10

I'm new at spring framework. I'm creating a login page for my webapp and I want the user to login before any action on the app. If the user enters good credentials everything it's ok and working, but if enters bad ones I want to display a message and keep the username on the input element. Displaying a message is not a problem, but I'm not able to keep the username in my jps file without using the deprecated variable SPRING_SECURITY_LAST_USERNAME.

Hope someone can help me, I'm using Spring 3.

UPDATE: the requirements says I don't want to display the username on the url.

22

The documentation of the deprecated constant tells exactly what you should do:

/**
 * @deprecated If you want to retain the username, cache it in a customized {@code AuthenticationFailureHandler}
 */
@Deprecated
public static final String SPRING_SECURITY_LAST_USERNAME_KEY =
           "SPRING_SECURITY_LAST_USERNAME";

Something like this:

public class UserNameCachingAuthenticationFailureHandler
    extends SimpleUrlAuthenticationFailureHandler {

    public static final String LAST_USERNAME_KEY = "LAST_USERNAME";

    @Autowired
    private UsernamePasswordAuthenticationFilter usernamePasswordAuthenticationFilter;

    @Override
    public void onAuthenticationFailure(
            HttpServletRequest request, HttpServletResponse response,
            AuthenticationException exception)
            throws IOException, ServletException {

        super.onAuthenticationFailure(request, response, exception);

        String usernameParameter =
            usernamePasswordAuthenticationFilter.getUsernameParameter();
        String lastUserName = request.getParameter(usernameParameter);

        HttpSession session = request.getSession(false);
        if (session != null || isAllowSessionCreation()) {
            request.getSession().setAttribute(LAST_USERNAME_KEY, lastUserName);
        }
    }
}

In your security config:

<security:http ...>
    ...
    <security:form-login
        authentication-failure-handler-ref="userNameCachingAuthenticationFailureHandler"
    ...
    />
</security:http>

<bean 
    id="userNameCachingAuthenticationFailureHandler"
    class="so.UserNameCachingAuthenticationFailureHandler">
    <property name="defaultFailureUrl" value="/url/to/login?error=true"/>
</bean>

In your login.jsp:

<%@ taglib uri="http://java.sun.com/jsp/jstl/core" prefix="c" %>
<%@ page session="true" %>

...

<%--in the login form definition--%>
<input id="j_username" name="j_username" type="text" 
    value="<c:out value="${sessionScope.LAST_USERNAME}"/>"/>
  • 1
    No problem. Note that there is space for improvement at some points. E.g. hard-coding the session attribute's name in the .jsp is not elegant. Ideally it should refer to the constant defined in UserNameCachingAuthenticationFailureHandler. (I have to admint I don't know how to achieve this indirection.) – zagyi Feb 24 '13 at 16:27
  • I didn't know this could be achieved! But for now that's all I need, this not security properly but a little trick to make the user life better! It's incredible that I coudn't find another simple solution like this anywhere! ;) – droidpl Feb 24 '13 at 16:43
  • 1
    is it just me, or is that a crap load of code just to keep the username input on the form? – Jason Jul 21 '13 at 2:26
  • 1
    request.getParameter("j_username") can also be called successfully from the RedirectStrategy.sendRedirect() method if you're implementing it as a customised bean (actually this bean is a member variable/field of the AuthenticationFailureHandler class/bean). – AxeEffect Sep 17 '14 at 14:36
  • 2
    usernamePasswordAuthenticationFilter is null. Spring Security 4. How can I solve this? – Jonathas Pacífico Nov 24 '16 at 16:40
4

If anyone comes here who is having this problem in Grails Spring security. You can now use the following-

import grails.plugin.springsecurity.SpringSecurityUtils;

Now use SpringSecurityUtils.SPRING_SECURITY_LAST_USERNAME_KEY this will work and is not deprecated.

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