我用 selenium 在 python 中编写了一个脚本来遍历从第一页到分页的不同页面。但是,除了一些数字外,没有下一页按钮的选项。当我单击该号码时,它会将我带到下一页。无论如何,当我尝试使用我的脚本执行此操作时,它确实单击了第二页并转到了那里,但它不再滑动,我的意思是不是转到第三页,而是会中断并引发以下错误。
line 192, in check_response
raise exception_class(message, screen, stacktrace)
selenium.common.exceptions.StaleElementReferenceException: Message: stale element reference: element is not attached to the page document
我正在尝试的脚本:
from selenium import webdriver
from selenium.webdriver.common.by import By
from selenium.webdriver.support.ui import WebDriverWait
from selenium.webdriver.support import expected_conditions as EC
driver = webdriver.Chrome()
driver.get("http://www.cptu.gov.bd/AwardNotices.aspx")
wait = WebDriverWait(driver, 10)
driver.find_element_by_id("imgbtnSearch").click()
for item in wait.until(EC.presence_of_all_elements_located((By.CSS_SELECTOR, "#dgAwards > tbody > tr > td > a"))):
item.click()
driver.quit()
分页号所在的元素:
<tr align="right" valign="top" style="font-size:XX-Small;font-weight:normal;white-space:nowrap;">
<td colspan="8"><span>Page: </span><a href="javascript:__doPostBack('dgAwards$ctl01$ctl01','')">1</a> <a href="javascript:__doPostBack('dgAwards$ctl01$ctl02','')">2</a> <span>3</span> <a href="javascript:__doPostBack('dgAwards$ctl01$ctl04','')">4</a> <a href="javascript:__doPostBack('dgAwards$ctl01$ctl05','')">5</a> <a href="javascript:__doPostBack('dgAwards$ctl01$ctl06','')">6</a> <a href="javascript:__doPostBack('dgAwards$ctl01$ctl07','')">7</a> <a href="javascript:__doPostBack('dgAwards$ctl01$ctl08','')">8</a> <a href="javascript:__doPostBack('dgAwards$ctl01$ctl09','')">9</a> <a href="javascript:__doPostBack('dgAwards$ctl01$ctl10','')">10</a> <a href="javascript:__doPostBack('dgAwards$ctl01$ctl11','')">...</a></td>
</tr>
顺便说一句,单击主页中的“搜索”按钮时会出现分页选项。
最佳答案
您无法遍历预定义元素的列表,因为在您刷新 click() 页面后这些元素变得陈旧
你可以试试下面的:
from selenium.common.exceptions import NoSuchElementException
page_counter = 2
while True:
try:
if not page_counter % 10 == 1:
driver.find_element_by_link_text(str(page_counter)).click()
page_counter += 1
else:
driver.find_elements_by_link_text("...")[-1].click()
page_counter += 1
except NoSuchElementException :
break
这应该允许您在可能的情况下切换到下一页
关于python - 无法进入下一页,我们在Stack Overflow上找到一个类似的问题:https://stackoverflow.com/questions/45680329/