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I have a long string like this

dim LongString as String = "123abc456def789ghi"

And I want to split it into a string array. Each element of the array should be in 3 characters length

For example,

Dim LongArray(5) As String
LongArray(0)  = "123"
LongArray(1)  = "abc"
LongArray(2)  = "456"
LongArray(3)  = "def"
LongArray(4)  = "789"
LongArray(5)  = "ghi"

How do I split it using VB.net code?

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1  
What should happen if the string length is not a multiple of 3? –  Jon Skeet Sep 11 '11 at 7:54
    
    
@Jon Skeet: It is always of multiple of 3 –  Yoga Fire Sep 11 '11 at 7:57
    
@BlackJack: I have tried it. But what is the delimiter value for my case? –  Yoga Fire Sep 11 '11 at 7:58
    
Possible duplicate of stackoverflow.com/questions/1450774/… –  Paolo Moretti Sep 11 '11 at 8:06

6 Answers 6

up vote 2 down vote accepted

This could work.

 Module Module1

    Sub Main()
        Dim LongString As String = "123abc456def789ghi"
        Dim longlist As New List(Of String)
        For i As Integer = 0 To Convert.ToInt32(LongString.Length / 3) - 1
            longlist.Add(LongString.Substring(i * 3, 3))
        Next
        For Each s As String In longlist
            Console.WriteLine(s)
        Next
        Console.ReadLine()
    End Sub

End Module

And this should work in .Net 1.1

Module Module1

    Sub Main()
        Dim LongString As String = "123abc456def789ghi"
        Dim longlist(Convert.ToInt32(LongString.Length / 3) - 1) As String
        For i As Integer = 0 To Convert.ToInt32(LongString.Length / 3) - 1
            longlist(i) = (LongString.Substring(i * 3, 3))
        Next
        For i As Integer = 0 To Convert.ToInt32(LongString.Length / 3) - 1
            Console.WriteLine(longlist(i))
        Next
        Console.ReadLine()
    End Sub

End Module
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thanks for answer! –  Yoga Fire Sep 11 '11 at 8:24

You could use LINQ like so:


' VB.NET
Dim str = "123abc456def789ghij"
Dim len = 3
Dim arr = Enumerable.Range(0, str.Length / len).Select (Function(x) str.Substring(x * len, len)).ToArray()


// C#
var str = "123abc456def789ghij";
var len = 3;
var arr = Enumerable.Range(0, str.Length / len).Select (x => str.Substring(x * len, len)).ToArray();

Note this will only take complete occurrences of length (i.e. 3 sets in a string 10 characters long).

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Thanks for the answer, but LINQ is not supported for .Net v1.1 –  Yoga Fire Sep 11 '11 at 8:03
4  
@Yoga Perhaps you should have written you were still using ancient instruments! –  xanatos Sep 11 '11 at 8:06
    
@xanatos in his defense it has a .net1.1 tag to the question. –  chrissie1 Sep 11 '11 at 8:09
    
@chrissie1: Only since xanatos added it. –  Jon Skeet Sep 11 '11 at 8:13

This C# code should work:

public static string[] SplitByLength(string text, int length)
{
    // According to your comments these checks aren't necessary, but
    // I think they're good practice...
    if (text == null)
    {
        throw new ArgumentNullException("text");
    }
    if (length <= 0)
    {
        throw new ArgumentOutOfRangeException("length");
    }
    if (text.Length % length != 0)
    {
        throw new ArgumentException
            ("Text length is not a multiple of the split length");
    }
    string[] ret = new string[text.Length / length];
    for (int i = 0; i < ret.Length; i++)
    {
        ret[i] = text.Substring(i * length, length);
    }
    return ret;
}

Reflector converts that to VB as:

Public Shared Function SplitByLength(ByVal [text] As String, _
                                      ByVal length As Integer) As String()
    ' Argument validation elided
    Dim strArray As String() = New String(([text].Length \ length)  - 1) {}
    Dim i As Integer
    For i = 0 To ret.Length - 1
        strArray(i) = [text].Substring((i * length), length)
    Next i
    Return strArray
End Function

It's possible that that isn't idiomatic VB, which is why I've included the C# as well.

share|improve this answer
    
thanks for answer! –  Yoga Fire Sep 11 '11 at 8:24
    
@Jon Why is reflector convertin integer division to non-integer (VB.NET) divisions? Shouldn't it convert \ to /? It doesn't know the prereq that the number are always divisible by 3. –  xanatos Sep 11 '11 at 9:00
    
@xanatos: Possibly - I'm not a VB person... will edit. –  Jon Skeet Sep 11 '11 at 9:03
    
@Jon Told by one of the four persons with the gold badge of VB.NET :-) It was more a question of "is this a bug of the reflector or what" –  xanatos Sep 11 '11 at 9:10

I'm splitting the string by 35.

var tempstore ="12345678901234567890123456789012345";

for (int k = 0; k < tempstore.Length; k += 35) {
    PMSIMTRequest.Append(tempstore.Substring(k,
      tempstore.Length - k > 35 ? 35 : tempstore.Length - k));
    PMSIMTRequest.Append(System.Environment.NewLine);
}

messagebox.Show(PMSIMTRequest.tostring());
share|improve this answer
Dim LongString As String = "1234567"

Dim LongArray((LongString.Length + 2) \ 3 - 1) As String

For i As Integer = 0 To LongString.Length - 1 Step 3
    LongArray(i \ 3) = IF (i + 3 < LongString.Length, LongString.Substring(i, 3), LongString.Substring(i, LongString.Length - i))           
Next

For Each s As String In LongArray
    Console.WriteLine(s)
Next

There are some interesting parts, the use of the \ integer division (that is always rounded down), the fact that in VB.NET you have to tell to DIM the maximum element of the array (so the length of the array is +1) (this is funny only for C# programmers) (and it's solved by the -1 in the dim), the "+ 2" addition (I need to round UP the division by 3, so I simply add 2 to the dividend, I could have used a ternary operator and the modulus, and in the first test I did it), and the use of the ternary operator IF() in getting the substring.

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thanks for answer! –  Yoga Fire Sep 11 '11 at 8:25

Last array is missing:

Public Function SplitByLength(ByVal text As String, _
                                  ByVal length As Integer) As String()

  ' Argument validation elided
  Dim strArray As String() = New String((text.Length \ length)  - 1) {}
  Dim i As Integer
  For i = 0 To text.Length - 1
      strArray(i) = text.Substring((i * length), length)
  Next i

  ' Get last array:
  ReDim Preserve strArray(i)
  strArray(i) = text.Substring(i * length)
  Return strArray
End Function
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