9

I've been learning a lot of python lately to work on some projects at work.

Currently I need to do some web scraping with google search results. I found several sites that demonstrated how to use ajax google api to search, however after attempting to use it, it appears to no longer be supported. Any suggestions?

I've been searching for quite a while to find a way but can't seem to find any solutions that currently work.

  • You can search with Google without an API, but you're likely to get banned by Google if they suspect you're a bot. Read the TOS, you'll likely have to pay to use their API in any significant way. – Athena Jul 27 '16 at 17:30
  • I researched how to do it without an API, I have to change my header/user-agent info. But even when I do that I still can't get results. If that would work, I'd just put a sleep timer in between each request as to not be viewed as a bot. – pbell Jul 27 '16 at 18:34
  • I have written a google search bot, it works great, but since using a bot directly violates the ToS for Google, I'm not going to post it. Whatever you're trying to do, maybe go through the official APIs. – Athena Jul 27 '16 at 18:45
8

You can always directly scrape Google results. To do this, you can use the URL https://google.com/search?q=<Query> this will return the top 10 search results.

Then you can use lxml for example to parse the page. Depending on what you use, you can either query the resulting node tree via a CSS-Selector (.r a) or using a XPath-Selector (//h3[@class="r"]/a)

In some cases the resulting URL will redirect to Google. Usually it contains a query-parameter qwhich will contain the actual request URL.

Example code using lxml and requests:

from urllib.parse import urlencode, urlparse, parse_qs

from lxml.html import fromstring
from requests import get

raw = get("https://www.google.com/search?q=StackOverflow").text
page = fromstring(raw)

for result in page.cssselect(".r a"):
    url = result.get("href")
    if url.startswith("/url?"):
        url = parse_qs(urlparse(url).query)['q']
    print(url[0])

A note on google banning your IP: In my experience, google only bans if you start spamming google with search requests. It will respond with a 503 if Google thinks you are bot.

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  • Thanks, I was able to get something working similar to this. – pbell Jul 28 '16 at 14:39
  • 1
    As of today, this is not working for me. When I view the source and DOM structure of the Google search results page, it looks as if the results are being loaded and rendered in JavaScript which would prevent this sort of naive scraping. Is this working for anyone else? – Lane Rettig Mar 6 '17 at 15:35
  • 1
    @Lane Rettig Works fine. – Billy Jhon Mar 19 '17 at 20:19
  • Not working for me. page.cssselect(".r a") is an empty array. – ZhouW Aug 17 at 12:05
6

Here is another service that can be used for scraping SERPs (https://zenserp.com) It does not require a client and is cheaper.

Here is a python code sample:

import requests

headers = {
    'apikey': '',
}

params = (
    ('q', 'Pied Piper'),
    ('location', 'United States'),
    ('search_engine', 'google.com'),
    ('language', 'English'),
)

response = requests.get('https://app.zenserp.com/api/search', headers=headers, params=params)
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  • I am using the API since 2 months, since it was the only one offering a free plan to start with. Working well & did not have problems so far! – Dominik Kukacka May 28 '19 at 10:59
0

You can also use a third party service like Serp API - I wrote and run this tool - that is a paid Google search engine results API. It solves the issues of being blocked, and you don't have to rent proxies and do the result parsing yourself.

It's easy to integrate with Python:

from lib.google_search_results import GoogleSearchResults

params = {
    "q" : "Coffee",
    "location" : "Austin, Texas, United States",
    "hl" : "en",
    "gl" : "us",
    "google_domain" : "google.com",
    "api_key" : "demo",
}

query = GoogleSearchResults(params)
dictionary_results = query.get_dictionary()

GitHub: https://github.com/serpapi/google-search-results-python

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