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I have a query like this, program is in java

      String querystring1= "SELECT rlink_id, COUNT(*)"
                        + "FROM dbo.Locate  "
                        + "GROUP BY rlink_id ";

Giving me the following output

     Sid        lid
     3           2
     4           4
     7           3
     9            1

Means that sid 3 has 2 child lid. When I go to print this its taking only first values of resultset to every lid. How do I extract each child lid’s? Iam storing these values into array how do I increment this string array so that I need to call this string array as string variable somewhwere in the program

     String  show[]= {rs4.getString(1)};
     String actuate[]={rs4.getString(2)};
     asString = Arrays.toString(actuate) ;

am printing these values like this

     for(i=0;i<sicount;i++) {
        child1.setAttributeNS(xlink, "xlink:actuate", asString);
     }

here asString giving me only first row values for all child lids. But I need to extract each n every child lid s allotted for sid s.

share|improve this question
    
We have no idea what these "child lid" values are - but you're only selecting the rlink_id and the count, so you're not going to be able to get any more information from the query you've got... –  Jon Skeet Oct 4 '11 at 5:27
    
the how can i query that i should get child lidvalues also –  user977830 Oct 4 '11 at 5:29
    
I've no idea, as you haven't described your table or the relations... please read tinyurl.com/so-hints –  Jon Skeet Oct 4 '11 at 5:30

3 Answers 3

Result Set are actually contains multiple rows of data, and use a cursor to point out current position. So in your case, rs4.getString(1) only get you the data in first column of first row. In order to change to next row, you need to call next()

a quick example

while (rs.next()) {
    String sid = rs.getString(1);
    String lid = rs.getString(2);
    // Do whatever you want to do with these 2 values
}

there are many useful method in ResultSet, you should take a look :)

share|improve this answer
    
when i call this sid n lid somewhere through loop its giving me only first row of values –  user977830 Oct 4 '11 at 5:34
    
Doesn't the rs.next() in the while loop skip the first result? –  Durin Mar 25 '13 at 14:06
    
@Durin : Check javadoc of ResultSet.next() , the "cursor" is actually point before the first row when it is created :) –  Rangi Lin Mar 25 '13 at 15:13
List<String> sids = new ArrayList<String>();
List<String> lids = new ArrayList<String>();
while (rs4.next()) {
    sids.add(rs4.getString(1));
    lids.add(rs4.getString(2));
}
String show[] = sids.toArray(sids.size());
String actuate[] = lids.toArray(lids.size());
share|improve this answer

The problem with your code is :

     String  show[]= {rs4.getString(1)};
     String actuate[]={rs4.getString(2)};

This will create a new array every time your loop (an not append as you might be assuming) and hence in the end you will have only one element per array.

Here is one more way to solve this :

    StringBuilder sids = new StringBuilder ();
    StringBuilder lids = new StringBuilder ();

    while (rs4.next()) {
        sids.append(rs4.getString(1)).append(" ");
        lids.append(rs4.getString(2)).append(" ");
    }

    String show[] = sids.toString().split(" "); 
    String actuate[] = lids.toString().split(" ");

These arrays will have all the required element.

share|improve this answer
    
This is a strangest way of crating arrays I've ever seen. Moreover, what if one of strings you get contains a space? –  Piotr Gwiazda Oct 4 '11 at 6:36
    
Any reason for downvote ? –  Santosh Oct 4 '11 at 6:37
    
OP is storing an int and not a string. So there wont be any space for sure. Its just another way to create an array apart from the ways suggested by other people. –  Santosh Oct 4 '11 at 6:38
    
Ok, this time it will work. For me it's like an anti-pattern. Programmers should unlearn bad patterns, and learn good patterns before it'll lead to critical system crash. I've seen this many times (unfortunately). –  Piotr Gwiazda Oct 4 '11 at 6:46
    
@peperg, the problem here was to create an array out of ResultSet and you would agree that there are multiple ways to accomplish it. I don't know what makes you see an anti-pattern in this. –  Santosh Oct 4 '11 at 7:08

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