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For the past days I've been trying like crazy to create a custom login page using spring security, but I did not find a working example nor figured it out by myself how to validate the form using spring, and believe me, I tried eveything, every example related I could possibly found on google.

The form loads ok, everythins is in place, all I need is to get Spring Security to authenticate the credentials against a database when I click the "Login" button.

Let me explain by breaking it into parts.

So, I have a login form:

<h:form>
 <p:panelGrid columns="2">

    <p:outputLabel for="j_username" value="Usuário:"/>
    <p:inputText id="j_username"
                 title="Preencha com o seu usuário (login)."
                 required="true"
                 requiredMessage="O campo usuário é obrigatório."
                 value="#{loginBean.usuario}"/>

     <p:outputLabel for="j_password" value="Senha:"/>
     <p:password id="j_password"
                 title="Preencha com a sua senha."
                 required="true"
                 requiredMessage="O campo senha é obrigatório."
                 value="#{loginBean.senha}"/>

      <p:inputText type="hidden"/>

      <p:panelGrid columns="2" styleClass="customPanelgridTable">
       <p:outputLabel for="_spring_security_remember_me" value="Lembrar senha? "/>
         <p:selectBooleanCheckbox id="_spring_security_remember_me"
                                  value="#{loginBean.lembrar_me}"/>
      </p:panelGrid>

      <f:facet name="footer">
        <p:commandButton value="Entrar"
                         actionListener="#{loginBean.doLogin}"/>
      </f:facet>
 </p:panelGrid>
</h:form>

And I need the method "doLogin" to validate the credentials using Spring Security.

My LoginBean:

@Named
@SessionScoped
public class LoginBean implements Serializable {

private static final long serialVersionUID = 1L;

private String usuario, senha;
private boolean lembrar_me = false;

public String getUsuario() {
    return usuario;
}

public void setUsuario(String usuario) {
    this.usuario = usuario;
}

public String getSenha() {
    return senha;
}

public void setSenha(String senha) {
    this.senha = senha;
}

public boolean isLembrar_me() {
    return lembrar_me;
}

public void setLembrar_me(boolean lembrar_me) {
    this.lembrar_me = lembrar_me;
}

public void doLogin() {
  //Spring validation...
}

}

How can I do that?

applicationContext.xml

<http security="none" pattern="/javax.faces.resource/**" />
<http security="none" pattern="/static/**"/>
<http auto-config="true" use-expressions="true"
                  access-denied-page="/public/login.xhtml">

    <intercept-url pattern="/public/**" access="permitAll"/>
    <intercept-url pattern="/secure/**" access="hasRole('ROLE_USER')"/>
    <intercept-url pattern="/login.xhtml" access="permitAll"/>
    <intercept-url pattern="/**" access="hasRole('ROLE_USER')"/>
    <form-login login-page="/public/login.xhtml"
                authentication-failure-url="/public/login.xhtml?erro=true"
                default-target-url="/secure/secure.xhtml"/>

</http>

<beans:bean id="dataSource" 
            class="org.springframework.jdbc.datasource.DriverManagerDataSource" >

    <beans:property name="url" value="jdbc:mysql://localhost:3306/gde" />
    <beans:property name="driverClassName" value="com.mysql.jdbc.Driver" />
    <beans:property name="username" value="root" />
    <beans:property name="password" value="" />
</beans:bean>

<authentication-manager>
    <authentication-provider>

        <user-service>
            <user name="teste" password="teste" authorities="ROLE_USER"/> 
        </user-service>

        <jdbc-user-service data-source-ref="dataSource"
                           users-by-username-query="SELECT USUARIO as username, ISATIVO as enabled FROM usuario WHERE USUARIO=?"

                           authorities-by-username-query="SELECT USUARIO as username, AUTORIZACOES as authority FROM usuario_tipo_usuario WHERE USUARIO=?"
        />
    </authentication-provider>
</authentication-manager>

Any help is much appreciated, I'm stuck with this for days!!!

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2 Answers 2

up vote 0 down vote accepted

Since you want the nifty ajax features of primefaces, you can not use the UsernamePasswordAuthenticationFilter provided by spring security. Try invoking the AuthenticationManager directly, then (The Authentication Manager and the Namespace explains how you can obtain a reference to it).

share|improve this answer
    
You mean for example creating an Authentication object using the form data and try to authenticate it using the authentication manager I set on applicationContext.xml? I once tried something like that but I couldn't obtain the reference to the manager. I tried setting alias="authenticationManager" in the appcontext.xml, then obtain it using @Property(name="authenticationManaget") but it returned null and I tried and tried again ultill I gave up. –  user1836773 Nov 19 '12 at 21:28
    
Yes. Injecting the authenticationManager should be no different than injecting any other spring bean. (May the typo in the Annotation be responsible? Does using the @Property annotation work for other spring beans? Incidentally, what package defines this annotation?) –  meriton Nov 19 '12 at 22:56
    
Isn't it possible to do by redirecting via bean? I mean something like this: public void login () { //send redirect to "/portal/j_spring_security_check?j_username=" + login + "&j_password=" + passwd"; –  user1836773 Nov 20 '12 at 16:08

You don't need a bean to validate a spring security login.

To customize the form login, the form-login element is the right place, and you can indeed specifiy a JSF page as login-page. However, that login page must provide the behaviour expected of a spring security login page. To understand that behavior, read the reference documentation of the form-login element which lists the following optional parameters:

login-processing-url

Maps to the filterProcessesUrl property of UsernamePasswordAuthenticationFilter. The default value is "/j_spring_security_check".

password-parameter

The name of the request parameter which contains the password. Defaults to "j_password".

username-parameter

The name of the request parameter which contains the username. Defaults to "j_username".

That is, spring security expects the credentials to be passed as request parameters of an http post to a particular url. Your JSF form breaks that contract: It is posted to the wrong URL (because you use a h:form, which expects JSF to handle the form submit request). Try using a html <form> instead.

As for how to load user details from a database, the reference documentation covers this this in Using other Authentication Providers.

share|improve this answer
    
First, thank you so much for you time. See, the thing is, I can't use <form>. I need <h:form> because if I use <form>, the <p:commandButton> (primefaces button) won't work. It's like the Primefaces showcase for login: primefaces.org/showcase/ui/dialogLogin.jsf I need the button to work so I can access the doLogin and retrieve ajax parameters. Would need something like this on my bean: if (#spring security check ok) { auth = true; } else { auth = false} } And as you can see, I would be able to use growl too. You think isn't worth the trouble? You think isn't worth the trouble?? –  user1836773 Nov 19 '12 at 20:41
    
You should really mention such constraints in your question. Will provide another answer ... –  meriton Nov 19 '12 at 20:52
    
I'm sorry, I expected to be provided with a bean. Anyway, no excuse for that, you're right. I've posted a workaround here (forum.springsource.org/…), in which I tried to create 2 forms (1 hidden) and use data from the dialog form to fill in the hidden form and submit it through javascript submit(), but I found it to be really nonprofessional and lazy. I'm really tired and tempted to believe I should just leave it and use form... –  user1836773 Nov 19 '12 at 21:14

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