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Pythonic way to find the last position in a string not matching a regex


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In Python, I try to find the last position in an arbitrary string that does not match a given pattern, which is specified as regex pattern (that includes the "not" in the match). For example, with the string uiae1iuae200, and the pattern of not being a number (regex pattern in Python for this would be [^0-9]), I would need '8' (the last 'e' before the '200') as result.




What is the most pythonic way to achieve this?




As it's a little tricky to quickly find method documentation and the best suited method for something in the Python docs (due to method docs being somewhere in the middle of the corresponding page, like re.search() in the re page), the best way I quickly found myself is using re.search() - but the current form simply must be a suboptimal way of doing it:



import re
string = 'uiae1iuae200' # the string to investigate
len(string) - re.search(r'[^0-9]', string[::-1]).start()


I am not satisfied with this for two reasons:
- a) I need to reverse string before using it with [::-1], and
- b) I also need to reverse the resulting position (subtracting it from len(string) because of having reversed the string before.



There needs to be better ways for this, likely even with the result of re.search().



I am aware of re.search(...).end() over .start(), but re.search() seems to split the results into groups, for which I did not quickly find a not-cumbersome way to apply it to the last matched group. Without specifying the group, .start(), .end(), etc, seem to always match the first group, which does not have the position information about the last match. However, selecting the group seems to at first require the return value to temporarily be saved in a variable (which prevents neat one-liners), as I would need to access both the information about selecting the last group and then to select .end() from this group.



What's your pythonic solution to this? I would value being pythonic more than having the most optimized runtime.



Update



The solution should be functional also in corner cases, like 123 (no position that matches the regex), empty string, etc. It should not crash e.g. because of selecting the last index of an empty list. However, as even my ugly answer above in the question would need more than one line for this, I guess a one-liner might be impossible for this (simply because one needs to check the return value of re.search() or re.finditer() before handling it). I'll accept pythonic multi-line solutions to this answer for this reason.










share|improve this question




















  • 1





    last position that does 'not' or does match regex? Last e matches [^0-9] pattern.

    – dgumo
    11 hours ago











  • Last position that does not match a certain pattern, like being a number. For numbers this would be [^0-9]. I'll update the question.

    – geekoverdose
    11 hours ago











  • Should s = 'uiae1iuae200aaaaaaaa' return the index of last char before a digit aka e (8) or the last char aka a (19)?

    – ruohola
    11 hours ago








  • 1





    With uiae1iuae200aaaaaaaa it should return the last position in the string, means 19.

    – geekoverdose
    11 hours ago













  • "way to find last position in string that does not match regex", you actually just want to find the last position that does match a given regex, in this case the regex just happens to be a negative character set.

    – ruohola
    6 hours ago


















11















In Python, I try to find the last position in an arbitrary string that does not match a given pattern, which is specified as regex pattern (that includes the "not" in the match). For example, with the string uiae1iuae200, and the pattern of not being a number (regex pattern in Python for this would be [^0-9]), I would need '8' (the last 'e' before the '200') as result.




What is the most pythonic way to achieve this?




As it's a little tricky to quickly find method documentation and the best suited method for something in the Python docs (due to method docs being somewhere in the middle of the corresponding page, like re.search() in the re page), the best way I quickly found myself is using re.search() - but the current form simply must be a suboptimal way of doing it:



import re
string = 'uiae1iuae200' # the string to investigate
len(string) - re.search(r'[^0-9]', string[::-1]).start()


I am not satisfied with this for two reasons:
- a) I need to reverse string before using it with [::-1], and
- b) I also need to reverse the resulting position (subtracting it from len(string) because of having reversed the string before.



There needs to be better ways for this, likely even with the result of re.search().



I am aware of re.search(...).end() over .start(), but re.search() seems to split the results into groups, for which I did not quickly find a not-cumbersome way to apply it to the last matched group. Without specifying the group, .start(), .end(), etc, seem to always match the first group, which does not have the position information about the last match. However, selecting the group seems to at first require the return value to temporarily be saved in a variable (which prevents neat one-liners), as I would need to access both the information about selecting the last group and then to select .end() from this group.



What's your pythonic solution to this? I would value being pythonic more than having the most optimized runtime.



Update



The solution should be functional also in corner cases, like 123 (no position that matches the regex), empty string, etc. It should not crash e.g. because of selecting the last index of an empty list. However, as even my ugly answer above in the question would need more than one line for this, I guess a one-liner might be impossible for this (simply because one needs to check the return value of re.search() or re.finditer() before handling it). I'll accept pythonic multi-line solutions to this answer for this reason.










share|improve this question




















  • 1





    last position that does 'not' or does match regex? Last e matches [^0-9] pattern.

    – dgumo
    11 hours ago











  • Last position that does not match a certain pattern, like being a number. For numbers this would be [^0-9]. I'll update the question.

    – geekoverdose
    11 hours ago











  • Should s = 'uiae1iuae200aaaaaaaa' return the index of last char before a digit aka e (8) or the last char aka a (19)?

    – ruohola
    11 hours ago








  • 1





    With uiae1iuae200aaaaaaaa it should return the last position in the string, means 19.

    – geekoverdose
    11 hours ago













  • "way to find last position in string that does not match regex", you actually just want to find the last position that does match a given regex, in this case the regex just happens to be a negative character set.

    – ruohola
    6 hours ago














11












11








11


1






In Python, I try to find the last position in an arbitrary string that does not match a given pattern, which is specified as regex pattern (that includes the "not" in the match). For example, with the string uiae1iuae200, and the pattern of not being a number (regex pattern in Python for this would be [^0-9]), I would need '8' (the last 'e' before the '200') as result.




What is the most pythonic way to achieve this?




As it's a little tricky to quickly find method documentation and the best suited method for something in the Python docs (due to method docs being somewhere in the middle of the corresponding page, like re.search() in the re page), the best way I quickly found myself is using re.search() - but the current form simply must be a suboptimal way of doing it:



import re
string = 'uiae1iuae200' # the string to investigate
len(string) - re.search(r'[^0-9]', string[::-1]).start()


I am not satisfied with this for two reasons:
- a) I need to reverse string before using it with [::-1], and
- b) I also need to reverse the resulting position (subtracting it from len(string) because of having reversed the string before.



There needs to be better ways for this, likely even with the result of re.search().



I am aware of re.search(...).end() over .start(), but re.search() seems to split the results into groups, for which I did not quickly find a not-cumbersome way to apply it to the last matched group. Without specifying the group, .start(), .end(), etc, seem to always match the first group, which does not have the position information about the last match. However, selecting the group seems to at first require the return value to temporarily be saved in a variable (which prevents neat one-liners), as I would need to access both the information about selecting the last group and then to select .end() from this group.



What's your pythonic solution to this? I would value being pythonic more than having the most optimized runtime.



Update



The solution should be functional also in corner cases, like 123 (no position that matches the regex), empty string, etc. It should not crash e.g. because of selecting the last index of an empty list. However, as even my ugly answer above in the question would need more than one line for this, I guess a one-liner might be impossible for this (simply because one needs to check the return value of re.search() or re.finditer() before handling it). I'll accept pythonic multi-line solutions to this answer for this reason.










share|improve this question
















In Python, I try to find the last position in an arbitrary string that does not match a given pattern, which is specified as regex pattern (that includes the "not" in the match). For example, with the string uiae1iuae200, and the pattern of not being a number (regex pattern in Python for this would be [^0-9]), I would need '8' (the last 'e' before the '200') as result.




What is the most pythonic way to achieve this?




As it's a little tricky to quickly find method documentation and the best suited method for something in the Python docs (due to method docs being somewhere in the middle of the corresponding page, like re.search() in the re page), the best way I quickly found myself is using re.search() - but the current form simply must be a suboptimal way of doing it:



import re
string = 'uiae1iuae200' # the string to investigate
len(string) - re.search(r'[^0-9]', string[::-1]).start()


I am not satisfied with this for two reasons:
- a) I need to reverse string before using it with [::-1], and
- b) I also need to reverse the resulting position (subtracting it from len(string) because of having reversed the string before.



There needs to be better ways for this, likely even with the result of re.search().



I am aware of re.search(...).end() over .start(), but re.search() seems to split the results into groups, for which I did not quickly find a not-cumbersome way to apply it to the last matched group. Without specifying the group, .start(), .end(), etc, seem to always match the first group, which does not have the position information about the last match. However, selecting the group seems to at first require the return value to temporarily be saved in a variable (which prevents neat one-liners), as I would need to access both the information about selecting the last group and then to select .end() from this group.



What's your pythonic solution to this? I would value being pythonic more than having the most optimized runtime.



Update



The solution should be functional also in corner cases, like 123 (no position that matches the regex), empty string, etc. It should not crash e.g. because of selecting the last index of an empty list. However, as even my ugly answer above in the question would need more than one line for this, I guess a one-liner might be impossible for this (simply because one needs to check the return value of re.search() or re.finditer() before handling it). I'll accept pythonic multi-line solutions to this answer for this reason.







python regex string regex-negation






share|improve this question















share|improve this question













share|improve this question




share|improve this question








edited 2 hours ago









Emma

2,1543920




2,1543920










asked 11 hours ago









geekoverdosegeekoverdose

752616




752616








  • 1





    last position that does 'not' or does match regex? Last e matches [^0-9] pattern.

    – dgumo
    11 hours ago











  • Last position that does not match a certain pattern, like being a number. For numbers this would be [^0-9]. I'll update the question.

    – geekoverdose
    11 hours ago











  • Should s = 'uiae1iuae200aaaaaaaa' return the index of last char before a digit aka e (8) or the last char aka a (19)?

    – ruohola
    11 hours ago








  • 1





    With uiae1iuae200aaaaaaaa it should return the last position in the string, means 19.

    – geekoverdose
    11 hours ago













  • "way to find last position in string that does not match regex", you actually just want to find the last position that does match a given regex, in this case the regex just happens to be a negative character set.

    – ruohola
    6 hours ago














  • 1





    last position that does 'not' or does match regex? Last e matches [^0-9] pattern.

    – dgumo
    11 hours ago











  • Last position that does not match a certain pattern, like being a number. For numbers this would be [^0-9]. I'll update the question.

    – geekoverdose
    11 hours ago











  • Should s = 'uiae1iuae200aaaaaaaa' return the index of last char before a digit aka e (8) or the last char aka a (19)?

    – ruohola
    11 hours ago








  • 1





    With uiae1iuae200aaaaaaaa it should return the last position in the string, means 19.

    – geekoverdose
    11 hours ago













  • "way to find last position in string that does not match regex", you actually just want to find the last position that does match a given regex, in this case the regex just happens to be a negative character set.

    – ruohola
    6 hours ago








1




1





last position that does 'not' or does match regex? Last e matches [^0-9] pattern.

– dgumo
11 hours ago





last position that does 'not' or does match regex? Last e matches [^0-9] pattern.

– dgumo
11 hours ago













Last position that does not match a certain pattern, like being a number. For numbers this would be [^0-9]. I'll update the question.

– geekoverdose
11 hours ago





Last position that does not match a certain pattern, like being a number. For numbers this would be [^0-9]. I'll update the question.

– geekoverdose
11 hours ago













Should s = 'uiae1iuae200aaaaaaaa' return the index of last char before a digit aka e (8) or the last char aka a (19)?

– ruohola
11 hours ago







Should s = 'uiae1iuae200aaaaaaaa' return the index of last char before a digit aka e (8) or the last char aka a (19)?

– ruohola
11 hours ago






1




1





With uiae1iuae200aaaaaaaa it should return the last position in the string, means 19.

– geekoverdose
11 hours ago







With uiae1iuae200aaaaaaaa it should return the last position in the string, means 19.

– geekoverdose
11 hours ago















"way to find last position in string that does not match regex", you actually just want to find the last position that does match a given regex, in this case the regex just happens to be a negative character set.

– ruohola
6 hours ago





"way to find last position in string that does not match regex", you actually just want to find the last position that does match a given regex, in this case the regex just happens to be a negative character set.

– ruohola
6 hours ago












3 Answers
3






active

oldest

votes


















6














You can use re.finditer to extract start positions of all matches and return the last one from list. Try this Python code,



import re
print([m.start(0) for m in re.finditer(r'D', 'uiae1iuae200')][-1])


Prints,



8


Edit:
For making the solution a bit more elegant to behave properly in for all kind of inputs, here is the updated code. Now the solution goes in two lines as the check has to be performed if list is empty then it will print -1 else the index value.



import re

arr = ['', '123', 'uiae1iuae200', 'uiae1iuae200aaaaaaaa']

for s in arr:
lst = [m.start() for m in re.finditer(r'D', s)]
print(s, '-->', lst[-1] if len(lst) > 0 else None)


Prints the following, where if no such index is found then prints None instead of index.



 --> None
123 --> None
uiae1iuae200 --> 8
uiae1iuae200aaaaaaaa --> 19


Edit:
As OP stated in his post, d was only an example we started with, due to which I came up with a solution to work with any general regex. But, if this problem has to be really done with d only, then I can give a better solution which would not require list comprehension at all and can be easily written by using a better regex to find the last occurrence of non-digit character and print its position. We can use .*(D) regex to find the last occurrence of non-digit and easily print its index using following Python code,



import re

arr = ['', '123', 'uiae1iuae200', 'uiae1iuae200aaaaaaaa']

for s in arr:
m = re.match(r'.*(D)', s)
print(s, '-->', m.start(1) if m else None)


Prints the string and their corresponding index of non-digit char and None if not found any,



 --> None
123 --> None
uiae1iuae200 --> 8
uiae1iuae200aaaaaaaa --> 19


And as you can see, this code doesn't need to use any list comprehension and is better as it can just find the index by just one regex call to match.



But in case OP indeed meant it to be written using any general regex pattern, then my above code using comprehension will be needed. I can even write it as a function that can take the regex (like d or even a complex one) as an argument and will dynamically generate a negative of passed regex and use that in the code. Let me know if this indeed is needed.






share|improve this answer





















  • 1





    Upside: one-liner possible (move the [-1] one line up). Downside: list comprehension required. Still a very good take on my question I guess!

    – geekoverdose
    10 hours ago











  • @geekoverdose: If we have to do it using d as regex pattern, see my edited answer's last part to show, how it can be done much easily using just one call to re.match and get the index of last non-digit char without list comprehension or any such sort of thing.

    – Pushpesh Kumar Rajwanshi
    2 hours ago











  • I don't really see thought what kind of pattern can your list comprehension handle that the re.match can't?

    – ruohola
    2 hours ago



















2














To me it sems that you just want the last position which matches a given pattern (in this case the not a number pattern).

This will do the job quite nicely:



import re

string = 'uiae1iuae200'
pattern = r'[^0-9]'

match = re.match(f'.*({pattern})', string)
print(match.end(1) - 1 if match else None)



Output:



8






share|improve this answer





















  • 1





    This goes towards what I am aiming for. Will test it when I have time!

    – geekoverdose
    11 hours ago











  • You defaced your original answer which was actually great. Now both your solutions uselessly clug the memory, and are no longer readable.

    – Right leg
    8 hours ago











  • @geekoverdose Check my new answer :)

    – ruohola
    6 hours ago











  • @ruohola: Like I said earlier, OP used d just as an example as it was easy to demonstrate the example and in that case using list comprehension or something similar would be needed to store the multiple matches and their result. But if we really have to do it just for d as example, it can be done in a much easier way using a better regex. Check my edited answer to see how using a proper regex can avoid using list or list comprehension or any such thing in getting the index much easily, but this is only if d is the pattern.

    – Pushpesh Kumar Rajwanshi
    2 hours ago











  • @PushpeshKumarRajwanshi Yeah, I +1 you, your solutions are really nice.

    – ruohola
    2 hours ago



















0














This does not look Pythonic because it's not a one-liner, and it uses range(len(foo)), but it's pretty straightforward and probably not too inefficient.



def last_match(pattern, string):
for i in range(1, len(string) + 1):
substring = string[-i:]
if re.match(pattern, substring):
return len(string) - i


The idea is to iterate over the suffixes of string from the shortest to the longest, and to check if it matches pattern.



Since we're checking from the end, we know for sure that the first substring we meet that matches the pattern is the last.






share|improve this answer



















  • 2





    This is just not pythonic at all.

    – ruohola
    11 hours ago











  • I've come up with something similar to this, but I am not satisfied with its structure. A pythonic one-liner that is easily understand- and maintainable would be preferred. If this really is one of the most pythonic ways to achieve my goal, then I feel like filing a bug report with Python for this.

    – geekoverdose
    11 hours ago













  • @ruohola I'm interested to hear your criteria.

    – Right leg
    11 hours ago






  • 1





    This is not very readable, uses the range(len(foo)) antipattern, is quite a lot of lines etc. It's a valid solution, but when OP asked specifically for a 'pythonic' solution, I don't feel like this cuts it.

    – ruohola
    11 hours ago






  • 2





    I think you guys are confusing what pythonic is. Zen of python: "Readability counts." A crunched one liner doesn't mean its pythonic.

    – Julian Camilleri
    10 hours ago












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3 Answers
3






active

oldest

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3 Answers
3






active

oldest

votes









active

oldest

votes






active

oldest

votes









6














You can use re.finditer to extract start positions of all matches and return the last one from list. Try this Python code,



import re
print([m.start(0) for m in re.finditer(r'D', 'uiae1iuae200')][-1])


Prints,



8


Edit:
For making the solution a bit more elegant to behave properly in for all kind of inputs, here is the updated code. Now the solution goes in two lines as the check has to be performed if list is empty then it will print -1 else the index value.



import re

arr = ['', '123', 'uiae1iuae200', 'uiae1iuae200aaaaaaaa']

for s in arr:
lst = [m.start() for m in re.finditer(r'D', s)]
print(s, '-->', lst[-1] if len(lst) > 0 else None)


Prints the following, where if no such index is found then prints None instead of index.



 --> None
123 --> None
uiae1iuae200 --> 8
uiae1iuae200aaaaaaaa --> 19


Edit:
As OP stated in his post, d was only an example we started with, due to which I came up with a solution to work with any general regex. But, if this problem has to be really done with d only, then I can give a better solution which would not require list comprehension at all and can be easily written by using a better regex to find the last occurrence of non-digit character and print its position. We can use .*(D) regex to find the last occurrence of non-digit and easily print its index using following Python code,



import re

arr = ['', '123', 'uiae1iuae200', 'uiae1iuae200aaaaaaaa']

for s in arr:
m = re.match(r'.*(D)', s)
print(s, '-->', m.start(1) if m else None)


Prints the string and their corresponding index of non-digit char and None if not found any,



 --> None
123 --> None
uiae1iuae200 --> 8
uiae1iuae200aaaaaaaa --> 19


And as you can see, this code doesn't need to use any list comprehension and is better as it can just find the index by just one regex call to match.



But in case OP indeed meant it to be written using any general regex pattern, then my above code using comprehension will be needed. I can even write it as a function that can take the regex (like d or even a complex one) as an argument and will dynamically generate a negative of passed regex and use that in the code. Let me know if this indeed is needed.






share|improve this answer





















  • 1





    Upside: one-liner possible (move the [-1] one line up). Downside: list comprehension required. Still a very good take on my question I guess!

    – geekoverdose
    10 hours ago











  • @geekoverdose: If we have to do it using d as regex pattern, see my edited answer's last part to show, how it can be done much easily using just one call to re.match and get the index of last non-digit char without list comprehension or any such sort of thing.

    – Pushpesh Kumar Rajwanshi
    2 hours ago











  • I don't really see thought what kind of pattern can your list comprehension handle that the re.match can't?

    – ruohola
    2 hours ago
















6














You can use re.finditer to extract start positions of all matches and return the last one from list. Try this Python code,



import re
print([m.start(0) for m in re.finditer(r'D', 'uiae1iuae200')][-1])


Prints,



8


Edit:
For making the solution a bit more elegant to behave properly in for all kind of inputs, here is the updated code. Now the solution goes in two lines as the check has to be performed if list is empty then it will print -1 else the index value.



import re

arr = ['', '123', 'uiae1iuae200', 'uiae1iuae200aaaaaaaa']

for s in arr:
lst = [m.start() for m in re.finditer(r'D', s)]
print(s, '-->', lst[-1] if len(lst) > 0 else None)


Prints the following, where if no such index is found then prints None instead of index.



 --> None
123 --> None
uiae1iuae200 --> 8
uiae1iuae200aaaaaaaa --> 19


Edit:
As OP stated in his post, d was only an example we started with, due to which I came up with a solution to work with any general regex. But, if this problem has to be really done with d only, then I can give a better solution which would not require list comprehension at all and can be easily written by using a better regex to find the last occurrence of non-digit character and print its position. We can use .*(D) regex to find the last occurrence of non-digit and easily print its index using following Python code,



import re

arr = ['', '123', 'uiae1iuae200', 'uiae1iuae200aaaaaaaa']

for s in arr:
m = re.match(r'.*(D)', s)
print(s, '-->', m.start(1) if m else None)


Prints the string and their corresponding index of non-digit char and None if not found any,



 --> None
123 --> None
uiae1iuae200 --> 8
uiae1iuae200aaaaaaaa --> 19


And as you can see, this code doesn't need to use any list comprehension and is better as it can just find the index by just one regex call to match.



But in case OP indeed meant it to be written using any general regex pattern, then my above code using comprehension will be needed. I can even write it as a function that can take the regex (like d or even a complex one) as an argument and will dynamically generate a negative of passed regex and use that in the code. Let me know if this indeed is needed.






share|improve this answer





















  • 1





    Upside: one-liner possible (move the [-1] one line up). Downside: list comprehension required. Still a very good take on my question I guess!

    – geekoverdose
    10 hours ago











  • @geekoverdose: If we have to do it using d as regex pattern, see my edited answer's last part to show, how it can be done much easily using just one call to re.match and get the index of last non-digit char without list comprehension or any such sort of thing.

    – Pushpesh Kumar Rajwanshi
    2 hours ago











  • I don't really see thought what kind of pattern can your list comprehension handle that the re.match can't?

    – ruohola
    2 hours ago














6












6








6







You can use re.finditer to extract start positions of all matches and return the last one from list. Try this Python code,



import re
print([m.start(0) for m in re.finditer(r'D', 'uiae1iuae200')][-1])


Prints,



8


Edit:
For making the solution a bit more elegant to behave properly in for all kind of inputs, here is the updated code. Now the solution goes in two lines as the check has to be performed if list is empty then it will print -1 else the index value.



import re

arr = ['', '123', 'uiae1iuae200', 'uiae1iuae200aaaaaaaa']

for s in arr:
lst = [m.start() for m in re.finditer(r'D', s)]
print(s, '-->', lst[-1] if len(lst) > 0 else None)


Prints the following, where if no such index is found then prints None instead of index.



 --> None
123 --> None
uiae1iuae200 --> 8
uiae1iuae200aaaaaaaa --> 19


Edit:
As OP stated in his post, d was only an example we started with, due to which I came up with a solution to work with any general regex. But, if this problem has to be really done with d only, then I can give a better solution which would not require list comprehension at all and can be easily written by using a better regex to find the last occurrence of non-digit character and print its position. We can use .*(D) regex to find the last occurrence of non-digit and easily print its index using following Python code,



import re

arr = ['', '123', 'uiae1iuae200', 'uiae1iuae200aaaaaaaa']

for s in arr:
m = re.match(r'.*(D)', s)
print(s, '-->', m.start(1) if m else None)


Prints the string and their corresponding index of non-digit char and None if not found any,



 --> None
123 --> None
uiae1iuae200 --> 8
uiae1iuae200aaaaaaaa --> 19


And as you can see, this code doesn't need to use any list comprehension and is better as it can just find the index by just one regex call to match.



But in case OP indeed meant it to be written using any general regex pattern, then my above code using comprehension will be needed. I can even write it as a function that can take the regex (like d or even a complex one) as an argument and will dynamically generate a negative of passed regex and use that in the code. Let me know if this indeed is needed.






share|improve this answer















You can use re.finditer to extract start positions of all matches and return the last one from list. Try this Python code,



import re
print([m.start(0) for m in re.finditer(r'D', 'uiae1iuae200')][-1])


Prints,



8


Edit:
For making the solution a bit more elegant to behave properly in for all kind of inputs, here is the updated code. Now the solution goes in two lines as the check has to be performed if list is empty then it will print -1 else the index value.



import re

arr = ['', '123', 'uiae1iuae200', 'uiae1iuae200aaaaaaaa']

for s in arr:
lst = [m.start() for m in re.finditer(r'D', s)]
print(s, '-->', lst[-1] if len(lst) > 0 else None)


Prints the following, where if no such index is found then prints None instead of index.



 --> None
123 --> None
uiae1iuae200 --> 8
uiae1iuae200aaaaaaaa --> 19


Edit:
As OP stated in his post, d was only an example we started with, due to which I came up with a solution to work with any general regex. But, if this problem has to be really done with d only, then I can give a better solution which would not require list comprehension at all and can be easily written by using a better regex to find the last occurrence of non-digit character and print its position. We can use .*(D) regex to find the last occurrence of non-digit and easily print its index using following Python code,



import re

arr = ['', '123', 'uiae1iuae200', 'uiae1iuae200aaaaaaaa']

for s in arr:
m = re.match(r'.*(D)', s)
print(s, '-->', m.start(1) if m else None)


Prints the string and their corresponding index of non-digit char and None if not found any,



 --> None
123 --> None
uiae1iuae200 --> 8
uiae1iuae200aaaaaaaa --> 19


And as you can see, this code doesn't need to use any list comprehension and is better as it can just find the index by just one regex call to match.



But in case OP indeed meant it to be written using any general regex pattern, then my above code using comprehension will be needed. I can even write it as a function that can take the regex (like d or even a complex one) as an argument and will dynamically generate a negative of passed regex and use that in the code. Let me know if this indeed is needed.







share|improve this answer














share|improve this answer



share|improve this answer








edited 2 hours ago

























answered 11 hours ago









Pushpesh Kumar RajwanshiPushpesh Kumar Rajwanshi

13.8k21331




13.8k21331








  • 1





    Upside: one-liner possible (move the [-1] one line up). Downside: list comprehension required. Still a very good take on my question I guess!

    – geekoverdose
    10 hours ago











  • @geekoverdose: If we have to do it using d as regex pattern, see my edited answer's last part to show, how it can be done much easily using just one call to re.match and get the index of last non-digit char without list comprehension or any such sort of thing.

    – Pushpesh Kumar Rajwanshi
    2 hours ago











  • I don't really see thought what kind of pattern can your list comprehension handle that the re.match can't?

    – ruohola
    2 hours ago














  • 1





    Upside: one-liner possible (move the [-1] one line up). Downside: list comprehension required. Still a very good take on my question I guess!

    – geekoverdose
    10 hours ago











  • @geekoverdose: If we have to do it using d as regex pattern, see my edited answer's last part to show, how it can be done much easily using just one call to re.match and get the index of last non-digit char without list comprehension or any such sort of thing.

    – Pushpesh Kumar Rajwanshi
    2 hours ago











  • I don't really see thought what kind of pattern can your list comprehension handle that the re.match can't?

    – ruohola
    2 hours ago








1




1





Upside: one-liner possible (move the [-1] one line up). Downside: list comprehension required. Still a very good take on my question I guess!

– geekoverdose
10 hours ago





Upside: one-liner possible (move the [-1] one line up). Downside: list comprehension required. Still a very good take on my question I guess!

– geekoverdose
10 hours ago













@geekoverdose: If we have to do it using d as regex pattern, see my edited answer's last part to show, how it can be done much easily using just one call to re.match and get the index of last non-digit char without list comprehension or any such sort of thing.

– Pushpesh Kumar Rajwanshi
2 hours ago





@geekoverdose: If we have to do it using d as regex pattern, see my edited answer's last part to show, how it can be done much easily using just one call to re.match and get the index of last non-digit char without list comprehension or any such sort of thing.

– Pushpesh Kumar Rajwanshi
2 hours ago













I don't really see thought what kind of pattern can your list comprehension handle that the re.match can't?

– ruohola
2 hours ago





I don't really see thought what kind of pattern can your list comprehension handle that the re.match can't?

– ruohola
2 hours ago













2














To me it sems that you just want the last position which matches a given pattern (in this case the not a number pattern).

This will do the job quite nicely:



import re

string = 'uiae1iuae200'
pattern = r'[^0-9]'

match = re.match(f'.*({pattern})', string)
print(match.end(1) - 1 if match else None)



Output:



8






share|improve this answer





















  • 1





    This goes towards what I am aiming for. Will test it when I have time!

    – geekoverdose
    11 hours ago











  • You defaced your original answer which was actually great. Now both your solutions uselessly clug the memory, and are no longer readable.

    – Right leg
    8 hours ago











  • @geekoverdose Check my new answer :)

    – ruohola
    6 hours ago











  • @ruohola: Like I said earlier, OP used d just as an example as it was easy to demonstrate the example and in that case using list comprehension or something similar would be needed to store the multiple matches and their result. But if we really have to do it just for d as example, it can be done in a much easier way using a better regex. Check my edited answer to see how using a proper regex can avoid using list or list comprehension or any such thing in getting the index much easily, but this is only if d is the pattern.

    – Pushpesh Kumar Rajwanshi
    2 hours ago











  • @PushpeshKumarRajwanshi Yeah, I +1 you, your solutions are really nice.

    – ruohola
    2 hours ago
















2














To me it sems that you just want the last position which matches a given pattern (in this case the not a number pattern).

This will do the job quite nicely:



import re

string = 'uiae1iuae200'
pattern = r'[^0-9]'

match = re.match(f'.*({pattern})', string)
print(match.end(1) - 1 if match else None)



Output:



8






share|improve this answer





















  • 1





    This goes towards what I am aiming for. Will test it when I have time!

    – geekoverdose
    11 hours ago











  • You defaced your original answer which was actually great. Now both your solutions uselessly clug the memory, and are no longer readable.

    – Right leg
    8 hours ago











  • @geekoverdose Check my new answer :)

    – ruohola
    6 hours ago











  • @ruohola: Like I said earlier, OP used d just as an example as it was easy to demonstrate the example and in that case using list comprehension or something similar would be needed to store the multiple matches and their result. But if we really have to do it just for d as example, it can be done in a much easier way using a better regex. Check my edited answer to see how using a proper regex can avoid using list or list comprehension or any such thing in getting the index much easily, but this is only if d is the pattern.

    – Pushpesh Kumar Rajwanshi
    2 hours ago











  • @PushpeshKumarRajwanshi Yeah, I +1 you, your solutions are really nice.

    – ruohola
    2 hours ago














2












2








2







To me it sems that you just want the last position which matches a given pattern (in this case the not a number pattern).

This will do the job quite nicely:



import re

string = 'uiae1iuae200'
pattern = r'[^0-9]'

match = re.match(f'.*({pattern})', string)
print(match.end(1) - 1 if match else None)



Output:



8






share|improve this answer















To me it sems that you just want the last position which matches a given pattern (in this case the not a number pattern).

This will do the job quite nicely:



import re

string = 'uiae1iuae200'
pattern = r'[^0-9]'

match = re.match(f'.*({pattern})', string)
print(match.end(1) - 1 if match else None)



Output:



8







share|improve this answer














share|improve this answer



share|improve this answer








edited 1 hour ago

























answered 11 hours ago









ruoholaruohola

2,161425




2,161425








  • 1





    This goes towards what I am aiming for. Will test it when I have time!

    – geekoverdose
    11 hours ago











  • You defaced your original answer which was actually great. Now both your solutions uselessly clug the memory, and are no longer readable.

    – Right leg
    8 hours ago











  • @geekoverdose Check my new answer :)

    – ruohola
    6 hours ago











  • @ruohola: Like I said earlier, OP used d just as an example as it was easy to demonstrate the example and in that case using list comprehension or something similar would be needed to store the multiple matches and their result. But if we really have to do it just for d as example, it can be done in a much easier way using a better regex. Check my edited answer to see how using a proper regex can avoid using list or list comprehension or any such thing in getting the index much easily, but this is only if d is the pattern.

    – Pushpesh Kumar Rajwanshi
    2 hours ago











  • @PushpeshKumarRajwanshi Yeah, I +1 you, your solutions are really nice.

    – ruohola
    2 hours ago














  • 1





    This goes towards what I am aiming for. Will test it when I have time!

    – geekoverdose
    11 hours ago











  • You defaced your original answer which was actually great. Now both your solutions uselessly clug the memory, and are no longer readable.

    – Right leg
    8 hours ago











  • @geekoverdose Check my new answer :)

    – ruohola
    6 hours ago











  • @ruohola: Like I said earlier, OP used d just as an example as it was easy to demonstrate the example and in that case using list comprehension or something similar would be needed to store the multiple matches and their result. But if we really have to do it just for d as example, it can be done in a much easier way using a better regex. Check my edited answer to see how using a proper regex can avoid using list or list comprehension or any such thing in getting the index much easily, but this is only if d is the pattern.

    – Pushpesh Kumar Rajwanshi
    2 hours ago











  • @PushpeshKumarRajwanshi Yeah, I +1 you, your solutions are really nice.

    – ruohola
    2 hours ago








1




1





This goes towards what I am aiming for. Will test it when I have time!

– geekoverdose
11 hours ago





This goes towards what I am aiming for. Will test it when I have time!

– geekoverdose
11 hours ago













You defaced your original answer which was actually great. Now both your solutions uselessly clug the memory, and are no longer readable.

– Right leg
8 hours ago





You defaced your original answer which was actually great. Now both your solutions uselessly clug the memory, and are no longer readable.

– Right leg
8 hours ago













@geekoverdose Check my new answer :)

– ruohola
6 hours ago





@geekoverdose Check my new answer :)

– ruohola
6 hours ago













@ruohola: Like I said earlier, OP used d just as an example as it was easy to demonstrate the example and in that case using list comprehension or something similar would be needed to store the multiple matches and their result. But if we really have to do it just for d as example, it can be done in a much easier way using a better regex. Check my edited answer to see how using a proper regex can avoid using list or list comprehension or any such thing in getting the index much easily, but this is only if d is the pattern.

– Pushpesh Kumar Rajwanshi
2 hours ago





@ruohola: Like I said earlier, OP used d just as an example as it was easy to demonstrate the example and in that case using list comprehension or something similar would be needed to store the multiple matches and their result. But if we really have to do it just for d as example, it can be done in a much easier way using a better regex. Check my edited answer to see how using a proper regex can avoid using list or list comprehension or any such thing in getting the index much easily, but this is only if d is the pattern.

– Pushpesh Kumar Rajwanshi
2 hours ago













@PushpeshKumarRajwanshi Yeah, I +1 you, your solutions are really nice.

– ruohola
2 hours ago





@PushpeshKumarRajwanshi Yeah, I +1 you, your solutions are really nice.

– ruohola
2 hours ago











0














This does not look Pythonic because it's not a one-liner, and it uses range(len(foo)), but it's pretty straightforward and probably not too inefficient.



def last_match(pattern, string):
for i in range(1, len(string) + 1):
substring = string[-i:]
if re.match(pattern, substring):
return len(string) - i


The idea is to iterate over the suffixes of string from the shortest to the longest, and to check if it matches pattern.



Since we're checking from the end, we know for sure that the first substring we meet that matches the pattern is the last.






share|improve this answer



















  • 2





    This is just not pythonic at all.

    – ruohola
    11 hours ago











  • I've come up with something similar to this, but I am not satisfied with its structure. A pythonic one-liner that is easily understand- and maintainable would be preferred. If this really is one of the most pythonic ways to achieve my goal, then I feel like filing a bug report with Python for this.

    – geekoverdose
    11 hours ago













  • @ruohola I'm interested to hear your criteria.

    – Right leg
    11 hours ago






  • 1





    This is not very readable, uses the range(len(foo)) antipattern, is quite a lot of lines etc. It's a valid solution, but when OP asked specifically for a 'pythonic' solution, I don't feel like this cuts it.

    – ruohola
    11 hours ago






  • 2





    I think you guys are confusing what pythonic is. Zen of python: "Readability counts." A crunched one liner doesn't mean its pythonic.

    – Julian Camilleri
    10 hours ago
















0














This does not look Pythonic because it's not a one-liner, and it uses range(len(foo)), but it's pretty straightforward and probably not too inefficient.



def last_match(pattern, string):
for i in range(1, len(string) + 1):
substring = string[-i:]
if re.match(pattern, substring):
return len(string) - i


The idea is to iterate over the suffixes of string from the shortest to the longest, and to check if it matches pattern.



Since we're checking from the end, we know for sure that the first substring we meet that matches the pattern is the last.






share|improve this answer



















  • 2





    This is just not pythonic at all.

    – ruohola
    11 hours ago











  • I've come up with something similar to this, but I am not satisfied with its structure. A pythonic one-liner that is easily understand- and maintainable would be preferred. If this really is one of the most pythonic ways to achieve my goal, then I feel like filing a bug report with Python for this.

    – geekoverdose
    11 hours ago













  • @ruohola I'm interested to hear your criteria.

    – Right leg
    11 hours ago






  • 1





    This is not very readable, uses the range(len(foo)) antipattern, is quite a lot of lines etc. It's a valid solution, but when OP asked specifically for a 'pythonic' solution, I don't feel like this cuts it.

    – ruohola
    11 hours ago






  • 2





    I think you guys are confusing what pythonic is. Zen of python: "Readability counts." A crunched one liner doesn't mean its pythonic.

    – Julian Camilleri
    10 hours ago














0












0








0







This does not look Pythonic because it's not a one-liner, and it uses range(len(foo)), but it's pretty straightforward and probably not too inefficient.



def last_match(pattern, string):
for i in range(1, len(string) + 1):
substring = string[-i:]
if re.match(pattern, substring):
return len(string) - i


The idea is to iterate over the suffixes of string from the shortest to the longest, and to check if it matches pattern.



Since we're checking from the end, we know for sure that the first substring we meet that matches the pattern is the last.






share|improve this answer













This does not look Pythonic because it's not a one-liner, and it uses range(len(foo)), but it's pretty straightforward and probably not too inefficient.



def last_match(pattern, string):
for i in range(1, len(string) + 1):
substring = string[-i:]
if re.match(pattern, substring):
return len(string) - i


The idea is to iterate over the suffixes of string from the shortest to the longest, and to check if it matches pattern.



Since we're checking from the end, we know for sure that the first substring we meet that matches the pattern is the last.







share|improve this answer












share|improve this answer



share|improve this answer










answered 11 hours ago









Right legRight leg

8,70342450




8,70342450








  • 2





    This is just not pythonic at all.

    – ruohola
    11 hours ago











  • I've come up with something similar to this, but I am not satisfied with its structure. A pythonic one-liner that is easily understand- and maintainable would be preferred. If this really is one of the most pythonic ways to achieve my goal, then I feel like filing a bug report with Python for this.

    – geekoverdose
    11 hours ago













  • @ruohola I'm interested to hear your criteria.

    – Right leg
    11 hours ago






  • 1





    This is not very readable, uses the range(len(foo)) antipattern, is quite a lot of lines etc. It's a valid solution, but when OP asked specifically for a 'pythonic' solution, I don't feel like this cuts it.

    – ruohola
    11 hours ago






  • 2





    I think you guys are confusing what pythonic is. Zen of python: "Readability counts." A crunched one liner doesn't mean its pythonic.

    – Julian Camilleri
    10 hours ago














  • 2





    This is just not pythonic at all.

    – ruohola
    11 hours ago











  • I've come up with something similar to this, but I am not satisfied with its structure. A pythonic one-liner that is easily understand- and maintainable would be preferred. If this really is one of the most pythonic ways to achieve my goal, then I feel like filing a bug report with Python for this.

    – geekoverdose
    11 hours ago













  • @ruohola I'm interested to hear your criteria.

    – Right leg
    11 hours ago






  • 1





    This is not very readable, uses the range(len(foo)) antipattern, is quite a lot of lines etc. It's a valid solution, but when OP asked specifically for a 'pythonic' solution, I don't feel like this cuts it.

    – ruohola
    11 hours ago






  • 2





    I think you guys are confusing what pythonic is. Zen of python: "Readability counts." A crunched one liner doesn't mean its pythonic.

    – Julian Camilleri
    10 hours ago








2




2





This is just not pythonic at all.

– ruohola
11 hours ago





This is just not pythonic at all.

– ruohola
11 hours ago













I've come up with something similar to this, but I am not satisfied with its structure. A pythonic one-liner that is easily understand- and maintainable would be preferred. If this really is one of the most pythonic ways to achieve my goal, then I feel like filing a bug report with Python for this.

– geekoverdose
11 hours ago







I've come up with something similar to this, but I am not satisfied with its structure. A pythonic one-liner that is easily understand- and maintainable would be preferred. If this really is one of the most pythonic ways to achieve my goal, then I feel like filing a bug report with Python for this.

– geekoverdose
11 hours ago















@ruohola I'm interested to hear your criteria.

– Right leg
11 hours ago





@ruohola I'm interested to hear your criteria.

– Right leg
11 hours ago




1




1





This is not very readable, uses the range(len(foo)) antipattern, is quite a lot of lines etc. It's a valid solution, but when OP asked specifically for a 'pythonic' solution, I don't feel like this cuts it.

– ruohola
11 hours ago





This is not very readable, uses the range(len(foo)) antipattern, is quite a lot of lines etc. It's a valid solution, but when OP asked specifically for a 'pythonic' solution, I don't feel like this cuts it.

– ruohola
11 hours ago




2




2





I think you guys are confusing what pythonic is. Zen of python: "Readability counts." A crunched one liner doesn't mean its pythonic.

– Julian Camilleri
10 hours ago





I think you guys are confusing what pythonic is. Zen of python: "Readability counts." A crunched one liner doesn't mean its pythonic.

– Julian Camilleri
10 hours ago


















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