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Previous, I am having a C++ string processing code which is able to do this.

input -> Hello 12
output-> Hello

input -> Hello 12 World
output-> Hello World

input -> Hello12 World
output-> Hello World

input -> Hello12World
output-> HelloWorld

The following is the C++ code.

std::string Utils::toStringWithoutNumerical(const std::string& str) {
    std::string result;

    bool alreadyAppendSpace = false;
    for (int i = 0, length = str.length(); i < length; i++) {
        const char c = str.at(i);
        if (isdigit(c)) {
            continue;
        }
        if (isspace(c)) {
            if (false == alreadyAppendSpace) {
                result.append(1, c);
                alreadyAppendSpace = true;
            }
            continue;
        }
        result.append(1, c);
        alreadyAppendSpace = false;
    }

    return trim(result);
}

May I know in Python, what is the Pythonic way for implementing such functionality? Is regular expression able to achieve so?

Thanks.

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Yes, this would be an ideal application of regular expressions. Have you tried it? –  jathanism Nov 11 '10 at 2:13

5 Answers 5

up vote 7 down vote accepted

Edit: This reproduces more accurately what the C++ code does than the previous version.

s = re.sub(r"\d+", "", s)
s = re.sub(r"(\s)\s*", "\1", s)

In particular, if the first whitespace in a run of several whitespaces is a tab, it will preserve the tab.

Further Edit: To replace by a space anyway, this works:

s = re.sub(r"\d+", "", s)
s = re.sub(r"\s+", " ", s)
share|improve this answer
    
+1. Was going to post a competing answer before your edit, but now you are correct! –  Steven Rumbalski Nov 11 '10 at 2:18
    
Sorry. I retested my C++ code. Your previous solution is correct. Can you please repost your previous solution? I will edit back my test case. –  Cheok Yan Cheng Nov 11 '10 at 2:20
    
Well, I reproduced what your example code does. The code will collapse any run of consecutive whitespace characters, just leving the first one. My Python code does the same. –  Sven Marnach Nov 11 '10 at 2:21
    
My second version does essentially the same as the first one, except for the "first whitespace is not a space" issue. –  Sven Marnach Nov 11 '10 at 2:22
    
But I tested run your current code, I saw a "smile icon" at the end of string. My guess is caused by "\1"? I think replace "\1" with " " will just fine –  Cheok Yan Cheng Nov 11 '10 at 2:23

Python has a lot of built-in functions that can be very powerful when used together.

def RemoveNumeric(str):
    return ' '.join(str.translate(None, '0123456789').split())

>>> RemoveNumeric('Hello 12')
'Hello'
>>> RemoveNumeric('Hello 12 World')
'Hello World'
>>> RemoveNumeric('Hello12 World')
'Hello World'
>>> RemoveNumeric('Hello12World')
'HelloWorld'
share|improve this answer
import re
re.sub(r'[0-9]+', "", string)
share|improve this answer
    
No. It will fail at 2nd case. "Hello 12 World" will have 2 spaces in between, instead of the expected single space. –  Cheok Yan Cheng Nov 11 '10 at 2:08
    
" ".join( re.sub( r'[0-9]+', "", s ).split() ) Cheers & hth. –  Cheers and hth. - Alf Nov 11 '10 at 2:31
import re
re.sub(r"(\s*)\d+(\s*)", lambda m: m.group(1) or m.group(2), string)

Breakdown:

  • \s* matches zero or more whitespace.
  • \d+ matches one or more digits.
  • The parentheses are used to capture the whitespace.
  • The replacement parameter is normally a string, but it can alternatively be a function which constructs the replacement dynamically.
  • lambda is used to create an inline function which returns whichever of the two capture groups is non-empty. This preserves a space if there was whitespace and returns an empty string if there wasn't any.
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1  
Doesn't this have to be a raw string? –  Rafe Kettler Nov 11 '10 at 2:08

The regular expression answers are clearly the right way to do this. But if you're interested in a way to do if you didn't have a regex engine, here's how:

class filterstate(object):
    def __init__(self):
        self.seenspace = False
    def include(self, c):
        isspace = c.isspace()
        if (not c.isdigit()) and (not (self.seenspace and isspace)):
            self.seenspace = isspace
            return True
        else:
            return False

def toStringWithoutNumerical(s):
    fs = filterstate()
    return ''.join((c for c in s if fs.include(c)))
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