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Scrapy Tutorial
In this tutorial, we'll assume that Scrapy is already installed on your system. If that's not the case, see :ref:`intro-install`.
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Unknown interpreted text role "ref".We are going to use quotes.toscrape.com as our example domain to scrape.
This tutorial will walk you through these tasks:
Creating a new Scrapy project
Writing a :ref:`spider <topics-spiders>` to crawl a site and extract :ref:`Items <topics-items>`
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Exporting the scraped data using command line
Scrapy is written in Python. If you're new to the language you might want to start by getting an idea of what the language is like, to get the most out of Scrapy. If you're already familiar with other languages, and want to learn Python quickly, we recommend Learn Python The Hard Way. If you're new to programming and want to start with Python, take a look at this list of Python resources for non-programmers.
Creating a project
Before you start scraping, you will have to set up a new Scrapy project. Enter a directory where you'd like to store your code and run:
scrapy startproject tutorial
This will create a tutorial directory with the following contents:
tutorial/
scrapy.cfg # deploy configuration file
tutorial/ # project's Python module, you'll import your code from here
__init__.py
items.py # project items file
pipelines.py # project pipelines file
settings.py # project settings file
spiders/ # a directory where you'll later put your spiders
__init__.py
Our first Spider
Spiders are classes that you define and Scrapy uses to scrape information from a domain (or group of domains).
They define an initial list of URLs to download, how to follow links, and how to parse the contents of pages to extract :ref:`items <topics-items>`.
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Unknown interpreted text role "ref".To create a Spider, you must subclass :class:`scrapy.Spider <scrapy.spiders.Spider>` and define some attributes and methods:
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Unknown interpreted text role "class".:attr:`~scrapy.spiders.Spider.name`: identifies the Spider. It must be unique within a project, that is, you can't set the same name for different Spiders.
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:meth:`~scrapy.spiders.Spider.start_requests`: must return a list of requests where the Spider will begin to crawl from. Subsequent requests will be generated successively from these initial requests.
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As alternative to defining this method, you can define a class attribute :attr:`~scrapy.spiders.Spider.start_urls`, which the default implementation of this method will use to create the proper requests.
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:meth:`~scrapy.spiders.Spider.parse`: a method of the spider, which will be called with the downloaded :class:`~scrapy.http.Response` object of each initial request. The response is passed to the method as the first and only argument.
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This method is responsible for parsing the response data and extracting scraped data (as scraped items) and more URLs to follow.
The :meth:`~scrapy.spiders.Spider.parse` method is in charge of processing the response and returning scraped data (as :class:`~scrapy.item.Item` objects) and more URLs to follow (as :class:`~scrapy.http.Request` objects).
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This is the code for our first Spider; save it in a file named quotes_spider.py under the tutorial/spiders directory:
import scrapy
class QuotesSpider(scrapy.Spider):
name = "quotes"
def start_requests(self):
urls = [
'http://quotes.toscrape.com/page/1/',
'http://quotes.toscrape.com/page/2/',
]
for url in urls:
yield scrapy.Request(url=url, callback=self.parse)
def parse(self, response):
page = response.url.split("/")[-2]
filename = 'quotes-%s.html' % page
with open(filename, 'wb') as f:
f.write(response.body)
Crawling
To put our spider to work, go to the project's top level directory and run:
scrapy crawl quotes
This command runs the spider with name quotes that we've just added, that will send some requests for the quotes.toscrape.com domain. You will get an output similar to this:
2016-09-01 16:51:27 [scrapy] INFO: Scrapy started (bot: tutorial)
2016-09-01 16:51:27 [scrapy] INFO: Overridden settings: {...}
2016-09-01 16:51:27 [scrapy] INFO: Enabled extensions: ...
2016-09-01 16:51:27 [scrapy] INFO: Enabled downloader middlewares: ...
2016-09-01 16:51:27 [scrapy] INFO: Enabled spider middlewares: ...
2016-09-01 16:51:27 [scrapy] INFO: Enabled item pipelines: ...
2016-09-01 16:51:27 [scrapy] INFO: Spider opened
2016-09-01 16:51:27 [scrapy] INFO: Crawled 0 pages (at 0 pages/min), scraped 0 items (at 0 items/min)
2016-09-01 16:51:28 [scrapy] DEBUG: Crawled (404) <GET http://quotes.toscrape.com/robots.txt> (referer: None)
2016-09-01 16:51:28 [scrapy] DEBUG: Crawled (200) <GET http://quotes.toscrape.com/page/1/> (referer: None)
2016-09-01 16:51:29 [scrapy] DEBUG: Crawled (200) <GET http://quotes.toscrape.com/page/2/> (referer: None)
2016-09-01 16:51:29 [scrapy] INFO: Closing spider (finished)
Note
At the end you can see a log line for each URL defined in start_urls. Because these URLs are the starting ones, they have no referrers, which is shown at the end of the log line, where it says (referer: None).
Now, check the files in the current directory. You should notice two new files have been created: quotes-1.html and quotes-2.html, with the content for the respective URLs, as our parse method instructs.
What just happened under the hood?
Scrapy will schedule the :class:`scrapy.Request <scrapy.http.Request>` objects returned by the start_requests method of the Spider, and when receiving a response for each one it will instantiate :class:`scrapy.http.Response` objects and call the parse callback method passing the response as argument.
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Introduction to Selectors
There are several ways to extract data from web pages. Scrapy uses a mechanism based on XPath or CSS expressions called :ref:`Scrapy Selectors <topics-selectors>`. For more information about selectors and other extraction mechanisms see the :ref:`Selectors documentation <topics-selectors>`.
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Unknown interpreted text role "ref".Here are some examples of XPath expressions and their meanings:
- /html/head/title: selects the <title> element, inside the <head> element of an HTML document. Equivalent CSS selector: html > head > title.
- /html/head/title/text(): selects the text inside the aforementioned <title> element. Equivalent CSS selector: html > head > title ::text.
- //td: selects all the <td> elements from the whole document. Equivalent CSS selector: td.
- //div[@class="mine"]: selects all div elements which contain an attribute class="mine". Equivalent CSS selector: div.mine.
These are just a couple of simple examples of what you can do with XPath, but XPath expressions are indeed much more powerful. To learn more about XPath, we recommend this tutorial to learn XPath through examples, and this tutorial to learn "how to think in XPath".
Note
CSS vs XPath: you can go a long way extracting data from web pages using only CSS selectors. However, XPath offers more power because besides navigating the structure, it can also look at the content: you're able to select things like: the link that contains the text 'Next Page'. Because of this, we encourage you to learn about XPath even if you already know how to construct CSS selectors.
For working with CSS and XPath expressions, Scrapy provides the :class:`~scrapy.selector.Selector` class and convenient shortcuts to avoid instantiating selectors yourself every time you need to select something from a response.
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Unknown interpreted text role "class".You can see selectors as objects that represent nodes in the document structure. So, the first instantiated selectors are associated with the root node, or the entire document.
Selectors have four basic methods (click on the method to see the complete API documentation):
:meth:`~scrapy.selector.Selector.xpath`: returns a list of selectors, each of which represents the nodes selected by the xpath expression given as argument.
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:meth:`~scrapy.selector.Selector.css`: returns a list of selectors, each of which represents the nodes selected by the CSS expression given as argument.
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:meth:`~scrapy.selector.Selector.extract`: returns a unicode string with the selected data.
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:meth:`~scrapy.selector.Selector.re`: returns a list of unicode strings extracted by applying the regular expression given as argument.
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Trying Selectors in the Shell
To illustrate the use of Selectors we're going to use the built-in :ref:`Scrapy shell <topics-shell>`, which also requires IPython (an extended Python console) installed on your system.
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Unknown interpreted text role "ref".To start a shell, you must go to the project's top level directory and run:
scrapy shell "http://quotes.toscrape.com"
Note
Remember to always enclose urls in quotes when running Scrapy shell from command-line, otherwise urls containing arguments (ie. & character) will not work.
This is what the shell looks like:
[ ... Scrapy log here ... ]
2016-09-01 18:14:39 [scrapy] DEBUG: Crawled (200) <GET http://quotes.toscrape.com> (referer: None)
[s] Available Scrapy objects:
[s] crawler <scrapy.crawler.Crawler object at 0x109001c90>
[s] item {}
[s] request <GET http://quotes.toscrape.com>
[s] response <200 http://quotes.toscrape.com>
[s] settings <scrapy.settings.Settings object at 0x109001610>
[s] spider <DefaultSpider 'default' at 0x1092808d0>
[s] Useful shortcuts:
[s] shelp() Shell help (print this help)
[s] fetch(req_or_url) Fetch request (or URL) and update local objects
[s] view(response) View response in a browser
>>>
After the shell loads, you will have the response fetched in a local response variable, so if you type response.body you will see the body of the response, or you can type response.headers to see its headers.
More importantly response has a selector attribute which is an instance of :class:`~scrapy.selector.Selector` class, instantiated with this particular response. You can run queries on response by calling response.selector.xpath() or response.selector.css(). There are also some convenience shortcuts like response.xpath() or response.css() which map directly to response.selector.xpath() and response.selector.css().
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Unknown interpreted text role "class".So let's try it:
In [1]: response.xpath('//title')
Out[1]: [<Selector xpath='//title' data=u'<title>Quotes to Scrape</title>'>]
In [2]: response.xpath('//title').extract()
Out[2]: [u'<title>Quotes to Scrape</title>']
In [3]: response.xpath('//title/text()')
Out[3]: [<Selector xpath='//title/text()' data=u'Quotes to Scrape'>]
In [4]: response.xpath('//title/text()').extract()
Out[4]: [u'Quotes to Scrape']
In [11]: response.xpath('//title/text()').re('(\w+)')
Out[11]: [u'Quotes', u'to', u'Scrape']
Extracting the data
Now, let's try to extract some real information from those pages.
You could type response.body in the console, and inspect the source code to figure out the XPaths you need to use. However, inspecting the raw HTML code there could become a very tedious task. To make it easier, you can use Firefox Developer Tools or some Firefox extensions like Firebug. For more information see :ref:`topics-firebug` and :ref:`topics-firefox`.
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Unknown interpreted text role "ref".After inspecting the page source, you'll find that every quote in the website is inside a separate <div class="quote"> element, such as:
<div class="quote">
<span class="text">“We accept the love we think we deserve.”</span>
<span>by <small class="author">Stephen Chbosky</small></span>
<div class="tags">
Tags:
<meta class="keywords">
<a class="tag" href="/tag/inspirational/page/1/">inspirational</a>
<a class="tag" href="/tag/love/page/1/">love</a>
</div>
</div>
So we can select each <div class="quote"> element belonging to the site's list with this code:
response.xpath('//div[@class="quote"]')
From the quote elements, we can select the texts with:
response.xpath('//div[@class="quote"]/span[@class="text"]/text()').extract()
The authors:
response.xpath('//div[@class="quote"]/span/small/text()').extract()
As we've said before, each .xpath() call returns a list of selectors, so we can concatenate further .xpath() calls to dig deeper into a node. We are going to use that property here, so:
for quote in response.xpath('//div[@class="quote"]'):
text = quote.xpath('span[@class="text"]/text()').extract_first()
author = quote.xpath('span/small/text()').extract_first()
print({'text': text, 'author': author})
In the above snippet we've decided to use the method .extract_first() instead of .extract(), to extract the content from the first element from a selector list returned by .xpath().
Note
For a more detailed description of using nested selectors, see :ref:`topics-selectors-nesting-selectors` and :ref:`topics-selectors-relative-xpaths` in the :ref:`topics-selectors` documentation
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Unknown interpreted text role "ref".Knowing to use selectors, extracting data from a page is just a matter of yield the Python dictionaries from the callback method instead of printing them.
Let's add the necessary code to our spider:
import scrapy
class QuotesSpider(scrapy.Spider):
name = "quotes"
start_urls = [
'http://quotes.toscrape.com/page/1/',
'http://quotes.toscrape.com/page/2/',
]
def parse(self, response):
for quote in response.xpath('//div[@class="quote"]'):
yield {
'text': quote.xpath('span[@class="text"]/text()').extract_first(),
'author': quote.xpath('span/small/text()').extract_first(),
}
Run:
scrapy crawl quotes
Now crawling quotes.toscrape.com will show dictionary objects:
2016-09-02 16:35:20 [scrapy] DEBUG: Scraped from <200 http://quotes.toscrape.com/page/2/>
{'author': 'Oscar Wilde',
'text': '“We are all in the gutter, but some of us are looking at the stars.”'}
2016-09-02 16:35:20 [scrapy] DEBUG: Scraped from <200 http://quotes.toscrape.com/page/2/>
{'author': 'Mark Twain',
'text': '“The man who does not read has no advantage over the man who cannot read.”'}
Following links
Let's say, instead of just scraping the stuff from the first two pages from quotes.toscrape.com, you want quotes from all the pages in the website.
Now that you know how to extract data from a page, why not extract the pagination links in each page, follow them and then extract the data you want for all of them?
Here is a modification to our spider that does just that:
import scrapy
class QuotesSpider(scrapy.Spider):
name = "quotes"
start_urls = [
'http://quotes.toscrape.com/page/1/',
]
def parse(self, response):
for quote in response.xpath('//div[@class="quote"]'):
yield {
'text': quote.xpath('span[@class="text"]/text()').extract_first(),
'author': quote.xpath('span/small/text()').extract_first(),
}
next_page = response.xpath('//li[@class="next"]/a/@href').extract_first()
if next_page is not None:
next_page = response.urljoin(next_page)
yield scrapy.Request(next_page, callback=self.parse)
Now after extracting an item the parse() method looks for the link to the next page, builds a full absolute URL using the response.urljoin method (since the links can be relative) and yields a new request to the next page, registering itself as callback to handle the data extraction for the next page and to keep the crawling going through all the pages.
What you see here is Scrapy's mechanism of following links: when you yield a Request in a callback method, Scrapy will schedule that request to be sent and register a callback method to be executed when that request finishes.
Using this, you can build complex crawlers that follow links according to rules you define, and extract different kinds of data depending on the page it's visiting.
In our example, it creates a sort of loop, following all the links to the next page until it doesn't find one -- handy for crawling blogs, forums and other sites with pagination.
Another common pattern is to build an item with data from more than one page, using a :ref:`trick to pass additional data to the callbacks <topics-request-response-ref-request-callback-arguments>`.
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As an example spider that leverages this mechanism, check out the :class:`~scrapy.spiders.CrawlSpider` class for a generic spider that implements a small rules engine that you can use to write your crawlers on top of it.
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Unknown interpreted text role "class".Storing the scraped data
The simplest way to store the scraped data is by using :ref:`Feed exports <topics-feed-exports>`, with the following command:
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Unknown interpreted text role "ref".scrapy crawl quotes -o items.json
That will generate an items.json file containing all scraped items, serialized in JSON.
In small projects (like the one in this tutorial), that should be enough. However, if you want to perform more complex things with the scraped items, you can write an :ref:`Item Pipeline <topics-item-pipeline>`. As with Items, a placeholder file for Item Pipelines has been set up for you when the project is created, in tutorial/pipelines.py. Though you don't need to implement any item pipelines if you just want to store the scraped items.
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Unknown interpreted text role "ref".Next steps
This tutorial covered only the basics of Scrapy, but there's a lot of other features not mentioned here. Check the :ref:`topics-whatelse` section in :ref:`intro-overview` chapter for a quick overview of the most important ones.
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Unknown interpreted text role "ref".Then, we recommend you continue by playing with an example project (see :ref:`intro-examples`), and then continue with the section :ref:`section-basics`.
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