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I have created a MembersOnly, Persistant Room. In which I have invited multiple occupants. Now I want to fetch detail of room for the user which was invited by creator.

I tried this code :

XMPP requirement :

<iq from='hag66@shakespeare.lit/pda'
id='ik3vs715'
to='coven@chat.shakespeare.lit'
type='get'>
<query xmlns='http://jabber.org/protocol/disco#info'/>
</iq>

iOS code to call the from iOS

NSXMLElement *query = [NSXMLElement elementWithName:@"query" xmlns:@"http://jabber.org/protocol/disco#info"];//

NSString *iqID = [[appDelegate xmppStream] generateUUID];

XMPPJID *jID = self.room.roomJID;
XMPPIQ *element = [XMPPIQ iqWithType:@"get" to:jID  elementID:iqID child:query];
[element addAttributeWithName:@"from" stringValue:[[[appDelegate xmppStream] myJID] full]];
[[appDelegate xmppStream] fetchInformationForGivenIQ:element];

This should provide me this kinda result :

<iq from='coven@chat.shakespeare.lit'
id='ik3vs715'
to='hag66@shakespeare.lit/pda'
type='result'>
<query xmlns='http://jabber.org/protocol/disco#info'>
<identity
    category='conference'
    name='A Dark Cave'
    type='text'/>
<feature var='http://jabber.org/protocol/muc'/>
<feature var='muc_passwordprotected'/>
<feature var='muc_hidden'/>
<feature var='muc_temporary'/>
<feature var='muc_open'/>
<feature var='muc_unmoderated'/>
<feature var='muc_nonanonymous'/>
</query>
</iq>

But I am getting this result :

<iq xmlns="jabber:client" type="result" id="some ID" from="Group-ID" to="My Full JabberID">
<query xmlns="http://jabber.org/protocol/disco#info">
<feature var="http://jabber.org/protocol/disco#info">
</feature>
</query>
</iq>

Can any one help me what I am doing wrong.

THanks in advance.

share|improve this question
    
Few correction, I didnt even get the detail of Public room. If nonOwner access the detail as I suggested way, he is not able to fetch the detail. Please guide. –  Nilesh Tripathi Mar 14 at 6:45
    
Check out first two sections in the answer at: XMPPFramework - Implement Group Chat (MUC) –  Keith OYS Jul 16 at 14:37

1 Answer 1

If you want to get the room info , you can call the mothod on XMPPRoom

- (void)fetchConfigurationForm;

Then , get the room info in the room's Delegate method

- (void)xmppRoom:(XMPPRoom *)sender didFetchConfigurationForm:(NSXMLElement *)configForm;
share|improve this answer
    
Hi Dee, Thanks to reply. But I already did it.I tried to fetch roomDetail by fetchConfigurationForm but I got error. (didNotFetchConfigurationForm delegate method called and iq type is error). I think issue is with roles, affiliations, Privileges. Do you have any idea what type of Roles, Affiliations, and Privileges need to assign to invited user by which I will get room detail calling same fetchConfigurationForm method. –  Nilesh Tripathi Mar 27 at 9:42
    
Dude , check the xmpp doc out . xmpp.org/extensions/xep-0045.html –  dee Mar 27 at 15:31
    
please read the doc !XEP-0045 –  dee Apr 29 at 6:50

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