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Please let me how to remove double spaces and characters from below string.

String = Test----$$$$19****45@@@@ Nothing

Clean String = Test-$19*45@ Nothing

I have used regex "\s+" but it just removing the double spaces and I have tried other patterns of regex but it is too complex... please help me.

I am using vb.net

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In which language are you programming? Not all regex engines are created equally. –  Johnsyweb Jan 3 '13 at 13:30
    
    
I am using vb.net and dont know anything about RegEx and I am trying to learn it... if you give me an example pattern it will be great help for me. Thanks in Advance. –  Ashi Jan 3 '13 at 14:09
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4 Answers

up vote 1 down vote accepted

For a faster alternative try:

        Dim text As String = "Test@@@_&aa&&&"

        Dim sb As New StringBuilder(text.Length)
        Dim lastChar As Char
        For Each c As Char In text
            If c <> lastChar Then
                sb.Append(c)
                lastChar = c
            End If
        Next

        Console.WriteLine(sb.ToString())
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Thanks I have done 10-15 performance test on different columns of a large datatable and always find string functions are faster than RegEx... It seems I have to use string functions to archive my goal in a better way. Please give me your advice. Thanks Again. –  Ashi Jan 5 '13 at 13:59
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What you'll want to do is create a backreference to any character, and then remove the following characters that match that backreference. It's usually possible using the pattern (.)\1+, which should be replaced with just that backreference (once). It depends on the programming language how it's exactly done.

Dim text As String = "Test@@@_&aa&&&"
Dim result As String = New Regex("(.)\1+").Replace(text, "$1")

result will now contain Test@_&a&. Alternatively, you can use a lookaround to not remove that backreference in the first place:

Dim text As String = "Test@@@_&aa&&&"
Dim result As String = New Regex("(?<=(.))\1+").Replace(text, "")

Edit: included examples

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Thanks Patrickdev... I am using vb.net and dont know anything about RegEx and I am trying to learn it... if you give me an example pattern it will be great help for me. Thanks in Advance. –  Ashi Jan 3 '13 at 14:07
    
@Ashi: I've included examples that show how to do it in VB.NET. –  Patrickdev Jan 3 '13 at 16:23
    
Thank you so much Patrickdev... But it is removing all double characters I dont want to remove double characters of the alpha. I just wanted to remove $,-,@,*,& etc. I am sorry i did not post my question correctly. –  Ashi Jan 3 '13 at 19:12
1  
@Ashi: Just replace the . with [^A-Za-z0-9]. This is a character class that matches anything that's not (the ^ negates it) either an uppercase letter, lowercase letter or number. Therefore, it will remove anything else. Your pattern would then look like ([^A-Za-z0-9])\1+. –  Patrickdev Jan 3 '13 at 22:50
    
Thanks a million it just work like a champ... –  Ashi Jan 4 '13 at 15:14
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Here is a perl way to substitute all multiple non word chars by only one:

my $String = 'Test----$$$$19****45@@@@ Nothing';
$String =~ s/(\W)\1+/$1/g;
print $String;

output:

Test-$19*45@ Nothing
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Here's how it would look in Java...

String raw = "Test----$$$$19****45@@@@ Nothing";
String cleaned = raw.replaceAll("(.)\\1+", "$1");
System.out.println(raw);
System.out.println(cleaned);

prints

Test----$$$$19****45@@@@ Nothing
Test-$19*45@ Nothing
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