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Let's say we have a string

String data = "<span> 0397]);}}:;)]</span>";

Then we send that into an char array

Char[] charData = data.ToCharArray();

How could I go trough this data and replace all unwanted data to the end of the array but move all data left one from the current char that has been moved to make room at the end for the unwanted data.

Char[] sendToEnd = { ';', ')', '}', ']' };

I have tried a loop but it causes an infinite loop when it loops over the already swapped data.

In the end the string data should be

"<span> 0397</span>]);}}:;)]"
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1  
If it's unwanted, then why do you still want it? :) –  dan1111 Dec 13 '12 at 15:33
    
well its both wanted and unwanted, its not wanted in the span but its still needed –  Jordan Trainor Dec 13 '12 at 15:46

2 Answers 2

up vote 4 down vote accepted
var str = new String(data.Where(c => !sendToEnd.Contains(c))
                         .Concat(data.Where(c => sendToEnd.Contains(c)))
                         .ToArray());

Also declaring sendToEnd as

var sendToEnd = new HashSet<char>(new char[] { ';', ')', '}', ']' });

can give a better performance

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1  
I had a solution all typed up but this is so much more elegant. –  Kami Dec 13 '12 at 15:42
    
Can you explain what your code is doing please? Also what is a Hashset<>? –  Jordan Trainor Dec 13 '12 at 15:47
    
First data.Where returns wanted data, second one returns unwanted data. I concat them (like list1+list2) and convert to char array by ToArray, and give that array to new string constructor. Similar to: new String((wanted+unwanted).ToArray()) –  L.B Dec 13 '12 at 15:49
    
both data.Where give the error "Error 2 'string' does not contain a definition for 'Where' and no extension method 'Where' accepting a first argument of type 'string' could be found (are you missing a using directive or an assembly reference?)" –  Jordan Trainor Dec 13 '12 at 15:52
1  
@L.B Thanks, first time VS has not shown the "resolve issue" in the right click menu. –  Jordan Trainor Dec 13 '12 at 19:29

Instead of initially moving the characters to the end, move them to another array and join the arrays to form the final string.

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This would work but the answer I choose is a cleaner method + 1 for correct answer though –  Jordan Trainor Dec 13 '12 at 19:38

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