问题
I have url from the user and I have to reply with the fetched HTML.
How can I check for the URL to be malformed or not ?
For Example :
url=\'google\' // Malformed
url=\'google.com\' // Malformed
url=\'http://google.com\' // Valid
url=\'http://google\' // Malformed
How can we achieve this ?
回答1:
django url validation regex:
regex = re.compile(
r'^(?:http|ftp)s?://' # http:// or https://
r'(?:(?:[A-Z0-9](?:[A-Z0-9-]{0,61}[A-Z0-9])?\.)+(?:[A-Z]{2,6}\.?|[A-Z0-9-]{2,}\.?)|' #domain...
r'localhost|' #localhost...
r'\d{1,3}\.\d{1,3}\.\d{1,3}\.\d{1,3})' # ...or ip
r'(?::\d+)?' # optional port
r'(?:/?|[/?]\S+)$', re.IGNORECASE)
print re.match(regex, "http://www.example.com") is not None # True
print re.match(regex, "example.com") is not None # False
回答2:
Actually, I think this is the best way.
from django.core.validators import URLValidator
from django.core.exceptions import ValidationError
val = URLValidator(verify_exists=False)
try:
val('http://www.google.com')
except ValidationError, e:
print e
If you set verify_exists to True, it will actually verify that the URL exists, otherwise it will just check if it's formed correctly.
edit: ah yeah, this question is a duplicate of this: How can I check if a URL exists with Django’s validators?
回答3:
Use the validators package:
>>> import validators
>>> validators.url("http://google.com")
True
>>> validators.url("http://google")
ValidationFailure(func=url, args={'value': 'http://google', 'require_tld': True})
>>> if not validators.url("http://google"):
... print "not valid"
...
not valid
>>>
Install it from PyPI with pip (pip install validators).
回答4:
A True or False version, based on @DMfll answer:
try:
# python2
from urlparse import urlparse
except:
# python3
from urllib.parse import urlparse
a = 'http://www.cwi.nl:80/%7Eguido/Python.html'
b = '/data/Python.html'
c = 532
d = u'dkakasdkjdjakdjadjfalskdjfalk'
def uri_validator(x):
try:
result = urlparse(x)
return all([result.scheme, result.netloc, result.path])
except:
return False
print(uri_validator(a))
print(uri_validator(b))
print(uri_validator(c))
print(uri_validator(d))
Gives:
True
True
False
True
回答5:
Nowadays, I use the following, based on the Padam's answer:
$ python --version
Python 3.6.5
And this is how it looks:
from urllib.parse import urlparse
def is_url(url):
try:
result = urlparse(url)
return all([result.scheme, result.netloc])
except ValueError:
return False
Just use is_url("http://www.asdf.com").
Hope it helps!
回答6:
note - lepl is no longer supported, sorry (you're welcome to use it, and i think the code below works, but it's not going to get updates).
rfc 3696 http://www.faqs.org/rfcs/rfc3696.html defines how to do this (for http urls and email). i implemented its recommendations in python using lepl (a parser library). see http://acooke.org/lepl/rfc3696.html
to use:
> easy_install lepl
...
> python
...
>>> from lepl.apps.rfc3696 import HttpUrl
>>> validator = HttpUrl()
>>> validator('google')
False
>>> validator('http://google')
False
>>> validator('http://google.com')
True
回答7:
I landed on this page trying to figure out a sane way to validate strings as "valid" urls. I share here my solution using python3. No extra libraries required.
See https://docs.python.org/2/library/urlparse.html if you are using python2.
See https://docs.python.org/3.0/library/urllib.parse.html if you are using python3 as I am.
import urllib
from pprint import pprint
invalid_url = 'dkakasdkjdjakdjadjfalskdjfalk'
valid_url = 'https://stackoverflow.com'
tokens = [urllib.parse.urlparse(url) for url in (invalid_url, valid_url)]
for token in tokens:
pprint(token)
min_attributes = ('scheme', 'netloc') # add attrs to your liking
for token in tokens:
if not all([getattr(token, attr) for attr in min_attributes]):
error = "'{url}' string has no scheme or netloc.".format(url=token.geturl())
print(error)
else:
print("'{url}' is probably a valid url.".format(url=token.geturl()))
ParseResult(scheme='', netloc='', path='dkakasdkjdjakdjadjfalskdjfalk', params='', query='', fragment='')
ParseResult(scheme='https', netloc='stackoverflow.com', path='', params='', query='', fragment='')
'dkakasdkjdjakdjadjfalskdjfalk' string has no scheme or netloc.
'https://stackoverflow.com' is probably a valid url.
Here is a more concise function:
import urllib
min_attributes = ('scheme', 'netloc')
def is_valid(url, qualifying=None):
qualifying = min_attributes if qualifying is None else qualifying
token = urllib.parse.urlparse(url)
return all([getattr(token, qualifying_attr)
for qualifying_attr in qualifying])
回答8:
EDIT
As pointed out by @Kwame , the below code does validate the url even if the
.comor.coetc are not present.also pointed out by @Blaise, URLs like https://www.google is a valid URL and you need to do a DNS check for checking if it resolves or not, separately.
This is simple and works:
So min_attr contains the basic set of strings that needs to be present to define the validity of a URL,
i.e http:// part and google.com part.
urlparse.scheme stores http:// and
urlparse.netloc store the domain name google.com
from urlparse import urlparse
def url_check(url):
min_attr = ('scheme' , 'netloc')
try:
result = urlparse(url)
if all([result.scheme, result.netloc]):
return True
else:
return False
except:
return False
all() returns true if all the variables inside it return true.
So if result.scheme and result.netloc is present i.e. has some value then the URL is valid and hence returns True.
回答9:
Validate URL with urllib and Django-like regex
The Django URL validation regex was actually pretty good but I needed to tweak it a little bit for my use case. Feel free to adapt it to yours!
Python 3.7
import re
import urllib
# Check https://regex101.com/r/A326u1/5 for reference
DOMAIN_FORMAT = re.compile(
r"(?:^(\w{1,255}):(.{1,255})@|^)" # http basic authentication [optional]
r"(?:(?:(?=\S{0,253}(?:$|:))" # check full domain length to be less than or equal to 253 (starting after http basic auth, stopping before port)
r"((?:[a-z0-9](?:[a-z0-9-]{0,61}[a-z0-9])?\.)+" # check for at least one subdomain (maximum length per subdomain: 63 characters), dashes in between allowed
r"(?:[a-z0-9]{1,63})))" # check for top level domain, no dashes allowed
r"|localhost)" # accept also "localhost" only
r"(:\d{1,5})?", # port [optional]
re.IGNORECASE
)
SCHEME_FORMAT = re.compile(
r"^(http|hxxp|ftp|fxp)s?$", # scheme: http(s) or ftp(s)
re.IGNORECASE
)
def validate_url(url: str):
url = url.strip()
if not url:
raise Exception("No URL specified")
if len(url) > 2048:
raise Exception("URL exceeds its maximum length of 2048 characters (given length={})".format(len(url)))
result = urllib.parse.urlparse(url)
scheme = result.scheme
domain = result.netloc
if not scheme:
raise Exception("No URL scheme specified")
if not re.fullmatch(SCHEME_FORMAT, scheme):
raise Exception("URL scheme must either be http(s) or ftp(s) (given scheme={})".format(scheme))
if not domain:
raise Exception("No URL domain specified")
if not re.fullmatch(DOMAIN_FORMAT, domain):
raise Exception("URL domain malformed (domain={})".format(domain))
return url
Explanation
- The code only validates the
schemeandnetlocpart of a given URL. (To do this properly, I split the URL withurllib.parse.urlparse()in the two according parts which are then matched with the corresponding regex terms.) The
netlocpart stops before the first occurrence of a slash/, soportnumbers are still part of thenetloc, e.g.:https://www.google.com:80/search?q=python ^^^^^ ^^^^^^^^^^^^^^^^^ | | | +-- netloc (aka "domain" in my code) +-- schemeIPv4 addresses are also validated
IPv6 Support
If you want the URL validator to also work with IPv6 addresses, do the following:
- Add
is_valid_ipv6(ip)from Markus Jarderot's answer, which has a really good IPv6 validator regex - Add
and not is_valid_ipv6(domain)to the lastif
Examples
Here are some examples of the regex for the netloc (aka domain) part in action:
- IPv4 and alphanumeric: https://regex101.com/r/A326u1/5
- IPv6: https://regex101.com/r/lKIIgq/1 (with the regex from Markus Jarderot's answer)
来源:https://stackoverflow.com/questions/7160737/python-how-to-validate-a-url-in-python-malformed-or-not