Is there any hidden table, system variable or something to show active connections in a given moment?

up vote 160 down vote accepted

Use the V$SESSION view.

V$SESSION displays session information for each current session.

  • 4
    Error starting at line 1 in command: select * from FROM v$session Error at Command Line:1 Column:14 Error report: SQL Error: ORA-00903: invalid table name 00903. 00000 - "invalid table name" *Cause: *Action: – pistacchio Jun 25 '09 at 10:22
  • 3
    Either you don't have permissions, or you didn't install the DBA views correctly. – S.Lott Jun 25 '09 at 10:24
  • 4
    You'll need the select_catalog_role role. – PaulJWilliams Jun 25 '09 at 10:25
  • 2
    You can join v$sqltext to get the current SQL of sessions too. – Alkini Jun 25 '09 at 16:46
  • 22
    pistacchio, you have 2 "from FROM" in the SQL: "select * from FROM v$session" – marcprux Nov 23 '10 at 20:02

For a more complete answer see: http://dbaforums.org/oracle/index.php?showtopic=16834

select
       substr(a.spid,1,9) pid,
       substr(b.sid,1,5) sid,
       substr(b.serial#,1,5) ser#,
       substr(b.machine,1,6) box,
       substr(b.username,1,10) username,
--       b.server,
       substr(b.osuser,1,8) os_user,
       substr(b.program,1,30) program
from v$session b, v$process a
where
b.paddr = a.addr
and type='USER'
order by spid; 

When I'd like to view incoming connections from our application servers to the database I use the following command:

SELECT username FROM v$session 
WHERE username IS NOT NULL 
ORDER BY username ASC;

Simple, but effective.

select
  username,
  osuser,
  terminal,
  utl_inaddr.get_host_address(terminal) IP_ADDRESS
from
  v$session
where
  username is not null
order by
  username,
  osuser;
  • 4
    Welcome to SO! Please provide some intuition for your answers. – vefthym Jul 17 '14 at 10:56
Select count(1) From V$session
where status='ACTIVE'
/

The following gives you list of operating system users sorted by number of connections, which is useful when looking for excessive resource usage.

select osuser, count(*) as active_conn_count 
from v$session 
group by osuser 
order by active_conn_count desc
select status, count(1) as connectionCount from V$SESSION group by status;
select s.sid as "Sid", s.serial# as "Serial#", nvl(s.username, ' ') as "Username", s.machine as "Machine", s.schemaname as "Schema name", s.logon_time as "Login time", s.program as "Program", s.osuser as "Os user", s.status as "Status", nvl(s.process, ' ') as "OS Process id"
from v$session s
where nvl(s.username, 'a') not like 'a' and status like 'ACTIVE'
order by 1,2

This query attempts to filter out all background processes.

select 
    count(1) "NO. Of DB Users", 
    to_char(sysdate,'DD-MON-YYYY:HH24:MI:SS') sys_time
from 
    v$session 
where 
    username is NOT  NULL;
  • 1
    While this code snippet may solve the question, including an explanation really helps to improve the quality of your post. Remember that you are answering the question for readers in the future, and those people might not know the reasons for your code suggestion. – DimaSan Mar 7 '17 at 11:06

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