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I have a table that stores items with two properties. So the table has three columns:

 item_id  |  property_1  |  property_2  |  insert_time
  1       |   10         |  100         |  2012-08-24 00:00:01
  1       |   11         |  100         |  2012-08-24 00:00:02
  1       |   11         |  101         |  2012-08-24 00:00:03
  2       |   20         |  200         |  2012-08-24 00:00:04
  2       |   20         |  201         |  2012-08-24 00:00:05
  2       |   20         |  200         |  2012-08-24 00:00:06

That is, each time either property of any item changes, a new row is inserted. There is also a column storing the insertion time. Now I want to get the number of changes in property_2. For the table above, I should get

item_id  |  changes_in_property_2
 1       |    2
 2       |    3

How can I get this?

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Do you have an id column on the table, or a datetime field for each record? Just curious, otherwise is there a way to sequence the records? –  Tom Aug 24 '12 at 20:14
1  
You are going to have problems determining changes given that there is no difference between row 4 and row 6 in your example data. You will probably need to add some sort of sortable chronological information to allow fro traversal, in order, comparing previous and next values. –  ahillman3 Aug 24 '12 at 20:14
    
It will be very difficult to determine the change since row 4 and row 6 are identical. You need another column or different recording method. –  Kermit Aug 24 '12 at 20:20
    
@Tom,@ahillman3,@njk I do have a column of insertion time. I just edited my question. –  sean hawk Aug 24 '12 at 20:30
    
@seanhawk what is the key on your table? –  Kermit Aug 24 '12 at 20:41

4 Answers 4

This will tell you how many distinct values were entered. If it was changed back to a previous value, it will not be counted as a new change, though. Without a chronology to your data, hard to do much more.

select item_id, count(distinct property_2)
from Table1
group by item_id
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I do have a column of insertion time. I just edited my question. –  sean hawk Aug 24 '12 at 20:41

Here is the closest that I could get to your desired result. I should note however, that you are asking for the number of changes to property_2 based on item_id. If you are analyzing strictly those two columns, then there is only 1 change for item_id 1 and 2 changes for item_id 2. You would need to expand your result to aggregate by property_1. Hopefully, this fiddle will show you why.

SELECT a.item_id,  
  SUM(
    CASE 
      WHEN a.property_2 <> 
        (SELECT property_2 FROM tbl b 
          WHERE b.item_id = a.item_id AND b.insert_time > a.insert_time LIMIT 1) THEN 1
      ELSE 0
    END) AS changes_in_property_2
FROM tbl a
GROUP BY a.item_id
share|improve this answer

My take :

SELECT 
    i.item_id,
    SUM(CASE WHEN i.property_1 != p.property_1 THEN 1 ELSE 0 END) + 1
      AS changes_1,
    SUM(CASE WHEN i.property_2 != p.property_2 THEN 1 ELSE 0 END) + 1
      AS changes_2
FROM items i
LEFT JOIN items p
  ON p.time = 
    (SELECT MAX(q.insert_time) FROM items q 
        WHERE q.insert_time < i.insert_time AND i.item_id = q.item_id)
GROUP BY i.item_id;

There is one entry for each item that is not selected in i, the one that has no predecessor. It counts for a change though, that's why the sums are incremented.

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@Anime what is p.time referring to? What if there are no changes for an item_id? It seems that you will add 1 even if there is no change. –  Kermit Aug 27 '12 at 14:02
    
I know, it's confusing, but if you look closely at the number the OP gives, every first entry for an item is itself considered a change. As you can see he wants 2 changes for (item_1, property_2) even though there is only one leap from 100 to 101. For each entry in i, p.time refers to the insert_time of the previous entry for the same item. Thus, since we're using an inner join, entries with no predecessors will not appear, so we have to add them manually to the sum (and we know there is always exactly 1 for each item). –  Amine Aug 27 '12 at 15:18
    
I've just noticed it's better to do a LEFT JOIN in case an item has only one entry. It doesn't mess up the sums since entries with no predecessor will have p.property_1 and p.property_2 to NULL, which causes the CASE ... WHEN construct to return 0. –  Amine Aug 27 '12 at 15:24

I would do it this way, with user-defined variables to keep track of the previous row's value.

SELECT item_id, MAX(c) AS changes_in_property_2
FROM (
    SELECT IF(@i = item_id, IF(@p = property_2, @c, @c:=@c+1), @c:=1) AS c, 
        (@i:=item_id) AS item_id,
        (@p:=property_2) 
    FROM `no_one_names_their_table_in_sql_questions` AS t,
    (SELECT @i:=0, @p:=0) AS _init
    ORDER BY insert_time
) AS sub
GROUP BY item_id;
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