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I am a mySQL newbie doing a small project. I will try my best to describe the problem in its entirety so that the pros out here can help me out not only on the code but also the concept. I have never done sql before but have programmed in Python, Matlab, etc. (the procedural environments). Without further ado,

The following code is awfully slow and the if statement

if (carts.staffId ='', 'UNASSISTED', 'ASSITED') as EXPERIENCE

does not work since it comes out as always UNASSISTED. Any idea why it doesn't work?

Here is the code

select  
    Impressions.session_id,
    sum(if(Impressions.impressionAction = 'SENDMAIL', 1, 0)) as EMAIL, 
    count(if(Impressions.impressionAction = 'TAPPED', 1, NULL)) as SCANS,
    TIMESTAMPDIFF(SECOND, min(Impressions.createDate), max(Impressions.createDate)) AS Duration,

    if (carts.staffId ='', 'UNASSISTED', 'ASSITED') as EXPERIENCE
    from Impressions, carts
    where Impressions.session_id in (select carts.session_id from carts where carts.session_id <> '' )
    group by Impressions.session_id;

The column staffId exists in the table called carts. All I wanted was to extract an output from a condition on staffId in carts to be added to the list of columns from the table Impressions

Essentially, I am trying to add a column from the subquery and tack it at the end of the main columns from the main query

UPDATE: I broke the problem into two pieces and here is how the code looks like. Essentially a UNION between the two outputs creates the final output needed. I just need it in one go:

/***********************ASSISTED*******************************/
select  session_id,
    sum(if(impressionAction = 'SENDMAIL', 1, 0)) as EMAIL, 
    count(if(impressionAction = 'TAPPED', 1, NULL)) as SCANS,
    TIMESTAMPDIFF(SECOND, min(createDate), max(createDate)) AS Duration
from Impressions
where session_id in 
    (select session_id
    from carts 
    where session_id <> '' AND staffId <> '' AND staffId <>'ollie' AND staffId<> 'Laura')
        AND createDate >= '2014-06-23'AND createDate < '2014-06-30'
        AND HOUR(createDate) >= 10 AND HOUR(createDate) < 21
        AND impressionId NOT LIKE '%made.com' AND impressionId NOT LIKE '%cloudtags.com%'
group by session_id;



/***************************UNASSISTED***********************/
...everything is same...
    where session_id <> '' AND staffId = '' OR staffId ='ollie' OR staffId= 'Laura' )
...;

2ND UPDATE There is one more constraint that I forgot to mention within the ASSISTTED vs UNASSISTED case. In addition to filtering out the ones here, I will also need to filter out productId = 1902 from the table products that has a cartID associated with it.

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2 Answers 2

up vote 1 down vote accepted

You've got a CROSS JOIN operation between Impressions and carts. (Yes, your query is doing a JOIN operation, it's just using using old school comma syntax to specify the JOIN operation.)

And it's a CROSS JOIN because there's no predicate that "matches" rows between the two tables; every row from Impressions is being matching to every row in carts.

You've got a GROUP BY clause that collapses all the "matched" rows from carts to a single row; MySQL picks the values from just a single row in carts. And it's choosing the exact same row from carts for every row in Impressions.

It looks like you'd want to "match" rows in carts with rows in Impressions using the values in the session_id column.

Something like this:

SELECT i.session_id
     , SUM(IF(i.impressionAction = 'SENDMAIL', 1, 0)) AS EMAIL
     , COUNT(IF(i.impressionAction = 'TAPPED', 1, NULL)) AS SCANS
     , TIMESTAMPDIFF(SECOND, MIN(i.createDate), MAX(i.createDate)) AS Duration
     , MIN(IF(c.staffId = '', 'UNASSISTED', 'ASSISTED')) AS EXPERIENCE
 FROM Impressions i
 JOIN carts c
   ON c.session_id = i.session_id
  AND c.session_id <> ''
GROUP
   BY i.session_id

If there are multiple rows from carts with the same matching session_id. MySQL is going to choose just a single row, and evaluate the IF(c.staff_id expression. (Or, will evaluate that expression for each row, and choose one of the resulting values to return.

That IF expression is testing that staff_id is equal to a zero length string (if staff_id is numeric, then the literal '' will be evaluated as numeric value of 0... but we're only guessing at the actual datatype of staff_id.) If staff_id on that row has a value of NULL, that will not equal the empty string.

I suspect (but not knowing your use case, so its just a guess) that if any carts related to the session_id had staff_id entered, that the session is considered "assisted", you'd want to return "ASSISTED". That is, you'd want to return "UNASSISTED" only if none of the carts had staff_id populated. To get that, I'd wrap that IF expression in a MIN() aggregate function.


EDIT

Based on the queries added to the question, I would do something like this:

SELECT i.session_id
     , SUM(IF(i.impressionAction = 'SENDMAIL', 1, 0)) AS EMAIL
     , COUNT(IF(i.impressionAction = 'TAPPED', 1, NULL)) AS SCANS
     , TIMESTAMPDIFF(SECOND, MIN(i.createDate), MAX(i.createDate)) AS Duration
     , MIN(IF(c.staffId IN ('','ollie','Laura'), 'UNASSISTED', 'ASSISTED')) AS EXPERIENCE
  FROM Impressions i
  JOIN carts c
    ON c.session_id <> ''
   AND c.session_id = i.session_id 
 WHERE i.createDate >= '2014-06-23'
   AND i.createDate < '2014-06-30'
   AND HOUR(i.createDate) >= 10
   AND HOUR(i.createDate) < 21
   AND i.impressionId NOT LIKE '%made.com'
   AND i.impressionId NOT LIKE '%cloudtags.com%'
 GROUP 
    BY i.session_id;

Note that if the staff_id column has a NULL value, the IF expression will return "ASSISTED", because NULL will not equal any of the listed values. To flip that around, so that a NULL would be considered UNASSISTED, we could use a NOT IN

     , MIN(IF(c.staffId NOT IN ('','ollie','Laura'), 'ASSISTED', 'UNASSISTED')) AS EXPERIENCE

Also, the query will not return any rows from Impressions if there is not a(t least one) corresponding row in carts.

We could specify an OUTER JOIN if we wanted to return rows from Impressions even when there is no matching row in carts. We'd specify that by adding the keyword LEFT before the JOIN keyword. Note that if we do add the outer join, then staff_id column will be NULL whenever a matching row is not found in carts. (We just want to be sure we handle the potential NULL value appropriately in the IF expression.)

FOLLOWUP NOTES

We'd only need a LEFT [OUTER] JOIN if we wanted to return a row from Impressions that has a session_id doesn't appear in any rows in carts.

If we always have a row in carts for every session_id that appears in Impressions, you an [INNER] JOIN is sufficient A LEFT JOIN operation says return rows from the table/rowsource on the "left" side of the join, even if a matching row is not found in the table/rowsoruce on the "right" side. The order of the tables really only matters in terms of a LEFT|RIGHT [OUTER] JOIN, in terms of which table should be on the "left" side. With an [INNER] JOIN, the order of the tables doesn't affect the resultset.

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This is awesome! Let me try this out and see if it works. Thank you so much for the detailed explanation. It really helped me understand the motivation and heuristics. For instance, I didn't know what you could JOIN on two things. I am used to working in SAS and doing things in data steps and then doing a merge. SQL is a slightly different way of thinking. Can you explain the NOT IN part again? I am not sure I understood the flipping part. Also why is there a MIN before the IF? I recognize simply giving the IFdoesn't work. Thanks again! –  eager_learner313 Jul 4 '14 at 18:46
    
Also, if you can direct me to some useful resources on getting the intuition behind JOINs, I will be grateful. I learn best through actual examples and short exercises. Most of the resources out there don't do a good job of pumping intuition. –  eager_learner313 Jul 4 '14 at 20:08
    
If there happen to be two rows in carts for a given session_id, then it's possible that one cart will be "ASSISTED" and other "UNASSISTED"; because of the GROUP BY, MySQL will choose one of those to return. I added MIN() aggregate to make the result deterministic, in this case, to ensure that "ASSISTED" would be the value returned. The query would work fine (in MySQL, but not other DBMS) without the MIN() aggregate function; we just would leave it up to MySQL to decide which row from carts is returned (when there is more than one row in carts for a given session_id. –  spencer7593 Jul 4 '14 at 22:45
    
The bit about the NOT IN, that was only about handling the case when c.staffId is NULL (your question doesn't indicate that we are guranteed that staffId will be non-NULL.) So, the question is, if staffId is NULL, should we return "ASSISTED" or "UNASSISTED". With the change (to use NOT IN instead of IN), that just an easy way to return "UNASSISTED" when staffId is NULL. –  spencer7593 Jul 4 '14 at 22:55
    
So we are using LEFT JOINhere correct? Impressions table has multiple lines per session_id but carts have 1 line per session_id. Should we join carts on impressions then? Does the order matter? Why? –  eager_learner313 Jul 4 '14 at 23:00

You need a LEFT JOIN, and carts.staffId will be null when there is no match.

select  
    Impressions.session_id,
    sum(if(Impressions.impressionAction = 'SENDMAIL', 1, 0)) as EMAIL, 
    count(if(Impressions.impressionAction = 'TAPPED', 1, NULL)) as SCANS,
    TIMESTAMPDIFF(SECOND, min(Impressions.createDate), max(Impressions.createDate)) AS Duration,

    if (carts.staffId is null, 'UNASSISTED', 'ASSITED') as EXPERIENCE
from Impressions
left join carts on Impressions.session_id = carts.session_id
group by Impressions.session_id;

You can query part 2 with inner join, and move the experience logic to an if function.

select  session_id,
    sum(if(impressionAction = 'SENDMAIL', 1, 0)) as EMAIL, 
    count(if(impressionAction = 'TAPPED', 1, NULL)) as SCANS,
    TIMESTAMPDIFF(SECOND, min(createDate), max(createDate)) AS Duration,
    if(b.staffId in ('', 'ollie', 'Laura'), 'UNASSISTED', 'ASSISTED') EXPERIENCE
from Impressions
where session_id a
join carts b on a.session_id = b.session_id
where a.session_id <> '' AND b.createDate >= '2014-06-23'AND b.createDate < '2014-06-30'
    AND HOUR(b.createDate) >= 10 AND HOUR(b.createDate) < 21
    AND b.impressionId NOT LIKE '%made.com' AND b.impressionId NOT LIKE '%cloudtags.com%'
group by a.session_id;
share|improve this answer
    
Help me out by explaining the thought process please. I haven't used JOINS yet. Also did you run this? Does it solve the IF statement problem I mentioned. Thanks in advance! –  eager_learner313 Jul 4 '14 at 0:10
    
I need some sample data to test it. can you create a [sqlfiddle](sqlfiddle.com)? –  Fabricator Jul 4 '14 at 0:14
    
Let me get to work on that. I have never done a sql fiddle. I ran the code and it runs on my end. However, here is what I did in the meantime. Essentially the union of these two pieces should yield the same result as yours if correct. How would you modify your code to suit the changes (esp the where clauses)? –  eager_learner313 Jul 4 '14 at 0:28
    
Character limit reached; please see edit on my initial question. –  eager_learner313 Jul 4 '14 at 0:29

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