7

I am using Python3 and Selenium firefox to submit a form and then get the URL that they then land on. I am doing it like this

inputElement.send_keys(postnumber)
inputElement.submit()

time.sleep(5)

# Get Current URL
current_url = driver.current_url
print ( " URL : %s" % current_url )

This is working most of the time but sometimes the page takes longer than 5 seconds to load and I get the old URL as the new one hasn't loaded yet.

How should I be doing this?

  • 1
    You cannot get error with current_url = driver.current_url... This will only return you current or new page URL... – Andersson Feb 6 '17 at 14:26
  • Good point, op updated – fightstarr20 Feb 6 '17 at 14:31
7

In my code I have created a context manager that does the following:

  • get a reference to the 'html' element
  • submit the form
  • wait until the reference to the html element goes stale (which means the page has started to reload)
  • wait for document.readyState to be "complete" (which means the page has finished initial loading)

If the page has content that is populated with additional ajax calls, I may add another wait after that for an element that I know doesn't appear immediately after the above four steps.

For a thorough description, see this blog post: How to get Selenium to wait for page load after a click

4

url_changes helper from expected_conditions is exactly for this purpose:

from selenium.webdriver.support.ui import WebDriverWait
from selenium.webdriver.support import expected_conditions as EC

# some work on current page, code omitted

# save current page url
current_url = driver.current_url

# initiate page transition, e.g.:
input_element.send_keys(post_number)
input_element.submit()

# wait for URL to change with 15 seconds timeout
WebDriverWait(driver, 15).until(EC.url_changes(current_url))

# print new URL
new_url = driver.current_url
print(new_url)
2

Try following approach:

from selenium.webdriver.common.by import By
from selenium.webdriver.support.ui import WebDriverWait as wait
from selenium.webdriver.support import expected_conditions as EC

title = driver.title
inputElement.send_keys(postnumber)
inputElement.submit()
wait(driver, 15).until_not(EC.title_is(title))
current_url = driver.current_url
print ( " URL : %s" % current_url )

This will allow you to wait up to 15 seconds until page title is changed (in case there are different titles on new and old pages) after form submission to get new URL. If you want to handle element on new page, then you might need to use below code:

inputElement.send_keys(postnumber)
inputElement.submit()
text_of_element_on_new_page = wait(driver, 15).until(EC.presence_of_element_located((By.ID, "some_element_id"))).text

print ( " Text of element is : %s" % text_of_element_on_new_page )
  • 1
    You should point out that this solution only works if the new page has a different title from the current page. I've worked on several systems where this is not the case. – Bryan Oakley Feb 6 '17 at 14:51
  • yep, answer updated. thanks – Andersson Feb 6 '17 at 14:53
  • 1
    WOW that is super easy solution - it can be use for any expected_conditions so in my case I used it for checking new URL: WebDriverWait(driver, 15).until(expected_conditions.url_changes('http://demo.com/newUrl')). Works as a charm :) – pbaranski Jan 27 '18 at 11:12
1

method 1

driver.find_element_by__link_text('Next').click()

After click to a link, button to go to a new page, you can either:

wait until some element which not in the old page but in the new one appeard;

WebDriverWait(driver, 600).until(expected_conditions.presence_of_element_located((By.XPATH, '//div[@id="main_message"]//table')))
# or just wait for a second for browser(driver) to change
driver.implicitly_wait(1)

when new page is loading(or loaded), now you can check on its readyState by execute javascript script, which will output the 'complete' message(value) when page is loaded.

def wait_loading():
    wait_time = 0
    while driver.execute_script('return document.readyState;') != 'complete' and wait_time < 10:
        # Scroll down to bottom to load contents, unnecessary for everyone
        driver.execute_script("window.scrollTo(0, document.body.scrollHeight);")
        wait_time += 0.1
        time.sleep(0.1)
    print('Load Complete.')

This idea worded for me in my case and I think it can suit most cases, and it's easy.

method 2

from selenium.common.exceptions import StaleElementReferenceException

def wait_for(condition_function):
    start_time = time.time()
    while time.time() < start_time + 10:
        if condition_function:
            return True
        else:
            time.sleep(0.1)
    raise Exception(
        'Time out, waiting for {}'.format(condition_function.__name__)
    )
def click_xpath(xpath):
    link = driver.find_element_by_xpath(xpath)
    link.click()

    def link_staled():
        try:
            link.find_element_by_id('seccode_cSA')
            return  False
        except StaleElementReferenceException:
            return True

    wait_for(link_staled())

click_xpath('//button[@name="loginsubmit"]')

And this method is from 'https://blog.codeship.com/get-selenium-to-wait-for-page-load/' (may be shared from somewhere else)

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