instagram selenium showing login page instead of scraping code example
Example: how to extract the username of the first 500 followers using selenium
import itertools
from explicit import waiter, XPATH
from selenium import webdriver
from selenium.webdriver.support.ui import WebDriverWait
from selenium.webdriver.support import expected_conditions as EC
from selenium.webdriver.common.by import By
from time import sleep
def login(driver):
username = "" # <username here>
password = "" # <password here>
# Load page
driver.get("https://www.instagram.com/accounts/login/")
sleep(3)
# Login
driver.find_element_by_name("username").send_keys(username)
driver.find_element_by_name("password").send_keys(password)
submit = driver.find_element_by_tag_name('form')
submit.submit()
# Wait for the user dashboard page to load
WebDriverWait(driver, 15).until(
EC.presence_of_element_located((By.LINK_TEXT, "See All")))
def scrape_followers(driver, account):
# Load account page
driver.get("https://www.instagram.com/{0}/".format(account))
# Click the 'Follower(s)' link
# driver.find_element_by_partial_link_text("follower").click
sleep(2)
driver.find_element_by_partial_link_text("follower").click()
# Wait for the followers modal to load
waiter.find_element(driver, "//div[@role='dialog']", by=XPATH)
allfoll = int(driver.find_element_by_xpath("//li[2]/a/span").text)
# At this point a Followers modal pops open. If you immediately scroll to the bottom,
# you hit a stopping point and a "See All Suggestions" link. If you fiddle with the
# model by scrolling up and down, you can force it to load additional followers for
# that person.
# Now the modal will begin loading followers every time you scroll to the bottom.
# Keep scrolling in a loop until you've hit the desired number of followers.
# In this instance, I'm using a generator to return followers one-by-one
follower_css = "ul div li:nth-child({}) a.notranslate" # Taking advange of CSS's nth-child functionality
for group in itertools.count(start=1, step=12):
for follower_index in range(group, group + 12):
if follower_index > allfoll:
raise StopIteration
yield waiter.find_element(driver, follower_css.format(follower_index)).text
# Instagram loads followers 12 at a time. Find the last follower element
# and scroll it into view, forcing instagram to load another 12
# Even though we just found this elem in the previous for loop, there can
# potentially be large amount of time between that call and this one,
# and the element might have gone stale. Lets just re-acquire it to avoid
# tha
last_follower = waiter.find_element(driver, follower_css.format(group+11))
driver.execute_script("arguments[0].scrollIntoView();", last_follower)
if __name__ == "__main__":
account = "" # <account to check>
driver = webdriver.Firefox(executable_path="./geckodriver")
try:
login(driver)
print('Followers of the "{}" account'.format(account))
for count, follower in enumerate(scrape_followers(driver, account=account), 1):
print("\t{:>3}: {}".format(count, follower))
finally:
driver.quit()