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5

You are concatenating the collected data into your SQL statements. Never do that, it is the mother of all anti-patterns. Aside from the problems you are seeing (probably due to a ' or similar character in the scraped HTML), you have a gaping security hole in your code (may or may not matter in your case). Anyway, sqlite3 has a nice way of doing exactly what ...


5

No, you won't be able to use the browser of your clients to scrape content from other websites using JavaScript because of a security measure called Same-origin policy. There should be no way to circumvent this policy and that's for a good reason. Imagine you could instruct the browser of your visitors to do anything on any website. That's not something you ...


3

Here are the common 2 reasons (with solutions) why you are getting NoSuchElementException: the element is inside an iframe and you need to switch to it before searching: driver.switch_to.frame("my_frame_id_or_name") elem = driver.find_element_by_id("terms") elem.send_keys("Test") the element is not yet present when the search is performed. Wait for it: ...


2

Following this guide: http://docs.python-guide.org/en/latest/dev/virtualenvs/ pip install virtualenv cd PROJECT_FOLDER virtualenv venv source venv/bin/activate pip install scrapy deactivate #when ready to leave If you are in your virtual environment you should see (venv) next to your command prompt. (I got that in OSX Terminal bash) As mentioned by ...


2

Adding to what @leo.fcx pointed about the selector, wait for search results to become visible: wait.until(EC.visibility_of_element_located((By.ID, "all_search_results")))


2

Since you are using all class-names that the element applies, adding a . to the beginning of your CSS selector should fix it. Try this: s.find_element_by_css_selector('._8o._8r.lfloat._ohe') instead of: s.find_element_by_css_selector('_8o._8r.lfloat._ohe')


2

No, there is no way to do this with the default configuration of Scrapy. The main idea behind the tool is to make gathering information fast. And to achieve this it scrapes sites parallel. If you yield a Request it gets in the queue and as soon as a process or thread is ready it gets scraped. Then the result gets into another queue and then it will be ...


2

To Answer Your Question Scrapy Does not differentiate between crawl command and crawl command line( from Script ) execution. only part (and difference) that you are missing is : scrapy crawl command... always and must be executed from within the project directory ..where scrapy.cfg file is located....and if you look closely , it contains where the ...


2

Conceptually, there is no problem with your code. You're using a session object to send a login request, then with the same session you're sending a request for the desired page. This means that the cookies set by the login request should be kept for the second request. If you want to read more about the workings of the Session object, here's the relevant ...


2

You can use lapply: tab.nums <- c("0081", "0126", "3379", "6149", "9997") # construct urls balsht <- paste0("http://www.theedgemarkets.com/my/AA/balance_sheet?0=", tab.nums, "&exchange=KLSE") # get list of tables balstables <- lapply(balsht, function(x) readHTMLTable(x, header=T, which=1,stringsAsFactors=F)) # save each table using ...


1

I do not know what you were doing but when I called your script I've got a response -- however it was the default site with the information of the last 3 months. To get the data from the last 4 years you need to change your query a bit. If you look at the XHR request in your browser's developer tools you can see that the data sent to the server is ...


1

import requests forum = "https://adblockplus.org/forum/" headers = {'User-Agent': 'Mozilla/5.0'} payload = {'username': 'username', 'password': 'password', 'redirect':'index.php', 'sid':'', 'login':'Login'} session = requests.Session() r = session.post(forum + "ucp.php?mode=login", headers=headers, data=payload) print(r.text) Made some small changes like ...


1

It should work , can you share your scrapy log file Edit: your approach will not work because ...when you execute the script..it will look for your default settings in if you have set the environment variable ENVVAR if you have scrapy.cfg file in you present directory from where you are executing your script and if that file points to valid settings.py ...


1

The datasources of both Maps are FusionTables: www.ugebreveta4.dk: https://www.google.com/fusiontables/DataSource?docid=1uHHijeWypO-5FlUoVWEbyBcQY8AoM4mHVIqOo182#map:id=5 www.dr.dk: https://www.google.com/fusiontables/DataSource?docid=1Z6wK9yVyZ5nXmHTDOQs5zAfSdcKeMSMoJGswIIDW#map:id=3 Both FusionTables are downloadable


1

Just a mere guess based on assumption that you are not logged in. You are getting exception cause for all class clearfix, element with ._8o._8r.lfloat._ohe does not exists. So your code isn't reaching the required elements. Anyhow, if you are trying to fetch href and img source of results, you need not iterate over all clearfix cause as suggested by ...


1

You can scrap web page using Curl or PHP simple DOM parser // Create DOM from URL or file $html = file_get_html('http://www.google.com/'); // Find all images foreach($html->find('img') as $element) echo $element->src . '<br>'; // Find all links foreach($html->find('a') as $element) echo $element->href . '<br>'; ...


1

You can get the nodevalue of the element using Javascript Childnodes property //try in browser console document.getElementsByClassName("fbProfileBylineLabel")[0].childNodes[0].nodeValue;//Studied at document.getElementsByClassName("fbProfileBylineLabel")[1].childNodes[0].nodeValue;//Lives in ...


1

You can't just run it in Python as it is already mentioned above, you need a JavaScript interpreter. As it seems to me that you just want to get the data that is loaded with this AJAX call you should do something like this (this is just a sample) import urllib2 html = ...


1

First of all do not be demanding, sometimes I get angry and won't answer your question. To see which cookies are sent with your Request enable debugging with COOKIES_DEBUG = True. Then you will notice that cookies are not sent even if Scrapy's middleware should send those cookies. I think this is because you yield a custom request and Scrapy won't be more ...


1

As mentioned here you do not set the body of the Response object. Why don't you yield a new Request with the URLs of your site_array to let Scrapy scrape them? What you currently are doing won't work out. Naturally in this case you need to adjust your parser method or write a new one and add it as a callback to the Request (I would do the second version).


1

In this case the line where your error occurs expects a TextResponse object not a normal response. Try to create a TextResponse instead of the normal Response to resolve the error. The missing method is documented here. More specifically use an HtmlResponse because your response would be some HTML and not plain text. HtmlResponse is a subclass of ...


1

Decoding the url itself can be done via ruby URI module. The bigger challenge is to get only the right part out of the path. You could do something like this: URI.decode(yahoo_url).match(%r{RU=(.*)/RK}).captures This gives you a list of matched content, so in your example ["http://en.wikipedia.org/wiki/Something"] But beware this regex only works if the ...


1

I'd look for a web api service. You can look at Canada Post Web Services. The address complete service looks promising. If it's not too rate-limited, you can just look them up as you go and cache what you already know locally.


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This is not a Python question, but a data question. Canada Post does not freely publish postal code --> town relationships. You will have to purchase it from Canada Post.


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You do not even need the cookies to send with your request. The problem is with body=urllib.urlencode(payload), This encodes the body to URL-Format however if you look at the body of the request of your browser you will see that a JSON is the body. So the solution is to import json and to change the line mentioned above to this one: ...


1

I could only guess since you didn't provide a MCVE. However I'd say in your function create_link, this line: start_urls = [tc_url] should really be: self.start_urls = [tc_url]


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What I usually do to trim and clean up the output is using Input and/or Output Processors with Item Loaders - it makes things more modular and clean: class ScrapingTestingLoader(ItemLoader): default_input_processor = MapCompose(unicode.strip) default_output_processor = TakeFirst() Then, if you would use this Item Loader for loading your items, ...


1

The img you can find that way: Note: You can find attributes of an element with the get_attribute function. img = driver.find_element_by_class_name('profile-picture>a>img').get_attribute("src") The summary you can find that way: summary = driver.find_element_by_class_name('description').text


1

I would first evaluate the Linked API and see if it could provide you with the desired information. If you insist on web-scraping the page, I think you are missing only one thing here - an Explicit Wait to wait for the page to load: from selenium.webdriver.common.by import By from selenium import webdriver from selenium.webdriver.support.wait import ...


1

Simple solution after reading the list docs. while "\n" in some_list: some_list.remove("\n")



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