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I have a string e.g.

    Dim str as string = xxxxxxxxxxxxxxxxxxxx£xxx£xxxx**£**xxxxxxxxxx

I want to remove £ in the bold which is always at certain position (11th for instance) from the end. The whole string is a long one, always change in size and can't be counted from the start. Can't use Replace as well, there may be same characters at other positions that I don't wish to remove.

SOLUTION: Dim rst As String = str.Remove(str.Length - 11, 1)

Thanks.

L

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how about this one msdn.microsoft.com/en-us/library/kxbw3kwc.aspx –  Nickolas Apr 20 '12 at 18:37
    
GOOD LINK INDEED THANKS –  Laurence Nyein Apr 20 '12 at 18:58
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3 Answers

up vote 1 down vote accepted

Edit: Whoops, I dunno what I was thinking on that first part..

The correct version of the first part would be:

str = str.Substring(0, str.Len -13) + str.Substring(str.Len-11);

There also may be an overload for the String.Delete function that allows you to use a negative number to represent the number of characters from the end of the string -- i know that the C# equivalent does..

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thanks Phillip .. you are quite right .. it is actually quite simple, when i know how though .. here what i have got .. Dim rst As String = str.Remove(str.Length - 11, 1) –  Laurence Nyein Apr 20 '12 at 18:54
    
yeah, thats probably an even more straightforward way to do it.. good catch! –  Phillip Schmidt Apr 20 '12 at 18:56
    
@LaurenceNyein: You should add that code as an answer! –  Meta-Knight Apr 20 '12 at 20:20
    
I thought I did Meta Knight ! –  Laurence Nyein Apr 21 '12 at 8:10
    
sorry .. I added it :D –  Laurence Nyein Apr 21 '12 at 8:12
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If its always going to be the 11th character from the end you can do this...

    Dim strTargetString As String = "xxxYxxxxxxxxxx"
    Dim strTargetString2 As String = "xxxxxxxYxxxxxxxxxx"

    Dim strResult As String = Mid(strTargetString, 1, (Len(strTargetString) - 11)) & Microsoft.VisualBasic.Right(strTargetString, 10)
    Dim strResult2 As String = Mid(strTargetString2, 1, (Len(strTargetString2) - 11)) & Microsoft.VisualBasic.Right(strTargetString, 10)

Note that String.SubString is a more modern approach than Mid, but I use it out of preference and example.

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Thanks for the help ! –  Laurence Nyein Apr 20 '12 at 18:55
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This is fairly straightforward with a regular expression replacement operation using look-ahead:

Dim str as String = "xxxxxxxxxxxxxxxxxxxx£xxx£xxxx£xxxxxxxxxx"
Dim str2 as String = Regex.Replace(str, "£(?=.{10}$)", String.Empty)

This will target a single character followed by any ten characters then the end of the string and replace it with the String.Empty value (or just "" if you'd prefer).

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Thanks for the help man! –  Laurence Nyein Apr 20 '12 at 18:56
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