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So, i have this query here:

$strSQL = "SELECT formas.*, SMS_SERVISI.IDTICKET, SMS_SERVISI.MBYLLUR,SMS_SERVISI.time_added,servis_furnitor.id_servis,servis_furnitor.furnitori,servis_furnitor.kohezgjatja
FROM formas  
LEFT JOIN servis_furnitor ON formas.furnitori = servis_furnitor.id_servis 
LEFT JOIN SMS_SERVISI ON formas.ID = SMS_SERVISI.IDTICKET 
ORDER BY formas.id DESC 
WHERE $today-formas.data_fillim > servis_furnitor.kohezgjatja";

The last row is wrong i know, i mean i'm okay up to there.. I have this orders, they have a starting date which is formas.data_fillim and i have the today's date :

$today = date("Ymd"); 

So the difference between $today-formas.data_fillim shouldn't be bigger than servis_furnitor.kohezgjatja which is an integer itself and it shows the number of days

formas.data_fillim

is a datetype..

I need to extract all data whose difference with today's date and their starting day isn't bigger than the number of days predefined in "kohezgjatja"

Any help please.. Thanks

UPDATES

$today = date("Y-m-d H:i:s", time());  


echo $strSQL = "SELECT  formas.*,
        SMS_SERVISI.IDTICKET,
        SMS_SERVISI.MBYLLUR,
        SMS_SERVISI.time_added,
        servis_furnitor.id_servis,
        servis_furnitor.furnitori,
        servis_furnitor.kohezgjatja
FROM formas
LEFT JOIN servis_furnitor
        ON formas.furnitori = servis_furnitor.id_servis
LEFT JOIN SMS_SERVISI
        ON formas.ID = SMS_SERVISI.IDTICKET
WHERE DATEDIFF ( day , '$today' , formas.data_fillim ) > servis_furnitor.kohezgjatja
ORDER BY formas.id DESC"
share|improve this question
2  
The WHERE clause should be before the ORDER BY clause. –  Oded Feb 23 '13 at 14:02
    
Thanks..but well, the query is wrong anyways, the last part :) –  pyetjegoo Feb 23 '13 at 14:04
1  
Different database systems do date math differently. Please specify yours. –  Dan Bracuk Feb 23 '13 at 14:05
    
Could you please see my updated question? i added the query but something isn't right.. i mean maybe i'm not getting the difference between the days.. –  pyetjegoo Feb 23 '13 at 14:49
    
In what language are you writing echo $strSQL = "SELECT... ? It looks like you need to build the $today variable into something like ... ( day , '" +$today+ "' , formas.data_fillim ) ... or just use ... ( day , GetDate() , formas.data_fillim ) ... –  AjV Jsy Feb 23 '13 at 18:11

2 Answers 2

up vote 0 down vote accepted

The correct format of a SELECT statement is

SELECT ....
FROM...
WHERE ...
GROUP ....
ORDER BY...

so in your case,

SELECT  formas.*,
        SMS_SERVISI.IDTICKET,
        SMS_SERVISI.MBYLLUR,
        SMS_SERVISI.time_added,
        servis_furnitor.id_servis,
        servis_furnitor.furnitori,
        servis_furnitor.kohezgjatja
FROM formas
LEFT JOIN servis_furnitor
        ON formas.furnitori = servis_furnitor.id_servis
LEFT JOIN SMS_SERVISI
        ON formas.ID = SMS_SERVISI.IDTICKET
WHERE DATEDIFF ( day , $TODAY , formas.data_fillim )  > servis_furnitor.kohezgjatja
ORDER BY formas.id DESC
share|improve this answer
    
Thanks but that's not the issue, i mean i know it's wrong the query.. but i get an error like : [Microsoft][ODBC SQL Server Driver][SQL Server]Arithmetic overflow error converting expression to data type datetime. –  pyetjegoo Feb 23 '13 at 14:07
1  
Look up DateDiff msdn.microsoft.com/en-us/library/ms189794.aspx and DateAdd, and other date functions from the list on the left there. –  AjV Jsy Feb 23 '13 at 14:08
    
what is kohezgjatja? is it a date or int? –  Ambrose Feb 23 '13 at 14:11
    
kohezgjatje is an int :) –  pyetjegoo Feb 23 '13 at 14:19
    
this is what i get if i print it: SMS_SERVISI.IDTICKET WHERE DATEDIFF ( day , 20130223 , formas.data_fillim ) > servis_furnitor.kohezgjatja –  pyetjegoo Feb 23 '13 at 14:23

Something like this should work:

where formas.data_fillim <= DateAdd(day, servis_furnitor.kohezgjatja, getdate())

You may have to put a minus sign in front of servis_furnitor.kohezgjatja, depending on what you store there.

share|improve this answer
    
Thanks.. i insert something like this: where formas.data_fillim <= DateAdd($today, servis_furnitor.kohezgjatja, getdate()) it says wrong argument provided.. –  pyetjegoo Feb 23 '13 at 14:16
    
@pyetjegoo: Please see DATEADD() if you are indeed using SQL Server. –  Andriy M Feb 23 '13 at 14:18
    
Could you please see my updated question? i added the query but something isn't right.. i mean maybe i'm not getting the difference between the days.. –  pyetjegoo Feb 23 '13 at 14:51
    
You can experiment here sqlfiddle.com/#!3/c2949/11 along the lines of SELECT DATEDIFF( day, GetDate(), '2013-2-27') as Diffence –  AjV Jsy Feb 23 '13 at 18:29

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