1

i want to find and replace the uppercase characters (as _upperchar) in a string.

Eg: input: HeLLo Capital Letters

output : _He_L_Lo _Capital _Letters

I tried like:

print "saran"
value = "HeLLo Capital Letters"
for word in value:
        print word
        if word.isupper():
                char = "_"
                value = value.replace(word,char + word)

print value

and the output I got is,

_He___L___Lo _Capital ___Letters

Some one please help me to reduce the extra underscores.

3
  • 2
    Given that you print word (really a character), clearly you can see what's happening. Altering something while iterating over it is not a smart move - maybe try creating a new, separate string instead?
    – jonrsharpe
    Commented Jul 20, 2015 at 10:51
  • You are modifying the string that you are iterating. Use another variable instead of value inside the for loop
    – Kamehameha
    Commented Jul 20, 2015 at 10:52
  • Hint: read the docs for str.replace(), and consider how many replacements it makes each time you call it.
    – PM 2Ring
    Commented Jul 20, 2015 at 10:53

6 Answers 6

4

Take a look at re.sub

>>> import re
>>> re.sub(r'([A-Z])', r'_\1', value)
'_He_L_Lo _Capital _Letters'

The issue in your example isn't that you're modifying the string whilst iterating over it. Python will create iter(value) at the start of the for loop, and changes to value after this wont effect the loop due to strings being immutable. The problem is value.replace will replace all occurrences in the string, and as there are 3 capital Ls for example, each L will get 3 underscores (value.replace('L', '_L') happens 3 times).

16
  • 1
    @Mauris, so you are saying a regex is much clearer than a list comp? Commented Jul 20, 2015 at 11:08
  • 1
    @Mauris Padraic's list comp based solution is only "confusing" if you don't understand list comps and the re.sub() based one only "clearer" if you're familar with regexps. Commented Jul 20, 2015 at 11:10
  • 1
    @brunodesthuilliers, regex is almost a language in itself, if you know python at all you should know what a list comprehension is, you could write python forever without knowing what a regex is. Commented Jul 20, 2015 at 11:12
  • 2
    @Mauris: It's only clearer when you're familiar & comfortable with regex syntax. IMHO, any seasoned Python coder should be comfortable reading & writing single-loop list comprehensions & generator expressions, since they are a standard Python idiom. True, they can get confusing when they contain multiple loops, but Padraic's list comp is fairly straight-forward, and no harder to read than the regex. And I wouldn't be surprised if it was significantly faster than the regex.
    – PM 2Ring
    Commented Jul 20, 2015 at 11:14
  • 1
    @bruno.I never said you didn't. My point is you don't have to know anything about re to know python but a there is a pretty good chance if someone is using python that they know what a list comp is. Commented Jul 20, 2015 at 11:35
3

Just use str.join, add a _ before the ch if the ch/letter is uppercase, else just keep the letter/ch as is:

s=  "HeLLo Capital Letters"

print("".join(["_" + ch if ch.isupper() else ch for ch in s]))
_He_L_Lo _Capital _Letters

You run into issues because you are calling replace on the whole string each time so the repeated L's for example end up with three _.

If you add a print value,word at the start of the loop you will see what happens:

HeLLo Capital Letters H
_HeLLo Capital Letters e
_HeLLo Capital Letters L
_He_LLo Capital Letters L # second L
_He__LLo Capital Letters o # after replacing twice we now have double _
 ........................

Some timings against a regex shows a list comp is the best approach:

In [13]: s = s * 50

In [14]: timeit "".join(["_" + ch if ch.isupper() else ch for ch in s])
10000 loops, best of 3: 98.9 µs per loop

In [15]: timeit  r.sub( r'_\1', s)
1000 loops, best of 3: 296 µs per loop
2
  • Your solution would probably be even faster if you used a generator expression: try timing "".join(" " + ch ... )!
    – lynn
    Commented Jul 20, 2015 at 11:17
  • 2
    @mauris, that would actually be slower. Python does two passed over what is passed to join do if you pass a generator python will first build a list Commented Jul 20, 2015 at 11:29
1

Look closely what's happening as your code is executed. I've added some "print" statements that show what's going on:

Replacing 'H' with '_H':
    _HeLLo Capital Letters

Replacing 'L' with '_L':
    _He_L_Lo Capital _Letters

Replacing 'L' with '_L':
    _He__L__Lo Capital __Letters

Replacing 'C' with '_C':
    _He__L__Lo _Capital __Letters

Replacing 'L' with '_L':
    _He___L___Lo _Capital ___Letters

You run into multiple L characters, and perform the replacement L_L for each of them, so you get:

L_L__L___L → ...

The other solutions here apply the replacement (L_L) on a character level, instead of on the whole string; that's why they work while yours doesn't.

1

The problem in your snippet is that when the first time you change H to _H, the next time you iterate, it considers H again because now it is in the second spot ! hence instead of replacing, just create a new string.

value = "HeLLo Capital Letters"
new_value = ""
for word in value:
        #print(word)
        if word.isupper():
                char = "_"
                new_value += char + word
        else:
            new_value += word

print(new_value) 

if an uppercase char is encountered, first condition is executed otherwise the lowercase char is simply appended

0
print "saran"
value = "HeLLo Capital Letters"
print ''.join(['_'+ x if x.isupper() else x for x in value])
1
  • Maybe you got the downvotes because your answer is a dupe of the code Padraic posted 2 minutes earlier. FWIW, I don't think that's fair, since you were probably both composing your answers at the same time, but it happens. Or maybe you got the dv's because you posted code with no explanation.
    – PM 2Ring
    Commented Jul 20, 2015 at 10:59
-1
value = "HELLO Capital Letters"         
for word in value:                      
    str = ""                            
    if word.isupper():                  
        val = word                      
    output=word.replace(val, "_"+word)  
    str = str + output                  
    print str                           
3
  • 1
    1) Please put all code samples into code blocks. Also, code-only answers are considered inferior here - you should post some explanation with your code. 2) Don't use str as a variable name because that shadows the built-in str type. 3) This code doesn't function correctly. It prints its output over multiple lines instead of on one line, and it crashes if value doesn't begin with an uppercase letter.
    – PM 2Ring
    Commented Jul 21, 2015 at 7:58
  • 1
    @Vignesh Kalai : thanks... will keep ur advice in mind Commented Jul 27, 2015 at 9:55
  • @AkritiAgarwal like wise don't use str as variable name since it will shallow the string function Commented Jul 27, 2015 at 9:59

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