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 want to find all the groups a user is part of, including nested groups. Like if user is part of group A1 and group A1 is part of A, then I want to get A as well.

Following is code , I have tried variuos filterstrings... but nothing is given expected output.

String samAccountName = "group";

String searchFilter = "(&(objectclass=user)(memberof: 1.2.840.113556.1.4.1941:="+samAccountName+"))";

//String searchFilter = "(&(objectCategory=person)(memberOf=CN="+samAccountName+"))";

//String searchFilter = "(&(objectcategory=user)(memberof=CN="+samAccountName+",OU=Users,DC=new,DC=com))";

String searchBase = "DC=new,DC=com";

NamingEnumeration answer = ctx.search(searchBase, searchFilter, ontrols);
             List rolesList = new ArrayList();
            while(answer.hasMoreElements()){
                SearchResult sr = (SearchResult)answer.next();

...

Any help is appreciated.

share|improve this question

3 Answers 3

String searchFilter ="(&(objectClass=person)(samaccountname="+userName+"))"

I modidfied the searchFilter and it works.

share|improve this answer

Below code works finding the list of groups that the user belongs to.Sun LDAP implementation is being used

package pack;

import static javax.naming.directory.SearchControls.SUBTREE_SCOPE;

import java.util.ArrayList;
import java.util.Hashtable;
import java.util.Iterator;
import java.util.List;

import javax.naming.AuthenticationException;
import javax.naming.Context;
import javax.naming.NamingEnumeration;
import javax.naming.NamingException;
import javax.naming.directory.Attribute;
import javax.naming.directory.Attributes;
import javax.naming.directory.DirContext;
import javax.naming.directory.SearchControls;
import javax.naming.directory.SearchResult;

import org.acegisecurity.GrantedAuthority;
import org.acegisecurity.GrantedAuthorityImpl;

import com.sun.jndi.ldap.LdapCtxFactory;

class App4 
{

public static void main(String[] args) 
{

    String username = "userName";
    String password = "password";
    String serverName = "server";
    String domainName = "comp.BIZ";

    System.out.println("Authenticating " + username + "@" + domainName
            + " through " + serverName + "." + domainName);

    // bind by using the specified username/password
    Hashtable<String,String> props = new Hashtable<String,String>();
    String principalName = username + "@" + domainName;
    props.put(Context.SECURITY_PRINCIPAL, principalName);
    props.put(Context.SECURITY_CREDENTIALS, password);
    DirContext context;

    try {
        context = LdapCtxFactory.getLdapCtxInstance("ldap://" + serverName
                + "." + domainName + '/', props);
        System.out.println("Authentication succeeded!");

        // locate this user's record
        SearchControls controls = new SearchControls();
        controls.setSearchScope(SUBTREE_SCOPE);

        NamingEnumeration<SearchResult> renum = context.search(
                toDC(domainName), "(& (userPrincipalName=" + principalName
                        + ")(objectClass=user))", controls);


        if (!renum.hasMore()) 
        {
            System.out.println("Cannot locate user information for "
                    + username);
            System.exit(1);
        }
        SearchResult result = renum.next();

        List<GrantedAuthority> groups = new ArrayList<GrantedAuthority>();
        Attribute memberOf = result.getAttributes().get("memberOf");
        if (memberOf != null) 
        {// null if this user belongs to no group at
                                // all
            for (int i = 0; i < memberOf.size(); i++) 
            {
                Attributes atts = context.getAttributes(memberOf.get(i)
                        .toString(), new String[] { "CN" });
                Attribute att = atts.get("CN");
                groups.add(new GrantedAuthorityImpl(att.get().toString()));
            }
        }

        context.close();

        System.out.println();
        System.out.println("User belongs to: ");
        Iterator<GrantedAuthority> ig = groups.iterator();
        while (ig.hasNext()) 
        {
            System.out.println("   " + ig.next().toString());
        }

    } catch (AuthenticationException a) 
    {
        System.out.println("Authentication failed: " + a);
        System.exit(1);
    } catch (NamingException e) 
    {
        System.out
                .println("Failed to bind to LDAP / get account information: "
                        + e);
        System.exit(1);
    }
}

private static String toDC(String domainName) 
{
    StringBuilder buf = new StringBuilder();
    for (String token : domainName.split("\\.")) 
    {
        if (token.length() == 0)
            continue; // defensive check
        if (buf.length() > 0)
            buf.append(",");
        buf.append("DC=").append(token);
    }
    return buf.toString();
}

}

share|improve this answer

I expect you'll have to recursively search the memberOf attribute list for a user. e.g. if a user has the following ldif-style result from an ldapsearch call:

cn: user1
memberOf: CN=group1,DC=foo,DC=example,DC=com
memberOf: CN=group2,DC=foo,DC=example,DC=com

..then you'll want to recursively look up group1 and group2 with additional ldap searches, and so on for groups which those groups are membersOf.

I'm doing something similar right now, but in perl and to get flat lists of all members of all groups from Active Directory. AD uses objectClass: group whereas OpenLDAP tends to use objectClass: groupOfUniqueNames or perhaps objectClass: posixGroup, depending on the use (posix groups for unix-y clients such as Linux boxes, groupOfUniqueNames groups for more general information. It depends entirely on the clients using the information from the directory).

Edit: In AD there is also supposed to be an attribute called tokenGroups which contains the SIDs of security groups for users, but this didn't work for me. I'm guessing it's optional and not enabled on my site's AD server.

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.