Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I using selenuim webdriver, lang: java I am fetching all links from webpage and trying to click each link one by one. I am getting below error:

error org.openqa.selenium.StaleElementReferenceException: Element not found in the cache - perhaps the page has changed since it was looked up Command duration or timeout: 30.01 seconds For documentation on this error, please visit: http://seleniumhq.org/exceptions/stale_element_reference.html Build info: version: '2.25.0', revision: '17482', time: '2012-07-18 21:09:54'

and here is my code :

public void getLinks()throws Exception{
    try {
        List<WebElement> links = driver.findElements(By.tagName("a"));
        int linkcount = links.size(); 
         System.out.println(links.size()); 
          for (WebElement myElement : links){
         String link = myElement.getText(); 
         System.out.println(link);
         System.out.println(myElement);   
        if (link !=""){
             myElement.click();
             Thread.sleep(2000);
             System.out.println("third");
            }
            //Thread.sleep(5000);
          } 
        }catch (Exception e){
            System.out.println("error "+e);
        }
    }

actually, it's displaying in output

[[FirefoxDriver: firefox on XP (ce0da229-f77b-4fb8-b017-df517845fa78)] -> tag name: a]

as link, I want to eliminate these form result.

share|improve this question

3 Answers 3

up vote 3 down vote accepted

There is no such a good idea to have following scenario :

for (WebElement element : webDriver.findElements(locator.getBy())){
  element.click();
}

Why? Because there is no guarantee that the element.click(); will have no effect on other found elements, so the DOM may be changed, so hence the StaleElementReferenceException.

It is better to use the following scenario :

int numberOfElementsFound = getNumberOfElementsFound(locator);
for (int pos = 0; pos < numberOfElementsFound; pos++) {
  getElementWithIndex(locator, pos).click();
}

This is better because you will always take the WebElement refreshed, even the previous click had some effects on it.

EDIT : Example added

  public int getNumberOfElementsFound(By by) {
    return webDriver.findElements(by).size();
  }

  public WebElement getElementWithIndex(By by, int pos) {
    return webDriver.findElements(by).get(pos);
  }

Hope to be enough.

share|improve this answer
    
can pls give me one sample example of above scenario. It will really appreciable. thanks. –  Shammi Nov 20 '12 at 5:47
    
I have updated my answer. –  Ioan Nov 20 '12 at 13:45
    
@loan I am still struggling, didn't get through. May be because I'm new to selenium driver. loop is running 4 times after that it sending following error <blockquote>'error org.openqa.selenium.ElementNotVisibleException: Element is not currently visible and so may not be interacted with Command duration or timeout: 30.05 seconds Build info: version: '2.25.0', revision: '17482', time: '2012-07-18 21:09:54' System info: os.name: 'Windows 7', os.arch: 'x86', os.version: '6 > –  Shammi Nov 26 '12 at 9:07
    
Well this is a different problem than StaleElementReferenceException. It means that you are trying to access an element which is not visibile, and most probably which is made visibile by another element. So first you have to identify which is this element, and then to make sure that it is visibile before to perform any actions on it. Or if is not mandatory, you can use .isDisplayed() method, to check if this element is proper, and then continue. –  Ioan Nov 26 '12 at 9:44
    
@loan Thanks alot now it's working fine :) –  Shammi Nov 26 '12 at 13:08
    WebDriver _driver = new InternetExplorerDriver();
    _driver.navigate().to("http://www.google.co.in/");
    List <WebElement> alllinks = _driver.findElements(By.tagName("a"));

    for(int i=0;i<alllinks.size();i++)
        System.out.println(alllinks.get(i).getText());

    for(int i=0;i<alllinks.size();i++){
        alllinks.get(i).click();
        _driver.navigate().back();
    }
share|improve this answer
    
I don't think that will work, having navigated away won't you get a stale object exception? I think you have to look up all the links each time, take an object and ignore the rest. –  EdC Nov 19 '12 at 8:15
    
NO it's not working, still getting same error above error :( –  Shammi Nov 19 '12 at 8:56

If you're OK using WebDriver.get() instead of WebElement.click() to test the links, an alternate approach is to save the href value of each found WebElement in a separate list. This way you avoid the StaleElementReferenceException because you're not trying to reuse subsequent WebElements after navigating away with the first WebElement.click().

Basic example:

List<String> hrefs = new ArrayList<String>();
List<WebElement> anchors = driver.findElements(By.tagName("a"));
for ( WebElement anchor : anchors ) {
    hrefs.add(anchor.getAttribute("href"));
}
for ( String href : hrefs ) {
    driver.get(href);           
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.