Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

My LINQ query:

Dim groupedData = (From p In pData _
                   Group By p.TruncParam Into Group) _
                  .SelectMany(Function(g) g.Group) _
                  .Select(Function(d, idx) New With { _
                      .NewParameter = String.Concat(If(d.TruncParam.Length < 5, d.TruncParam, d.TruncParam.Substring(0, 5)), idx.ToString("0000")), _
                      .FullParameter = String.Format("{0}-{1} [{2}] <{3}>", d.LabName, d.TestName, d.Parameter, d.Unit)})

Produces these results:

ID: SOLUB0000  Name: 001-AMT SOLUBL  [SOLUBLES]       <%>
ID: SOLUB0001  Name: CHEM-C4:SOL     [SOLUBLES]       <%>
ID: INSOL0003  Name: 001-AMT:INSOL   [INSOLUBLES]     <%>
ID: INSOL0005  Name: CHEM-W:INSOL    [INSOLUBLES]     <%>
ID: INSOL0006  Name: CHEM-W:INSOL    [INSOLUBLES]     <mg/l>
ID: CLRES0007  Name: 001-CL RESIDUE  [CL RESIDUE]     <ppm>
ID: SUMCA0008  Name: 001-ELEMENTS    [SUM CA K NA SI] <%>
ID: SUMME0009  Name: 001-ELEMENTS    [SUM METALS + P] <%>

When the TruncParam changes, I would like the index (idx) in the Select clause to reset to 1. So, in the list above, the Index should be SOLUB0001, SOLUB0002, INSOL0001, INSOL0002...CLRES0001, SUMCA0001, SUME0001.

How should I alter the LINQ query?

share|improve this question

1 Answer 1

up vote 1 down vote accepted

You need to move the index selection inside the SelectMany statement (g.Group.Select(d, idx) => new {d, idx}) like this:

Dim groupedData = (From p In pData _
                   Group By p.TruncParam Into Group) _
    .SelectMany(Function(g) g.Group.Select(Function(d, idx) New With { _
        .Element = d, .Index = idx}) _
    .Select(Function(d) New With { _
        .NewParameter = String.Concat(If(d.Element.TruncParam.Length < 5, d.Element.TruncParam, d.Element.TruncParam.Substring(0, 5)), d.Index.ToString("0000")), _
        .FullParameter = String.Format("{0}-{1} [{2}] <{3}>", d.Element.LabName, d.Element.TestName, d.Element.Parameter, d.Element.Unit)})
share|improve this answer
Thanks, @Alex, that did it. – blueshift Mar 14 '12 at 2:00

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.