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this should be easy, but it's not :(

I have a table with a bunch of different feature Ids.

What I need is to build a way to say:

"show me all pet stores that have puppies, kittens, mice, or fish" (at least one)

That's the easy part.

What I'm stuck at is...

"show me all pet stores that have puppies for sure, but maybe also kittens, mice or fish"

Any ideas? :)

Thanks guys!

Edit:

I posted this question on another site, but didn't get an answer, I'll post it here. This is my original question, please consider the above also:

+------------------+----------+---------+

¦ Column1 ¦ Column2 ¦ Active ¦

+------------------+----------+---------+

¦ blue widgets ¦ 14 ¦ y ¦

¦ red ¦ 14 ¦ y ¦

¦ redx ¦ 15 ¦ y ¦

¦ blues ¦ 14 ¦ y ¦

¦ blue ¦ 15 ¦ n ¦

¦ bluesX ¦ 15 ¦ n ¦

¦ widgets ¦ 14 ¦ n ¦

+------------------+----------+---------+

Here is my drama... I need to query this:

where (Column2 = 14 AND Column2 = 15) and active = 'y'

I a result set that has all records where there is active = 'y' for both Column2=14 and Column2=15

I can't figure this out...

I can do it so it returns me 14 and 15 with at least one of them as y, but not both.

I tried:

select * from table where (Column2 = 14 and Column2 = 15) and active = 'y'

Of course, this returns nothing, since both can't be 14 and 15 at the same time.

So I tried:

select * from table where ((Column2 = 14 or Column2 = 15) and active = 'y')

And this returns a result set, but not what I want...

I need to only return results in column1 that have:

column2 = 14 and active = 'y' column2 = 15 and active = 'y'

both conditions must be true.

Any help? thanks guys!

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1  
Could you give a little more detail on what the table structure is? Are the various pets stored in a separate table with an associative table, or is there something else? –  nilamo Aug 28 '09 at 6:13
1  
If you post the table structures, it will be easier for someone to give you an example query :) –  Andy White Aug 28 '09 at 6:13
    
Please post table defs; without knowing the database structure it's hard to help you –  Martijn Aug 28 '09 at 6:13
1  
The behavior for "maybe" doesn't seem well defined. In their DB representation, stores either will have given pets or won't have them. What do you mean by "stores that maybe have kittens, mice or fish"? –  outis Aug 28 '09 at 6:17
    
Added more info... thanks –  SunMaid Raisin Aug 28 '09 at 6:36
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6 Answers

I'm also reluctant to give out the answer, but I'll give you some hints.

Suppose the rows you're interested in are like this:

col1 col2 active
 red  14   y
 red  15   y

Then you want the color such that some row has 14 & y, and some other row has 15 & y.
And of course the color on both rows must be equal to each other.

The answer is related to this principle:

Any SQL expression references only one row at a time.

You can use a JOIN to combine one row with another row, and the result is one new row that has twice as many columns and exists ephemerally as the query is being executed (i.e. it's not stored anywhere). Since it's now one row, you can use write SQL expressions to compare columns that exist on separate rows in the source table.

Another concept that is important for using joins: table aliases.

Does that give you enough to go on?


Okay, yes I was reluctant because the question was tagged homework. But it isn't any more.

Here's what I mean:

SELECT DISTINCT col1
FROM mytable t1 JOIN mytable t2
 ON (t1.col1 = t2.col1)              -- i.e. they are both red
WHERE t1.col2 = 14 AND t1.active = 'y'
 AND  t2.col2 = 15 AND t2.active = 'y';

Once you do the join, you have columns from both tables on the same row (at least in the result set being formed, not in storage). So you can write an expression referencing columns from both rows of the base table.

share|improve this answer
    
Nice, I didn't think of the JOIN option, but of grouping with a having clause (although this will probably result in poor performance). –  Martijn Aug 28 '09 at 7:11
    
Bill, why are you reluctant to give out the answer? Help me out here... Thanks! –  SunMaid Raisin Aug 28 '09 at 7:21
    
Probably because the question is (was) tagged homework. –  Martijn Aug 28 '09 at 7:28
    
I'm 32 years old, I don't have homework... I have office work :) –  SunMaid Raisin Aug 28 '09 at 7:31
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This is simple:

SELECT * FROM table 
WHERE (Column2 = 14 AND active = 'y') OR (Column2 = 15 AND active = 'y')
share|improve this answer
    
+1, that's the correct solution. Should work for you SunMaid. –  Mr. Smith Aug 28 '09 at 6:44
    
I'm not sure. It sure works, but I think SunMaid is after something else: the values of Column1 such that there is a row where (Column2 = 14 AND active 'y') holds and another row where (Column2 = 15 AND active 'y') holds –  Martijn Aug 28 '09 at 6:57
    
Michael, thanks, this answers my edit, but not the original. Let's say there was an extra value in column2, say "16". How can I return all color widgets that have the value of 16, and also "maybe" have the value of 14 or 15. They must have 16 though, and any of the other combinations.... –  SunMaid Raisin Aug 28 '09 at 7:05
    
"Maybe" is still a poor word choice. Say rather you want all color widgets with a column2 of 16 and at least one of 14, 15. In the pet store scenario, all stores that sell puppies and at least one of kittens, mice or fish. –  outis Aug 28 '09 at 7:15
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Assuming your table def is

id, pet_store_name, pet_type


select distinct   
     pet_store_name
from 
     pet_store
where    
     pet_type = 'puppies' AND
     pet_store_name in (select pet_store_name from pet_store 
                        where pet_type in('kittens', 'mice', 'fish')
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Jaimal, This query will take a long time to execute... –  SunMaid Raisin Aug 28 '09 at 7:06
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You could do something like this:

select
    pet_store_name
from pet_store
where
    pet_type = 'puppies' or
    (pet_type in ('kittens', 'mice', 'fish'))

*Edit: See Michael's answer.

share|improve this answer
    
Boekwurm, that looks like it should work... if that's the case would it always return pet_type = "puppies" and then one of the other 3? –  SunMaid Raisin Aug 28 '09 at 6:21
    
That's a good question, I can't really tell you since I don't know what your actual table structure looks, other tables involved, etc. Can you please update your question to show the structure you're using and perhaps a sampe of the data itself? –  Mr. Smith Aug 28 '09 at 6:23
    
Careful, don't give away the answer. This is a homework question, after all. –  outis Aug 28 '09 at 6:27
    
Tried this and it doesnt work. if I use the "or" it just returns all records in the table. If I use "and" it returns nothing. No, this isn't a homework question, I am making it easier to understand. I'll try and post the table structre, but im new to this site, and not sure how to edit my question... maybe I'll start a new one.... thanks –  SunMaid Raisin Aug 28 '09 at 6:32
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Referring to your table, you are probably looking for something like:

SELECT DISTINCT t1.col1 FROM table t1 INNER JOIN table t2 ON t1.col1 = t2.col1 AND t1.col2 = 'puppies' AND t2.col2 IN ('mice','fish','reptiles')

You will probably want to denormalize your table and reorganize the data if this is a common query.

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This doesn't work... it returns records that have all 4. –  SunMaid Raisin Aug 29 '09 at 2:38
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Sorry, your question is still ill-defined: you say you want to select rows which have both column2 = 14 and column2 = 15. Simple: none exist, column two has at most one value (and might be null).

Since the question is tagged homework, I'm not going to just give you the answer. First of all, aks yourself a uniqueness question: is it possible that there are multiple rows with column1 = 'red' and column2 = '14'? If not, than you just need to count how many of the requirements "column2 = 'some value'" are met, and select only those where this number is the full number of requirements.

If this is the case, try

SELECT
  Column1,
  SUM(Column2 IN (14, 15)) AS NumberOfRequirementsMet
FROM table
WHERE Active = 'y'
GROUP BY Column1
HAVING NumberOfRequirementsMet = 2;
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