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My Database :

+---------+-----------+---------------+-------------------+---------------+-----------------+--------------------+
| KlantId | KlantNaam | KlantVoornaam | KlantAdres        | KlantPostcode | KlantWoonplaats | KlantGeboorteDatum |
+---------+-----------+---------------+-------------------+---------------+-----------------+--------------------+
|       1 | Vervoort  | Dieter        | Grootstraat 1     |          3500 | Hasselt         | 1/01/1991          |
|       2 | Droogmans | Jos           | Kleine Laan 2     |          3500 | Hasselt         | 5/05/1999          |
|       3 | Severijns | Sarah         | Brede Weg 3       |          3570 | Alken           | 28/02/1972         |
|       4 | Peeters   | Piet          | Rondplein 4       |          3600 | Genk            | 6/08/1973          |
|       5 | Vreemans  | Veerle        | Lange Boulevard 5 |          3500 | Hasselt         | 4/04/1980          |
+---------+-----------+---------------+-------------------+---------------+-----------------+--------------------+

My code where I read it :

try {

    System.out.println("De klanten zijn:");
    if (!rs.relative(1)) {
        rs.first(); 
    } 
    System.out.println("Naam en voornaam: " + rs.getString("KlantVoornaam") + " " + rs.getString("KlantNaam"));
    ShowMenu();

    con.close();
} catch (SQLException e) {
    System.out.println(e.getMessage());
    System.exit(0);
}

For some odd reason rs.relative(1) returns false on the 4th record ("Peeters Piet") while there is still one left ("Vreemans Veerle") and so it returns to the first record.

Is this a mistake in rs.relative() or in my code?

I know that I could do this with

if (!rs.next()) {
     rs.first(); 
} 

But I'm wondering why rs.relative(1) doesn't do the same job.

share|improve this question
    
Does your query have any WHERE condition? – Pablo May 26 '14 at 7:51
    
@PabloLozano No, and using rs.next() returns the right records, so I don't think it's my query. – Boyen May 26 '14 at 7:53
up vote 1 down vote accepted

API documentation explicity says:

Note: Calling the method relative(1) is identical to calling the method next() and calling the method relative(-1) is identical to calling the method previous().

So I don't think it should be any difference. Try to debug it, or just add getRow() values in a System.out.println before calling relative(1) to check in which line you are.

EDIT: Looking your code I cannot figure out why is failing, but be aware that ShowMenu should not be called by the rest of the methods: you are chaining calls in the stack.It's very hard to produce it manually, but enough user interactions could crash the application. A better way to do that is having a loop in showMenu(), which would be broken when user press 5.

SOLUTION: You're right, the issue is the mySQL implementation of ResultSet. Check this API doc, where mySQL code says EXACTLY THE OPPOSITE as we expected (Current version of the driver renamed this class to com.mysql.jdbc.ResultSetImpl, but the comment remains there):

Note: Calling relative(1) is different than calling next() since is makes sense to call next() when there is no current row, for example, when the cursor is positioned before the first row or after the last row of the result set.

And method names should start with lowercase (following Java conventions makes code more readable for others ;) )

share|improve this answer
    
pastebin.com/eksA2bV3 , I have some translations at the top, that's my entire code, it shows a printStream menu, chooses an action, and then shows the printstream menu again (Sort of a loop) – Boyen May 26 '14 at 8:03
    
Also, the api you found is probably for javax.xml.xquery , and not for java.sql.ResultSet; EDIT: My mistake , the api does indeed say that – Boyen May 26 '14 at 8:05
    
I updated my post: not a solution but some advice – Pablo May 26 '14 at 8:47
    
Thanks, it's honestly more starting to feel like a java error/api mistake more than an error in my code – Boyen May 26 '14 at 9:41
    
We can try to check that part: ResultSet is an interface. Check what the real class of your ResultSet is and maybe its code can be examined (if it's a open source implementation) – Pablo May 26 '14 at 10:32

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