9

In Perl, it is possible for me to do a substitution and capture a group match at the same time. e.g.

my $string = "abcdef123";
$string =~ s/(\d+)//;
my $groupMatched = $1; # $groupMatched is 123

In Python, I can do the substitution using re.sub function as follows. However, I cannot find a way to capture the \d+ group match without invoking another function re.match and performing an additional operation.

string = "abcdef123"
string = re.sub("(\d+)", "", string)

Does anyone know how I can capture the "\d+" matched value as a separate variable from the same re.sub operation? I tried the following command and it doesn't work.

print r'\1'
3
  • 1
    I am not sure if this is possible (at least at the same time) because the return object of re.sub is a string. If you have something like this rx_obj = re.search('123$', another_string), you get an RE object which can be captured by rx_obj.group().
    – Revan
    Commented Mar 24, 2016 at 8:56
  • Guess you might be right that it is not possible to do both at the same time. The other ways seem a bit hackish or are basically two separate steps.
    – KT8
    Commented Mar 24, 2016 at 11:22
  • 1
    Note that in Perl, you should always verify if your match succeeded before using the special numbered variables: if ($str =~ s/(\d+)//){ $x = $1; }
    – stevieb
    Commented Mar 24, 2016 at 11:30

3 Answers 3

16

You can cheat and pass a function to re.sub:

results = []
def capture_and_kill(match):
    results.append(match)
    return ""
string = "abcdef123"
string = re.sub("(\d+)", capture_and_kill, string)
results[0].group(1)
# => '123'
1
  • results[0].group()[1] Commented Jul 17, 2019 at 18:56
2

You can do the following:

sub_str = re.search("(\d+)", str).group(1)

Will find the "123" part.

Then you replace it:

str = str.replace(sub_str, "")

Note that if you have more than [0-9] sequence you'll need to use findall and iterate manually on all matches.

1
  • 1
    This answer is incorrect, or at least not very general - you can't assume that finding sub_str as a string is the same as finding the original pattern as a regular expression. For example, if the pattern was r"foo(?!bar)", it will match "foobarfoo" only at position 6, but the matched string "foo" appears at positions 0 and 6. Commented Feb 24, 2018 at 21:18
-3

below code tested under python 3.6.

test = "abcdef123"
resp = re.sub(r'\w+[A-Za-z](\d+)',r'\1',test)
print (resp)

123
1
  • 1
    This doesn't answer the question - it just happens to return the same string as \1 because your replacement pattern is r'\1'. Commented Feb 24, 2018 at 21:20

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