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I want to write a function, replacing T by space.

   b=""
   xs=list("fghtThjchk")
   for x in xs:
       if x=="T" or "t":
           x==" "
           b=b+x

I can do it with .replace, but I still want to know can I use list to do it.

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6 Answers 6

x==" " isn't the same as x=" " which is why b is getting the wrong value

if x=="T" or "t": doesn't mean "is x one of 'T' or 't'". You need to say it like this if x in 'Tt': or this if x=="T" or x=="t":

Perhaps this is what you are trying to do

b = ""
for x in "fghtThjchk":
    if x == "T" or x == "t":
        x = " "
    b = b + x
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This line doesn't do what you want

if x=="T" or "t":

That condition always evaluates to true, because "t" is considered truthy.

You mean

if x=="T" or x=="t":

And the line that says

x==" "

was meant, I guess, to be an assignment and not a comparison:

x=" "
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The syntax you are using is little bit incorrect. The correct way of using if/else in list comprehensions is given below:

''.join([' ' if x=='T' or x=='t' else x for x in xs])

-- This method is littler faster & optimized when the string is of large length.

-- We are creating string objects again & again in above answers, which is not recommended.

-- So always use join() to join the list after performing all the operations on it instead of string concatenation in loops.

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We can make use of the re (Regular Expression) module, which is fast:

import re
aa = re.sub(r'([.tT])', " ", "fghtThjchk")
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You need to reference the list by index, such as this:

for i, x in enumerate(xs):
    if x in ["T", "t"]:
        xs[i] = " "
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This was my first thought, then I saw they are building the new string in b –  gnibbler Sep 27 '12 at 5:17

When you do for x in xs you're assigning the name x to each element of xs one at a time. When you do x=" " (I presume == was a typo) you're reassigning the name x but not changing the original element in xs.

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