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I have this issue in which I have a strnig with among other things the literal expression "\\" on several occasions and I want to replace it with "\", when I try to replace it with string.replace, only replcaes the first occurrence, and if I do it with regular expression it doesn't replace it at all

I checked with some RegEx Testers online and supposedly my code is ok, returns what I meant to, but my code doesn't work at all

With string.replace

example = "\\\\url.com\\place\\anotherplace\\extraplace\\";

example = example.replace("\\\\","\\");

returns example == "\\url.com\\place\\anotherplace\\extraplace\\";

With RegEx

example = Regex.Replace(example,"\\\\","\\");

returns example = "\\\\url.com\\place\\anotherplace\\extraplace\\";

It is the same case if I use literals (On the Replace function parameters use (@"\\", @"\") gives the same result as above).

Thanks!

EDIT:

I think my ultimate goal was confusing so I'll update it here, what I want to do is:

Input: variable that holds the string: "\\\\url.com\\place\\anotherplace\\extraplace\\"

Process

Output variable that holds the string "\\url.com\place\anotherplace\extraplace\" (so I can send it to ffmpeg and it recognizes it as a valid route)

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So, what the expected result you want? – Habibillah Oct 17 '12 at 17:54
2  
What happens if you make the example variable a literal? (do example = @"\\\\url.com\\place\\anotherplace\\extraplace\\") – JakeP Oct 17 '12 at 17:55
    
@JakeP The example in the app comes from some other variable, can I explicitly make it literal?. DaveZynch that works as expected, but I cant get it to work on every occurrence – NicoSantangelo Oct 17 '12 at 18:01
up vote 5 down vote accepted

change this:

example = "\\\\url.com\\place\\anotherplace\\extraplace\\"; 

to this

example = @"\\\\url.com\\place\\anotherplace\\extraplace\\"; 

It wasn't the Regex.Replace parameters that was the problem.

share|improve this answer
    
The example comes from another variable, how can I make it literal ?(googling now) – NicoSantangelo Oct 17 '12 at 17:58
3  
if you're are passed `\\\\url.com\\place\\anotherplace\\extraplace\` that really is (if you PRINT it on the screen or console this: '\\url.com\place\anotherplace\extraplace\' – hometoast Oct 17 '12 at 18:00
    
"\" is an escape character. In string literals, "\\" resolves to just "\". The @ sign (which makes it a verbatim string literal) makes it ignore escape characters, so @"\\" resolves to "\\", without verbatim, the string literal should be "\\\\" to get "\\". – JakeP Oct 17 '12 at 18:15
    
Ok, I got it, it was a confusion with the different concepts. Thanks – NicoSantangelo Oct 17 '12 at 18:22
    
@HansPassant: I rolled it back because he is being passed a url string that appears to already have been quoted. And he intends on making it a valid path. At least I think that's the case here. In other words, the intent is to 'unquote' a the string. – hometoast Oct 17 '12 at 18:54

You only have one occurrence of \\\\ in your string. So it is doing exactly what you asked it to do.

Without escaping (ie without adding extra /'s)

  • What is your actual input?
  • What is your desired output?
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He actually has zero occurrences of literal \\\\ in his string and one occurrence of literal \\ because "\\\\" escapes out to \\, I think he really just wants to use the @ operator. – Sheridan Bulger Oct 17 '12 at 18:00
    
He said he tried literals. I think he is just confused too.. – inspite Oct 17 '12 at 18:02
    
I think I'm a bit confusd, but I've updated the question if it's of any help – NicoSantangelo Oct 17 '12 at 18:07
1  
Ok, I got it, it was a confusion with the different concepts. – NicoSantangelo Oct 17 '12 at 18:21

That appears to be the expected behavior.

In the String.Replace case: Initially, example contains a string that starts with two backslashes, and contains a few single backslashes elsewhere in the string. You then attempted to replace all occurrences of double backslashes with a single backslash, which worked and produced a string that starts with a single backslash and contains a few single backslashes elsewhere in the string.

In the Regex.Replace case: The original contents of example are irrelevant in this case. Your regex pattern is a double backslash, which when interpreted as a regex pattern, means "find a single backslash". You then replace this pattern with a single backslash, which results in no change to the string.

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Thanks, thats correct, I get it now – NicoSantangelo Oct 17 '12 at 18:21

You should change it to following

example = example.replace(@"\\", @"\");
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