4
my_list = ["on@3", "two#", "thre%e"]

my expected output is,

out_list = ["one","two","three"]

I cannot simply apply strip() to these items, please help.

  • 3
    write a function that will remove the special characters from one string, then use map or a list comprehension to apply that function to the list of strings. – Adam Smith Nov 15 '17 at 7:38
  • Thank you, @AdamSmith – pyd Nov 15 '17 at 7:39
  • Where did the 3 in on@3 go? Are you also replacing digits with letters? – Martijn Pieters Nov 15 '17 at 7:47
  • You have underspecified as well. What about other punctuation? What about whitespace? One of the answers below preserves only letters and digits for example. – Martijn Pieters Nov 15 '17 at 7:49
2

Use the str.translate() method to apply the same translation table to all strings:

removetable = str.maketrans('', '', '@#%')
out_list = [s.translate(removetable) for s in my_list]

The str.maketrans() static method is a helpful tool to produce the translation map; the first two arguments are empty strings because you are not replacing characters, only removing. The third string holds all characters you want to remove.

Demo:

>>> my_list = ["on@3", "two#", "thre%e"]
>>> removetable = str.maketrans('', '', '@#%')
>>> [s.translate(removetable) for s in my_list]
['on3', 'two', 'three']
  • The first string in the list has 3 replaced by e. – roganjosh Nov 15 '17 at 8:01
  • @roganjosh: or there is an error in the expected input or output. I've asked for clarification on the question. Note that none of the other answers address this too. – Martijn Pieters Nov 15 '17 at 8:07
  • Indeed you did, sorry. I jumped from question to your answer and then followed up your link, without seeing your comments under the question. – roganjosh Nov 15 '17 at 8:09
6

Here is another solution:

import re
my_list= ["on@3", "two#", "thre%e"]
print [re.sub('[^a-zA-Z0-9]+', '', _) for _ in my_list]

output:

['on3', 'two', 'three']
1

try this:

l_in = ["on@3", "two#", "thre%e"]
l_out = [''.join(e for e in string if e.isalnum()) for string in l_in]
print l_out
>['on3', 'two', 'three']
0

Using two for loops

l = ['@','#','%']
out_list = []
for x in my_list:
    for y in l:
        if y in x:
            x = x.replace(y,'')
            out_list.append(x)
            break

Using list comprehension

out_list = [ x.replace(y,'')  for x in my_list for y in l if y in x ]

Assuming 3 in on@3 is a typo, the output will be on@3 and not one as expected

  • Thanks for the solution, but this looping will take more time ] – pyd Nov 15 '17 at 7:40
  • @pyd: you'd have to loop for stripping too. – Martijn Pieters Nov 15 '17 at 7:42
  • 2
    On the other hand, the double loop here is rather overkill. – Martijn Pieters Nov 15 '17 at 7:45
  • @MartijnPieters thanks! if I'm to use list comprehension doesn't that also have the same issue? – Van Peer Nov 15 '17 at 12:00
  • 1
    A list comprehension doesn’t alter the number of loops, no. All it does is make list building more efficient. What you need is a method to replace all characters with a single command, like str.translate(), at which point you have a single loop rather than a double. – Martijn Pieters Nov 15 '17 at 13:27

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