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I want to show all objectclasses present in schema of LDAP Directory to help user to input available objectclasses for adding new entry.

DirContext schema = ctx.getSchema("");
Attributes answer = schema.getAttributes("ClassDefinition/person");

but that shows information about person only.

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2 Answers 2

up vote 3 down vote accepted

You have to query the subschema subentry i.e cn=schema (the below code has been tested against the Apache Directory Server)

DirContext ctx = new InitialLdapContext( env, null );

SearchControls searchControls = new SearchControls();
searchControls.setSearchScope( SearchControls.OBJECT_SCOPE );
searchControls.setReturningAttributes( new String[]
    { "objectClasses" } );
NamingEnumeration<SearchResult> results = "cn=schema", "(ObjectClass=*)", searchControls );

SearchResult result =;
Attributes entry = result.getAttributes();

Attribute objectClasses = entry.get( "objectClasses" );
System.out.println( objectClasses );
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You have to be careful when you hardcode cn=schema, this is implementation specific. Another minor point to note is the filter should be objectclass=subschema, but it does not matter. – kalyan Mar 13 '11 at 18:39
thank you very much. that code just worked fine. – pankaj Mar 14 '11 at 8:38
nope, cn=schema is the LDAP V3 standard value specifying the schema location – kayyagari Apr 5 '11 at 14:53
What happens if cn=schema is returning 32 - No such object? – gies0r Apr 30 '14 at 11:03
DirContext schema=dcx.getSchema("");
NamingEnumeration bindings = schema.listBindings("ClassDefinition");
while (bindings.hasMore())
    Binding bd = (Binding);
    System.out.println(bd.getName() + ": " + bd.getObject());

You can use various other bindings like

  • AttributeDefinition
  • ClassDefinition
  • SyntaxDefinition

Schema context may also provide bindings like
  • MatchingRule
  • ExtensionDefinition
  • ControlDefinition
  • SASLDefinition

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The cast is not needed in Java 1.5 and above. – Robin Green May 17 '13 at 17:02
@RobinGreen , the binding is useless if he uses generics NamingEnumeration<Binding>, but it is useful in the example above. – mathematician Nov 19 at 14:32

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