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I wonder whether someone may be able to help me please.

I'm using the query below to correctly retrieve Google marker data from a MySQL database.

SELECT l.locationid, f.locationid, l.locationname, l.osgb36lat, l.osgb36lon, count(f.locationid) as totalfinds 
  FROM detectinglocations as l 
  LEFT JOIN finds AS f ON l.locationid=f.locationid 
  GROUP BY l.locationid

I'm now trying to add to this by adding a where clause, to be more specific where userid='$userid'.

I've tried adding this extra clause in various positions within the query, and I'm sure that this is perhaps just a beginners mistake, but I just can't get the query to work.

I just wondered whether someone could perhaps look at this and let me know where I'm going wrong.

Thanks and kind regards

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3 Answers 3

up vote 2 down vote accepted

Try adding the where clause right before GROUP BY.

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2  
Hi @dcp, thank you for taking the time to reply to my post and agreeing to help. I've tried your suggestion, and it works brilliantly. When the time delayed has past, I'll show this as my accepted answer. Once again many thanks and regards –  IRHM Jun 19 '12 at 13:00

In joins, WHERE condition comes after ON statement

If userid is there in table detectinglocations then use

SELECT l.locationid, f.locationid, l.locationname, l.osgb36lat, l.osgb36lon, count(f.locationid) as totalfinds 
FROM detectinglocations as l 
LEFT JOIN finds AS f ON l.locationid=f.locationid 
WHERE l.userid='$userid'
GROUP BY l.locationid

If userid is there in table finds then use

SELECT l.locationid, f.locationid, l.locationname, l.osgb36lat, l.osgb36lon, count(f.locationid) as totalfinds 
FROM detectinglocations as l 
LEFT JOIN finds AS f ON l.locationid=f.locationid 
WHERE f.userid='$userid'
GROUP BY l.locationid
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Hi @Fahim Parkar, thank you for taking the time to help me with this. You're suggestion virtually mirrored another answer I received and it works great. Kind regards –  IRHM Jun 19 '12 at 13:02
1  
not a problem.. you can accept dcp answer.. –  Fahim Parkar Jun 19 '12 at 13:04
    
Many thanks. Regards –  IRHM Jun 19 '12 at 13:05
$query = "SELECT l.locationid, f.locationid, l.locationname, l.osgb36lat, l.osgb36lon, count(f.locationid) as totalfinds 
          FROM detectinglocations as l 
          LEFT JOIN finds as f on l.locationid=f.locationid 
          WHERE userid=".(int)$userid." 
          GROUP BY l.locationid"; 

I also have added (int) to your variable to "sanitize" an unknow (for me) var

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Hi @Luis Siqot, thank you for taking the time to reply to my post and helping. I tried you suggested code, and unfortunately I was unable to get the query to work. I have however accepted an earlier suggestions as this works absolutely fine. Kind regards –  IRHM Jun 19 '12 at 12:59
    
all of us are here to help, plese notice that my anwser is the same as your accepted anwser, plus the advice to be careful with sql injection. –  Luis Siquot Jun 19 '12 at 13:05
    
Thank you for your advice. –  IRHM Jun 19 '12 at 13:06

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