foo", ["    spam", "ham"], "  bar"]
print rapply(a, str.replace, " ", "")     
print rapply(a, str.upper)     
share|improve this answer
def removespace(lst):
    if type(lst) is str:
        return lst.replace(" ","")
    else:
        return [removespace(elem) for elem in lst]



lst = [' apple', 'pie ', ['sth', ['banana', 'asd', [' sdfdsf', ['fgg']]]]] 
print removespace(lst)

prints

['apple', 'pie', ['sth', ['banana', 'asd', ['sdfdsf', ['fgg']]]]]
share|improve this answer

Though you may experiment with recursive solution, but you can try your hand on a wonderful library Python provides, to transform a well formed Python literal from string to Python literal.

  • Just convert you list to string
  • remove any necessary spaces
  • and then reconvert to the recursive list structure using ast.literal_eval

    >>> lst = [' apple', 'pie ', ['sth', ['banana', 'asd', [' sdfdsf', ['fgg']]]]]
    >>> import ast
    >>> ast.literal_eval(str(lst).translate(None,' '))
    ['apple', 'pie', ['sth', ['banana', 'asd', ['sdfdsf', ['fgg']]]]]
    
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.