Re: sql

Hi...
I tried this its working.. can u please check this.

select count(*) as all, sum(decode(entry_user_id,'VC',1)) as
entry_user_id,sum(decode(entry_user_id,'VE',1)) as VE
,sum(decode(entry_user_id,CV,1))as
CV,sum(decode(entry_user_id,'SC',1))as SC from vigilance_master;


regards
penchal

-----Original Message-----
From: pgsql-sql-owner@postgresql.org
[mailto:pgsql-sql-owner@postgresql.org] On Behalf Of Karthikeyan
Sundaram
Sent: Tuesday, February 06, 2007 12:47 PM
To: shyjukoyyam@gmail.com; pgsql-sql@postgresql.org
Subject: Re: [SQL] sql

try this:

select entry_user_id, sum(decode(entry_user_id,'VC',1,0) as vc,            sum(decode(entry_user_id,'VE',1,0) as ve,
       sum(decode(entry_user_id,'CV',1,0) as cv,            sum(decode(entry_user_id,'SC',1,0) as SC 
from vigilance_master group
where entry_user_id=78
group by entry_user_id



>From: "Shyju Narayanan" <shyjukoyyam@gmail.com>
>To: pgsql-sql@postgresql.org
>Subject: [SQL] sql
>Date: Fri, 2 Feb 2007 13:09:09 +0530
>
>Hi All
>
>this is my table ;
>| ID    |entry_user_id_int  | category_id_chv |
>----------------------------------------------
>| 1        |        78            |    CV              |
>----------------------------------------------
>| 2        |        78            |    VC              |
>----------------------------------------------
>| 3        |        78            |    CV            |
>----------------------------------------------
>| 4        |        78            |    CV            |
>----------------------------------------------
>| 5        |        78            |    CV            |
>----------------------------------------------
>| 6        |        78            |    CV            |
>----------------------------------------------
>| 7        |        78            |    CV            |
>----------------------------------------------
>| 8        |        78            |    CV            |
>----------------------------------------------
>| 9        |        78            |    VE            |
>----------------------------------------------
>| 10    |        78            |    CV            |
>----------------------------------------------
>| 11    |        78            |    SC            |
>----------------------------------------------
>
>WHEN "select entry_user_id_int, category_id_chv,count(category_id_chv)
from
>vigilance_master group by category_id_chv,entry_user_id_int having"
>entry_user_id_int=78
>result is :
>
>ID   entry_user_id_int  category_id_chv count
>
>1        78                       VC                     1
>2        78                       VE                     1
>3        78                       CV                     8
>4        78                       SC                     1
>
>BUT I NEED THE RESULT AS
>entry_user_id_int     COUNT(VC)  COUNT(VE)  COUNT(CV)   COUNT(SC)
TOTAL
>78        1 1 8 1 11

_________________________________________________________________
Get in the mood for Valentine's Day. View photos, recipes and more on
your
Live.com page.
http://www.live.com/?addTemplate=ValentinesDay&ocid=T001MSN30A0701


---------------------------(end of broadcast)---------------------------
TIP 4: Have you searched our list archives?
              http://archives.postgresql.org

Information transmitted by this e-mail is proprietary to Infinite Computer Solutions and / or its Customers and is
intendedfor use only by the individual or the entity to which it is addressed, and may contain information that is
privileged,confidential or exempt from disclosure under applicable law. If you are not the intended recipient or it
appearsthat this mail has been forwarded to you without proper authority, you are notified that any use or
disseminationof this information in any manner is strictly prohibited. In such cases, please notify us immediately at
info.in@infics.comand delete this email from your records.