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Right now I have the following query:

SELECT name, COUNT(name), time, price, ip, SUM(price) 
  FROM tablename 
 WHERE time >= $yesterday 
   AND time <$today GROUP BY name

And what I'd like to do is add a DISTINCT by column 'ip', i.e.

SELECT DISTINCT ip FROM tablename 

So my final output would be all the columns, from all the rows that where time is today, grouped by name (with name count for each repeating name) and no duplicate ip addresses.

What should my query look like? (or alternatively, how can I add the missing filter to the output with php)?

Thanks in advance.


[UPDATE]

To minimize confusion, consider this (simplified) db table:

|   name   |   ip   |
---------------------
|  mark    |  123   |
|  mark    |  123   |
|  mark    |  456   |
|  dave    |  789   |
|  dave    |  087   |

The result I'm looking for would be an HTML table looking like this:

|  name    |  name count   |
----------------------------
|  mark    |      2        |
|  dave    |      2        |

What I'm currently getting is:

|  name    |  name count   |
----------------------------
|  mark    |      3        |
|  dave    |      2        |

(it counts mark 3 times, even though two times are with the same ip).

share|improve this question
    
I also tried SELECT DISTINCT ip FROM (SELECT name, COUNT(name), time, price, ip, SUM(price) FROM tablename WHERE time >= $yesterday AND time <$today GROUP BY name) as TABLE But I get a syntax error... –  Adam Tal Mar 20 '10 at 15:35
    
Try: SELECT DISTINCT TABLE.ip FROM (SELECT T.name, COUNT(T.name), T.time, T.price, T.ip, SUM(T.price) FROM tablename T WHERE time >= $yesterday AND time <$today GROUP BY name) as TABLE –  lexu Mar 20 '10 at 16:09
    
-"supplied argument is not a valid MySQL result resource" :( –  Adam Tal Mar 20 '10 at 17:52
    
ok, I'm pulling my hair out, can't solve this!!!:) Trying a new approach, new question is here: u.nu/4kau7 –  Adam Tal Mar 20 '10 at 20:33

5 Answers 5

up vote 24 down vote accepted

you can use COUNT(DISTINCT ip), this will only count distinct values

share|improve this answer
    
yep, but it doesn't solve my problem:) thanks –  Adam Tal Mar 20 '10 at 20:04
    
Adam: Why doesn't this solve your problem? –  Mark Byers Mar 20 '10 at 20:47
    
Oh hold on, wait a minute. Trying to reproduce the query to answer Marks question reveals: THIS DOES WORK!!!!! I can't believe it. I think I might cry. –  Adam Tal Mar 21 '10 at 13:32
    
+1 for straight and complete answer –  Rupesh Patel Mar 13 '13 at 6:12
1  
How can we understand what you mean when you don't provide your entire SELECT statement? –  micro Mar 21 '13 at 17:32

Replacing FROM tablename with FROM (SELECT DISTINCT * FROM tablename) should give you the result you want (ignoring duplicated rows) for example:

SELECT name, COUNT(*)
FROM (SELECT DISTINCT * FROM Table1) AS T1
GROUP BY name

Result for your test data:

dave 2
mark 2
share|improve this answer
    
Sounds good. How do I extract the data though? (Never used SELECT within a SELECT before). Is Table1 my Table? What is T1? Thanks in advance –  Adam Tal Mar 20 '10 at 21:07
1  
@Adam: Yes, Table1 is the name of your table, while T1 is the alias for that sub-query, so you could also write SELECT T1.name, .... MySQL requires aliases for all sub-queries (+1 for this answer). –  Peter Lang Mar 20 '10 at 21:18
    
Thanks Peter, and Mark. How do I use the data in my php though? I used $data = mysql_query("SELECT...") and then while($row = mysql_fetch_array($data)) { echo $row['name']; echo $row['COUNT(name)']; } But now it returns empty. –  Adam Tal Mar 21 '10 at 7:50
    
OK, update: The problem now is that if I have a Dave using the same ip as Mark once, and then another Dave that doesn't use the same ip, this query won't show me any dave's (when it should still count the Daves that aren't sharing the same ip). Tried changing DISTINCT * to DISTINCT ip, but then I get an error. –  Adam Tal Mar 21 '10 at 12:02

You can just add the DISTINCT(ip), but it has to come at the start of the query. Be sure to escape PHP variables that go into the SQL string.

SELECT DISTINCT(ip), name, COUNT(name) nameCnt, 
time, price, SUM(price) priceSum
FROM tablename 
WHERE time >= $yesterday AND time <$today 
GROUP BY ip, name
share|improve this answer
    
Tried adding DISTINCT(ip) at the beginning, didn't work, it just ignores it. Where did the 'nameCnt' come from? am I writing the query wrong? (It worked with me w/o 'nameCnt' & 'priceSum' before, except for the DISTINCT thing).... –  Adam Tal Mar 20 '10 at 15:26
    
It's better to alias the columns so you can refer to them by the alias in PHP rather than having to use $result['COUNT(name)'] - instead with alias $result['nameCnt']. I think you'll have to GROUP BY ip, name, answer updated –  Andy Mar 20 '10 at 15:59
1  
You can't really do that -- distinct isn't a function; it's a keyword which applies to the entire row, or a modifier on an aggregate function. In your case, it's a keyword for SELECT, which is why it has to come before the column names. The parentheses you put around 'ip' are just decorative. –  Ian Clelland Mar 21 '10 at 20:57

Somehow your requirement sounds a bit contradictory ..

group by name (which is basically a distinct on name plus readiness to aggregate) and then a distinct on IP

What do you think should happen if two people (names) worked from the same IP within the time period specified?


Did you try this?

SELECT name, COUNT(name), time, price, ip, SUM(price) 
  FROM tablename 
 WHERE time >= $yesterday AND time <$today 
GROUP BY name,ip
share|improve this answer
    
I tried it, didn't get the right result. The reason I want to use DISTINCT on ip, is I don't want duplicate ip's. The reason I want to use GROUP BY on name is so I can count names (e.g. show one table row that tells me how many people with the name "mark" are there). I don't (and won't) have two names on the same IP in my db. –  Adam Tal Mar 20 '10 at 15:23
    
Regarding GROUP BY name,ip ... It didn't solve the problem, I think it only groups by the first column and ignores the second. –  Adam Tal Mar 20 '10 at 15:33
    
@Adam: It groups by name and IP .. you can see this more easily by moving the IP to the second position of the select list. –  lexu Mar 20 '10 at 15:59
    
@Adam: If you don't have two names with the same IP, how come the first SELECT statement in your question includes duplicate IPs? Each ID should appear with one and only one name. –  Larry Lustig Mar 20 '10 at 16:04
    
@lexu not sure exactly what's going on over there, but it does not eliminate duplicates - not for names and not for ip's. –  Adam Tal Mar 20 '10 at 17:46

Try the following:

SELECT DISTINCT(ip), name, COUNT(name) nameCnt, 
time, price, SUM(price) priceSum
FROM tablename 
WHERE time >= $yesterday AND time <$today 
GROUP BY ip, name
share|improve this answer

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