How do you extract a url from a string using python?
For example:
string = \"This is a link http://www.google.com\"
How could I extract \'http://www.google.com\' ?
(Each link will be
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There is another way how to extract URLs from text easily. You can use urlextract to do it for you, just install it via pip:
pip install urlextractand then you can use it like this:
from urlextract import URLExtract extractor = URLExtract() urls = extractor.find_urls("Let's have URL stackoverflow.com as an example.") print(urls) # prints: ['stackoverflow.com']You can find more info on my github page: https://github.com/lipoja/URLExtract
NOTE: It downloads a list of TLDs from iana.org to keep you up to date. But if the program does not have internet access then it's not for you.
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This extracts all urls with parameters, somehow all above examples haven't worked for me
import re data = 'https://net2333.us3.list-some.com/subscribe/confirm?u=f3cca8a1ffdee924a6a413ae9&id=6c03fa85f8&e=6bbacccc5b' WEB_URL_REGEX = r"""(?i)\b((?:https?:(?:/{1,3}|[a-z0-9%])|[a-z0-9.\-]+[.](?:com|net|org|edu|gov|mil|aero|asia|biz|cat|coop|info|int|jobs|mobi|museum|name|post|pro|tel|travel|xxx|ac|ad|ae|af|ag|ai|al|am|an|ao|aq|ar|as|at|au|aw|ax|az|ba|bb|bd|be|bf|bg|bh|bi|bj|bm|bn|bo|br|bs|bt|bv|bw|by|bz|ca|cc|cd|cf|cg|ch|ci|ck|cl|cm|cn|co|cr|cs|cu|cv|cx|cy|cz|dd|de|dj|dk|dm|do|dz|ec|ee|eg|eh|er|es|et|eu|fi|fj|fk|fm|fo|fr|ga|gb|gd|ge|gf|gg|gh|gi|gl|gm|gn|gp|gq|gr|gs|gt|gu|gw|gy|hk|hm|hn|hr|ht|hu|id|ie|il|im|in|io|iq|ir|is|it|je|jm|jo|jp|ke|kg|kh|ki|km|kn|kp|kr|kw|ky|kz|la|lb|lc|li|lk|lr|ls|lt|lu|lv|ly|ma|mc|md|me|mg|mh|mk|ml|mm|mn|mo|mp|mq|mr|ms|mt|mu|mv|mw|mx|my|mz|na|nc|ne|nf|ng|ni|nl|no|np|nr|nu|nz|om|pa|pe|pf|pg|ph|pk|pl|pm|pn|pr|ps|pt|pw|py|qa|re|ro|rs|ru|rw|sa|sb|sc|sd|se|sg|sh|si|sj|Ja|sk|sl|sm|sn|so|sr|ss|st|su|sv|sx|sy|sz|tc|td|tf|tg|th|tj|tk|tl|tm|tn|to|tp|tr|tt|tv|tw|tz|ua|ug|uk|us|uy|uz|va|vc|ve|vg|vi|vn|vu|wf|ws|ye|yt|yu|za|zm|zw)/)(?:[^\s()<>{}\[\]]+|\([^\s()]*?\([^\s()]+\)[^\s()]*?\)|\([^\s]+?\))+(?:\([^\s()]*?\([^\s()]+\)[^\s()]*?\)|\([^\s]+?\)|[^\s`!()\[\]{};:'".,<>?«»“”‘’])|(?:(?<!@)[a-z0-9]+(?:[.\-][a-z0-9]+)*[.](?:com|net|org|edu|gov|mil|aero|asia|biz|cat|coop|info|int|jobs|mobi|museum|name|post|pro|tel|travel|xxx|ac|ad|ae|af|ag|ai|al|am|an|ao|aq|ar|as|at|au|aw|ax|az|ba|bb|bd|be|bf|bg|bh|bi|bj|bm|bn|bo|br|bs|bt|bv|bw|by|bz|ca|cc|cd|cf|cg|ch|ci|ck|cl|cm|cn|co|cr|cs|cu|cv|cx|cy|cz|dd|de|dj|dk|dm|do|dz|ec|ee|eg|eh|er|es|et|eu|fi|fj|fk|fm|fo|fr|ga|gb|gd|ge|gf|gg|gh|gi|gl|gm|gn|gp|gq|gr|gs|gt|gu|gw|gy|hk|hm|hn|hr|ht|hu|id|ie|il|im|in|io|iq|ir|is|it|je|jm|jo|jp|ke|kg|kh|ki|km|kn|kp|kr|kw|ky|kz|la|lb|lc|li|lk|lr|ls|lt|lu|lv|ly|ma|mc|md|me|mg|mh|mk|ml|mm|mn|mo|mp|mq|mr|ms|mt|mu|mv|mw|mx|my|mz|na|nc|ne|nf|ng|ni|nl|no|np|nr|nu|nz|om|pa|pe|pf|pg|ph|pk|pl|pm|pn|pr|ps|pt|pw|py|qa|re|ro|rs|ru|rw|sa|sb|sc|sd|se|sg|sh|si|sj|Ja|sk|sl|sm|sn|so|sr|ss|st|su|sv|sx|sy|sz|tc|td|tf|tg|th|tj|tk|tl|tm|tn|to|tp|tr|tt|tv|tw|tz|ua|ug|uk|us|uy|uz|va|vc|ve|vg|vi|vn|vu|wf|ws|ye|yt|yu|za|zm|zw)\b/?(?!@)))""" re.findall(WEB_URL_REGEX, text)讨论(0) -
You can extract any URL from a string using the following patterns,
1.
>>> import re >>> string = "This is a link http://www.google.com" >>> pattern = r'[(http://)|\w]*?[\w]*\.[-/\w]*\.\w*[(/{1})]?[#-\./\w]*[(/{1,})]?' >>> re.search(pattern, string) http://www.google.com >>> TWEET = ('New Pybites article: Module of the Week - Requests-cache ' 'for Repeated API Calls - http://pybit.es/requests-cache.html ' '#python #APIs') >>> re.search(pattern, TWEET) http://pybit.es/requests-cache.html >>> tweet = ('Pybites My Reading List | 12 Rules for Life - #books ' 'that expand the mind! ' 'http://pbreadinglist.herokuapp.com/books/' 'TvEqDAAAQBAJ#.XVOriU5z2tA.twitter' ' #psychology #philosophy') >>> re.findall(pattern, TWEET) ['http://pbreadinglist.herokuapp.com/books/TvEqDAAAQBAJ#.XVOriU5z2tA.twitter']to take the above pattern to the next level, we can also detect hashtags including URL the following ways
2.
>>> pattern = r'[(http://)|\w]*?[\w]*\.[-/\w]*\.\w*[(/{1})]?[#-\./\w]*[(/{1,})]?|#[.\w]*' >>> re.findall(pattern, tweet) ['#books', http://pbreadinglist.herokuapp.com/books/TvEqDAAAQBAJ#.XVOriU5z2tA.twitter', '#psychology', '#philosophy']The above example for taking URL and hashtags can be shortened to
>>> pattern = r'((?:#|http)\S+)' >>> re.findall(pattern, tweet) ['#books', http://pbreadinglist.herokuapp.com/books/TvEqDAAAQBAJ#.XVOriU5z2tA.twitter', '#psychology', '#philosophy']The pattern below can matches two alphanumeric separated by "." as URL
>>> pattern = pattern = r'(?:http://)?\w+\.\S*[^.\s]' >>> tweet = ('PyBites My Reading List | 12 Rules for Life - #books ' 'that expand the mind! ' 'www.google.com/telephone/wire.... ' 'http://pbreadinglist.herokuapp.com/books/' 'TvEqDAAAQBAJ#.XVOriU5z2tA.twitter ' "http://-www.pip.org " "google.com " "twitter.com " "facebook.com" ' #psychology #philosophy') >>> re.findall(pattern, tweet) ['www.google.com/telephone/wire', 'http://pbreadinglist.herokuapp.com/books/TvEqDAAAQBAJ#.XVOriU5z2tA.twitter', 'www.pip.org', 'google.com', 'twitter.com', 'facebook.com']You can try any complicated URL with the number 1 & 2 pattern. To learn more about re module in python, do check this out REGEXES IN PYTHON at Real Python.
Cheers!
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There may be few ways to do this but the cleanest would be to use regex
>>> myString = "This is a link http://www.google.com" >>> print re.search("(?P<url>https?://[^\s]+)", myString).group("url") http://www.google.comIf there can be multiple links you can use something similar to below
>>> myString = "These are the links http://www.google.com and http://stackoverflow.com/questions/839994/extracting-a-url-in-python" >>> print re.findall(r'(https?://[^\s]+)', myString) ['http://www.google.com', 'http://stackoverflow.com/questions/839994/extracting-a-url-in-python'] >>>讨论(0) -
In order to find a web URL in a generic string, you can use a regular expression (regex).
A simple regex for URL matching like the following should fit your case.
regex = r'(' # Scheme (HTTP, HTTPS, FTP and SFTP): regex += r'(?:(https?|s?ftp):\/\/)?' # www: regex += r'(?:www\.)?' regex += r'(' # Host and domain (including ccSLD): regex += r'(?:(?:[A-Z0-9][A-Z0-9-]{0,61}[A-Z0-9]\.)+)' # TLD: regex += r'([A-Z]{2,6})' # IP Address: regex += r'|(?:\d{1,3}\.\d{1,3}\.\d{1,3}\.\d{1,3})' regex += r')' # Port: regex += r'(?::(\d{1,5}))?' # Query path: regex += r'(?:(\/\S+)*)' regex += r')'If you want to be even more precise, in the TLD section, you should ensure that the TLD is a valid TLD (see the entire list of valid TLDs here: https://data.iana.org/TLD/tlds-alpha-by-domain.txt):
# TLD: regex += r'(com|net|org|eu|...)'Then, you can simply compile the former regex and use it to find possible matches:
import re string = "This is a link http://www.google.com" find_urls_in_string = re.compile(regex, re.IGNORECASE) url = find_urls_in_string.search(string) if url is not None and url.group(0) is not None: print("URL parts: " + str(url.groups())) print("URL" + url.group(0).strip())Which, in case of the string "This is a link http://www.google.com" will output:
URL parts: ('http://www.google.com', 'http', 'google.com', 'com', None, None) URL: http://www.google.comIf you change the input with a more complex URL, for example "This is also a URL https://www.host.domain.com:80/path/page.php?query=value&a2=v2#foo but this is not anymore" the output will be:
URL parts: ('https://www.host.domain.com:80/path/page.php?query=value&a2=v2#foo', 'https', 'host.domain.com', 'com', '80', '/path/page.php?query=value&a2=v2#foo') URL: https://www.host.domain.com:80/path/page.php?query=value&a2=v2#fooNOTE: If you are looking for more URLs in a single string, you can still use the same regex, but just use findall() instead of search().
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