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I have a table where I can find the same paramater in subsequent rows (See Example A). I need a query to select only the rows where the value is different from the previous row (See Example B), something like

SELECT * FROM tableName WHERE Par(id)!=Par(id-1)

It shouldn't be difficult but I'm new to MySQL (and databases in general) and I haven't found an command or an example for this. Any suggestion is warmly appreciated

Regards,

Andrew

Example A       Example B
*********       *********
*ID *Par*       **ID*Par*
*********       *********
*1  * a *       *5  * a *
*2  * a *       *6  * g *
*3  * a *       *7  * f *
*4  * a *       *8  * d *
*5  * a *       *9  * f *
*6  * g *       *10 * h *
*7  * f *       *11 * j *
*8  * d *       *12 * f *
*9  * f *       *17 * f *
*10 * h *       *18 * d *
*11 * j *       *19 * s *
*12 * f *       *20 * g *
*13 * f *       *21 * t *
*14 * f *       *22 * g *
*15 * f *
*16 * f *
*17 * f *
*18 * d *
*19 * s *
*20 * g *
*21 * t *
*22 * g *
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2 Answers 2

up vote 3 down vote accepted

Try this:

SELECT t.id,t.par FROM your_table t
WHERE t.par <> 
    (SELECT par FROM your_table
     WHERE id = t.id + 1)
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1  
@Andrew: leo.vingi solution was wrong for your needs and, according to your examples, it doesn't work!! So, if that is good, your examples are not!! I simply don't understand... –  Marco Oct 21 '11 at 13:22
    
the problem described here is a simplification of a larger problem. I described in more detail here stackoverflow.com/questions/7848063/…, still a simplification. Your solution is working, and thank you for your effort, but it's difficult to extend it to the largest problem, because it takes too long to run! Relatively to this example, what I want to remove are the rows 1-4 and 12-16 (or 2-5 and 13-17). The command DISTINCT does this, but finally I used "GROUP BY". I will update the questions with the working code. Thanks –  Andrew Strathclyde Oct 21 '11 at 13:56
    
@AndrewStrathclyde: I understand and respect your decision. Anyway when you post a question you get answers for that question, not for others. Leo solution is absolutely wrong and is misleading for people coming here to learn something!! You shouldn't accept wrong answers, that's all. –  Marco Oct 21 '11 at 13:59
    
that answer solve the problem, I'm wondering if maybe you have seen something else in the random letters that I used in the example (so that you were trying to catch a recurrence that was there by chance - when you said "look at example B with letter G). For the problem of the type of question, I tried to generalise the problem in order to make the answer easier and more useful, and I didn't wanted people to write the code for me. In future I will try to give more details to avoid this problems. –  Andrew Strathclyde Oct 21 '11 at 14:12
    
@AndrewStrathclyde: if you run SELECT DISTINCT Par FROM table_name you get only one "g" while there should be 3 (6, 20, 22), you get only one "f" while there should be 3 (7, 9, 12), you get only one "d" while there should be 2 (8, 18). Do you think that that query works for the question select rows where a parameter value depends on the value that it has in a diferent row? No, it does not. I'm sorry, but I can't really understand your point of view. I don't mind my "accepted answer" went away, but I do care that solution provided is wrong, definitely wrong, absolutely wrong for your questi –  Marco Oct 21 '11 at 14:17

SELECT DISTINCT Par FROM table_name

http://www.w3schools.com/sql/sql_distinct.asp

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2  
Absolutely wrong: look at Example B with letter G!! –  Marco Oct 20 '11 at 16:34
    
I appreciate it :) –  leo.vingi Oct 21 '11 at 13:28
1  
@AndrewStrathclyde can you explain your solution/tweak because this answer doesn't answer your question as your example result set has duplicates in it. –  Ben Swinburne Oct 21 '11 at 13:30
    
@BenSwinburne: you too think this is wrong, I feel better. Thanks –  Marco Oct 21 '11 at 13:37
1  
@AndrewStrathclyde Indeed, example 2 has multiple, g, f, d, s in it... DISTINCT alone will not produce this result –  Ben Swinburne Oct 21 '11 at 13:55

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