I wrote python code to search for an image in google with some google dork keywords. Here is the code:
def showD(self):
self.text, ok = QInputDialog.getText(self, 'Write A Keyword', 'Example:"twitter.com"')
if ok == True:
self.google()
def google(self):
filePath = self.imagePath
domain = self.text
searchUrl = 'http://www.google.com/searchbyimage/upload'
multipart = {'encoded_image': (filePath, open(filePath, 'rb')), 'image_content': '', 'q': f'site:{domain}'}
response = requests.post(searchUrl, files=multipart, allow_redirects=False)
fetchUrl = response.headers['Location']
webbrowser.open(fetchUrl)
App = QApplication(sys.argv)
window = Window()
sys.exit(App.exec())
I just didn't figure how to display the url of the search result in my program. I tried this code:
import requests
from bs4 import BeautifulSoup
import re
query = "twitter"
search = query.replace(' ', '+')
results = 15
url = (f"https://www.google.com/search?q={search}&num={results}")
requests_results = requests.get(url)
soup_link = BeautifulSoup(requests_results.content, "html.parser")
links = soup_link.find_all("a")
for link in links:
link_href = link.get('href')
if "url?q=" in link_href and not "webcache" in link_href:
title = link.find_all('h3')
if len(title) > 0:
print(link.get('href').split("?q=")[1].split("&sa=U")[0])
# print(title[0].getText())
print("------")
But it only works for normal google search keyword and failed when I try to optimize it for the result of google image search. It didn't display any result.
Currently there is no simple way to scrape Google's "Search by image" using plain HTTPS requests. Before responding to this type of request, they presumably check if user is real using several sophisticated techniques. Even your working example of code does not work for long — it happens to be banned by Google after 20-100 requests.
All public solutions in Python that really scrape Google with images use Selenium and imitate the real user behaviour. So you can go this way yourself. Interfaces of python-selenium binding are not so tough to get used to, except maybe the setup process.
The best of them, for my taste, is hardikvasa/google-images-download (7.8K stars on Github). Unfortunately, this library has no such input interface as image path or image in binary format. It only has the similar_images parameter which expects a URL. Nevertheless, you can try to use it with http://localhost:1234/... URL (you can easily set one up this way).
You can check all these questions and see that all the solutions use Selenium for this task.
I would like to scrape just the title of a webpage using Python. I need to do this for thousands of sites so it has to be fast. I've seen previous questions like retrieving just the title of a webpage in python, but all of the ones I've found download the entire page before retrieving the title, which seems highly inefficient as most often the title is contained within the first few lines of HTML.
Is it possible to download only the parts of the webpage until the title has been found?
I've tried the following, but page.readline() downloads the entire page.
import urllib2
print("Looking up {}".format(link))
hdr = {'User-Agent': 'Mozilla/5.0',
'Accept': 'text/html,application/xhtml+xml,application/xml;q=0.9,*/*;q=0.8',
'Accept-Charset': 'ISO-8859-1,utf-8;q=0.7,*;q=0.3',
'Accept-Encoding': 'none',
'Accept-Language': 'en-US,en;q=0.8',
'Connection': 'keep-alive'}
req = urllib2.Request(link, headers=hdr)
page = urllib2.urlopen(req, timeout=10)
content = ''
while '</title>' not in content:
content = content + page.readline()
-- Edit --
Note that my current solution makes use of BeautifulSoup constrained to only process the title so the only place I can optimize is likely to not read in the entire page.
title_selector = SoupStrainer('title')
soup = BeautifulSoup(page, "lxml", parse_only=title_selector)
title = soup.title.string.strip()
-- Edit 2 --
I've found that BeautifulSoup itself splits the content into multiple strings in the self.current_data
variable (see this function in bs4), but I'm unsure how to modify the code to basically stop reading all remaining content after the title has been found. One issue could be that redirects should still work.
-- Edit 3 --
So here's an example. I have a link www.xyz.com/abc and I have to follow this through any redirects (almost all of my links use a bit.ly kind of link shortening). I'm interested in both the title and domain that occurs after any redirections.
-- Edit 4 --
Thanks a lot for all of your assistance! The answer by Kul-Tigin works very well and has been accepted. I'll keep the bounty until it runs out though to see if a better answer comes up (as shown by e.g. a time measurement comparison).
-- Edit 5 --
For anyone interested: I've timed the accepted answer to be roughly twice as fast as my existing solution using BeautifulSoup4.
You can defer downloading the entire response body by enabling stream mode of requests.
Requests 2.14.2 documentation - Advanced Usage
By default, when you make a request, the body of the response is
downloaded immediately. You can override this behaviour and defer
downloading the response body until you access the Response.content
attribute with the stream parameter:
...
If you set stream to True when making a request, Requests cannot release the connection back to the pool unless you consume all the data or call Response.close.
This can lead to inefficiency with connections. If you find yourself partially reading request bodies (or not reading them at all) while using stream=True, you should consider using contextlib.closing (documented here)
So, with this method, you can read the response chunk by chunk until you encounter the title tag. Since the redirects will be handled by the library you'll be ready to go.
Here's an error-prone code tested with Python 2.7.10 and 3.6.0:
try:
from HTMLParser import HTMLParser
except ImportError:
from html.parser import HTMLParser
import requests, re
from contextlib import closing
CHUNKSIZE = 1024
retitle = re.compile("<title[^>]*>(.*?)</title>", re.IGNORECASE | re.DOTALL)
buffer = ""
htmlp = HTMLParser()
with closing(requests.get("http://example.com/abc", stream=True)) as res:
for chunk in res.iter_content(chunk_size=CHUNKSIZE, decode_unicode=True):
buffer = "".join([buffer, chunk])
match = retitle.search(buffer)
if match:
print(htmlp.unescape(match.group(1)))
break
Question: ... the only place I can optimize is likely to not read in the entire page.
This does not read the entire page.
Note: Unicode .decode() will raise Exception if you cut a Unicode sequence in the middle. Using .decode(errors='ignore') remove those sequences.
For instance:
import re
try:
# PY3
from urllib import request
except:
import urllib2 as request
for url in ['http://www.python.org/', 'http://www.google.com', 'http://www.bit.ly']:
f = request.urlopen(url)
re_obj = re.compile(r'.*(<head.*<title.*?>(.*)</title>.*</head>)',re.DOTALL)
Found = False
data = ''
while True:
b_data = f.read(4096)
if not b_data: break
data += b_data.decode(errors='ignore')
match = re_obj.match(data)
if match:
Found = True
title = match.groups()[1]
print('title={}'.format(title))
break
f.close()
Output:
title=Welcome to Python.org
title=Google
title=Bitly | URL Shortener and Link Management Platform
Tested with Python: 3.4.2 and 2.7.9
You're scraping webpages using standard REST requests and I'm not aware of any request that only returns the title, so I don't think it's possible.
I know this doesn't necessarily help get the title only, but I usually use BeautifulSoup for any web scraping. It's much easier. Here's an example.
Code:
import requests
from bs4 import BeautifulSoup
urls = ["http://www.google.com", "http://www.msn.com"]
for url in urls:
r = requests.get(url)
soup = BeautifulSoup(r.text, "html.parser")
print "Title with tags: %s" % soup.title
print "Title: %s" % soup.title.text
print
Output:
Title with tags: <title>Google</title>
Title: Google
Title with tags: <title>MSN.com - Hotmail, Outlook, Skype, Bing, Latest News, Photos & Videos</title>
Title: MSN.com - Hotmail, Outlook, Skype, Bing, Latest News, Photos & Videos
the kind of thing you want i don't think can be done, since the way the web is set up, you get the response for a request before anything is parsed. there isn't usually a streaming "if encounter <title> then stop giving me data" flag. if there is id love to see it, but there is something that may be able to help you. keep in mind, not all sites respect this. so some sites will force you to download the entire page source before you can act on it. but a lot of them will allow you to specify a range header. so in a requests example:
import requests
targeturl = "http://www.urbandictionary.com/define.php?term=Blarg&page=2"
rangeheader = {"Range": "bytes=0-150"}
response = requests.get(targeturl, headers=rangeheader)
response.text
and you get
'<!DOCTYPE html>\n<html lang="en-US" prefix="og: http://ogp.me/ns#'
now of course here's the problems with this
what if you specify a range that is too short to get the title of the page?
whats a good range to aim for? (combination of speed and assurance of accuracy)
what happens if the page doesn't respect Range? (most of the time you just get the whole response you would have without it.)
i don't know if this might help you? i hope so. but i've done similar things to only get file headers for download checking.
EDIT4:
so i thought of another kind of hacky thing that might help. nearly every page has a 404 page not found page. we might be able to use this to our advantage. instead of requesting the regular page. request something like this.
http://www.urbandictionary.com/nothing.php
the general page will have tons of information, links, data. but the 404 page is nothing more than a message, and (in this case) a video. and usually there is no video. just some text.
but you also notice that the title still appears here. so perhaps we can just request something we know does not exist on any page like.
X5ijsuUJSoisjHJFk948.php
and get a 404 for each page. that way you only download a very small and minimalistic page. nothing more. which will significantly reduce the amount of information you download. thus increasing speed and efficiency.
heres the problem with this method: you need to check somehow if the page does not supply its own version of the 404. most pages have it because it looks good with the site. and its standard practice to include one. but not all of them do. make sure to handle this case.
but i think that could be something worth trying out. over the course of thousands of sites, it would save many ms of download time for each html.
EDIT5:
so as we talked about, since you are interested in urls that redirect. we might make use of an http head reqeust. which wont get the site content. just the headers. so in this case:
response = requests.head('http://myshortenedurl.com/5b2su2')
replace my shortenedurl with tunyurl to follow along.
>>>response
<Response [301]>
nice so we know this redirects to something.
>>>response.headers['Location']
'http://stackoverflow.com'
now we know where the url redirects to without actually following it or downloading any page source. now we can apply any of the other techniques previously discussed.
Heres an example, using requests and lxml modules and using the 404 page idea. (be aware, i have to replace bit.ly with bit'ly so stack overflow doesnt get mad.)
#!/usr/bin/python3
import requests
from lxml.html import fromstring
links = ['http://bit'ly/MW2qgH',
'http://bit'ly/1x0885j',
'http://bit'ly/IFHzvO',
'http://bit'ly/1PwR9xM']
for link in links:
response = '<Response [301]>'
redirect = ''
while response == '<Response [301]>':
response = requests.head(link)
try:
redirect = response.headers['Location']
except Exception as e:
pass
fakepage = redirect + 'X5ijsuUJSoisjHJFk948.php'
scrapetarget = requests.get(fakepage)
tree = fromstring(scrapetarget.text)
print(tree.findtext('.//title'))
so here we get the 404 pages, and it will follow any number of redirects. now heres the output from this:
Urban Dictionary error
Page Not Found - Stack Overflow
Error 404 (Not Found)!!1
Kijiji: Page Not Found
so as you can see we did indeed get out titles. but we see some problems with the method. namely some titles add things, and some just dont have a good title at all. and thats the issue with that method. we could however try the range method too. benefits of that would be the title would be correct, but sometimes we might miss it, and sometimes we have to download the whole pagesource to get it. increasing required time.
Also credit to alecxe for this part of my quick and dirty script
tree = fromstring(scrapetarget.text)
print(tree.findtext('.//title'))
for an example with the range method. in the loop for link in links: change the code after the try catch statement to this:
rangeheader = {"Range": "bytes=0-500"}
scrapetargetsection = requests.get(redirect, headers=rangeheader)
tree = fromstring(scrapetargetsection.text)
print(tree.findtext('.//title'))
output is:
None
Stack Overflow
Google
Kijiji: Free Classifieds in...
here we see urban dictionary has no title or ive missed it in the bytes returned. in any of these methods there are tradeoffs. the only way to get close to total accuracy would be to download the entire source for each page i think.
using urllib you can set the Range header to request a certain range of bytes, but there are some consequences:
it depends on the server to honor the request
you assume that data you're looking for is within desired range (however you can make another request using different range header to get next bytes - i.e. download first 300 bytes and get another 300 only if you can't find title within first result - 2 requests of 300 bytes are still much cheaper than whole document)
(edit) - to avoid situations when title tag splits between two ranged requests, make your ranges overlapped, see 'range_header_overlapped' function in my example code
import urllib
req = urllib.request.Request('http://www.python.org/')
req.headers['Range']='bytes=%s-%s' % (0, 300)
f = urllib.request.urlopen(req)
just to verify if server accepted our range:
content_range=f.headers.get('Content-Range')
print(content_range)
my code also solves cases when title tag is splitted between chunks.
#!/usr/bin/env python2
# -*- coding: utf-8 -*-
"""
Created on Tue May 30 04:21:26 2017
====================
#author: s
"""
import requests
from string import lower
from html.parser import HTMLParser
#proxies = { 'http': 'http://127.0.0.1:8080' }
urls = ['http://opencvexamples.blogspot.com/p/learning-opencv-functions-step-by-step.html',
'http://www.robindavid.fr/opencv-tutorial/chapter2-filters-and-arithmetic.html',
'http://blog.iank.org/playing-capitals-with-opencv-and-python.html',
'http://docs.opencv.org/3.2.0/df/d9d/tutorial_py_colorspaces.html',
'http://scikit-image.org/docs/dev/api/skimage.exposure.html',
'http://apprize.info/programming/opencv/8.html',
'http://opencvexamples.blogspot.com/2013/09/find-contour.html',
'http://docs.opencv.org/2.4/modules/imgproc/doc/geometric_transformations.html',
'https://github.com/ArunJayan/OpenCV-Python/blob/master/resize.py']
class TitleParser(HTMLParser):
def __init__(self):
HTMLParser.__init__(self)
self.match = False
self.title = ''
def handle_starttag(self, tag, attributes):
self.match = True if tag == 'title' else False
def handle_data(self, data):
if self.match:
self.title = data
self.match = False
def valid_content( url, proxies=None ):
valid = [ 'text/html; charset=utf-8',
'text/html',
'application/xhtml+xml',
'application/xhtml',
'application/xml',
'text/xml' ]
r = requests.head(url, proxies=proxies)
our_type = lower(r.headers.get('Content-Type'))
if not our_type in valid:
print('unknown content-type: {} at URL:{}'.format(our_type, url))
return False
return our_type in valid
def range_header_overlapped( chunksize, seg_num=0, overlap=50 ):
"""
generate overlapping ranges
(to solve cases when title tag splits between them)
seg_num: segment number we want, 0 based
overlap: number of overlaping bytes, defaults to 50
"""
start = chunksize * seg_num
end = chunksize * (seg_num + 1)
if seg_num:
overlap = overlap * seg_num
start -= overlap
end -= overlap
return {'Range': 'bytes={}-{}'.format( start, end )}
def get_title_from_url(url, proxies=None, chunksize=300, max_chunks=5):
if not valid_content(url, proxies=proxies):
return False
current_chunk = 0
myparser = TitleParser()
while current_chunk <= max_chunks:
headers = range_header_overlapped( chunksize, current_chunk )
headers['Accept-Encoding'] = 'deflate'
# quick fix, as my locally hosted Apache/2.4.25 kept raising
# ContentDecodingError when using "Content-Encoding: gzip"
# ContentDecodingError: ('Received response with content-encoding: gzip, but failed to decode it.',
# error('Error -3 while decompressing: incorrect header check',))
r = requests.get( url, headers=headers, proxies=proxies )
myparser.feed(r.content)
if myparser.title:
return myparser.title
current_chunk += 1
print('title tag not found within {} chunks ({}b each) at {}'.format(current_chunk-1, chunksize, url))
return False
I am new to web crawling, thanks for helping out. The task I need to perform is to obtain the full returned HTTP response from google search. When searching on Google with a search keyword in browser, in the returned page, there is a section:
Searches related to XXXX (where XXXX is the searched words)
I need to extract this section of the web page. From my research, most of the current package on google crawling are not able to extract this section of information. I tried to use urllib2, with the following code:
import urllib2
url = "https://www.google.com.sg/search? q=test&ie=&oe=#q=international+business+machine&spf=187"
req = urllib2.Request(url, headers={'User-Agent' : 'Mozilla/5.0'})
con = urllib2.urlopen( req )
strs = con.read()
print strs
I am getting a large chunk of text which looks like legit HTTP response, but within the text, there isn't any content related to my searched key "international business machine". I know Google probably detect this is not request from an actual browser hence hide this info. May I know if there is any way to bypass this and obtained the "related search" section of google result? Thanks.
as pointed out by #anonyXmous. the useful post to refer to is here:
Google Search Web Scraping with Python
with
from requests import get
keyword = "internation business machine"
url = "https://google.com/search?q="+keyword
raw = get(url).text
print raw
I am able to get the needed text in "raw"
I am working on a blog and learning web development at the same time. I want to learn more about JSON so I am trying to implement a way to export the entire contents of my blog to JSON and later XML. I am hitting a lot of problems on the way, the biggest one being getting the url of the page which I want to render as JSON/XML dynamically. The code for my website can be found here. I still need to comment more and I have to implement a lot of functionalities. The main class which is responsible for exporting the contents to JSON is as follows :
class JSONHandler(BaseHandler):
#TODO: get a way to gt the url from the request
def get(self):
self.response.headers['Content-Type'] = 'application/json'
url = "http://www.bigb-myapp.appspot.com/blog"
#url = self.request.path_url
logging.info(url)
page = urllib2.urlopen(url).read()
soup = BeautifulSoup(page)
subject_list = []
day_list = []
content_list = []
subjects = soup.findAll('div', {'class' : 'subject-title'})
days = soup.findAll('div', {'class' : 'day'})
contents = soup.findAll('div', {'class' : 'post'})
for subject in subjects:
subject_list.append(subject.findAll(text = True))
for day in days:
day_list.append(day.findAll(text = True))
for content in contents:
content_list.append(content.findAll(text = True))
i = 0
for s, d, c in subject_list, day_list, content_list:
json_text = json.dumps({'subject': s[i][i],'day': d[i][i], 'content': c[i][i]})
i += 1
self.write(json_text)
I am also sure that the printing function is erroneous, but that is the easy part. As I said getting the url is proving to be a major difficulty.
I have tried to get the url form the environment variable and I also have tired webapp2's request handlers such as self.request.path_url to no avail.
I am working with Google App engine and use the jinja2 template engine.
Thanks.
self.request.url or self.request.path should do the trick.
However, the better way to do this is using similar to what you used in the permalink section. Just parse the post-id from the request. Meaning you should separate JSONHandler into handling two things - a) return the entire blog, b) return an individual post.
I'd also suggest to not use this method you're using to get the blog posts... In the Mainpage class you do it so elegantly with GQL so why do it with urllib2 and BeautifulSoup ?
And as for the last question about the response.. the correct way is: self.response.out.write("something")
EDITED TO ADD:
I meant to split the JSONHandler into two parts, such that there'd be two handlers: ('/blog/(\d+).json',PermalinkJSONHandler),
('/blog.json',FullJSONHandler),...
Both should be about the same (even using the same function for dumping the json) just with different GQLs to get the correct information.
I've been working on a script and I thought I would ask for help. I'm looking to search a series of websites, check if the site is valid. Then the next step would be to check for specific content on the site. If the site holds that content, place the URL in a list.
import urllib2
def getPage():
url="import urllib2
National=[]
Local=[]
Sports=[]
Culture=[]
def getPage():
url="http://readingeagle.com/section.aspx?id=2"
for i in range (0,100,1)
req = urllib2.Request(http://readingeagle.com/section.aspx?id=,i)
if "national" in response:
response = urllib2.urlopen(req)
return response.read()
for g in range (0,100,1)
if "national" in response:
National.append("http://readingeagle.com/section.aspx?id=,g"
# I would like to set-up an iteration to check the 'entryid from 1-100. If the term is found on the page, place the url in the list.
if __name__ == "__main__":
namesPage = getPage()
print (namesPage)
Here's my answer to the question of how to validate a given web site.
python check html valid
For checking the context of the page the tools consist of basic string methods, regex, or more sophisticated tools like lxml or beautifulsoup.
matchingSites = []
matchingSites.append(url) #Since you asked. :-p