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I would like to use regex to replace multiple groups with corresponding replacement string.

Replacement table:

  • & -> __amp
  • # -> __hsh
  • 1 -> 5
  • 5 -> 6

Input string:

a1asda&fj#ahdk5adfls

Output string:

a5asda__ampfj__hshahdk6adfls

Is there any way to do that ?

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4 Answers 4

up vote 21 down vote accepted

Given a dictionary that defines your replacements:

IDictionary<string,string> map = new Dictionary<string,string>()
        {
           {"&","__amp"},
           {"#","__hsh"},
           {"1","5"},
           {"5","6"},
        };

You can use this both for constructing a Regular Expression, and to form a replacement for each match:

var str = "a1asda&fj#ahdk5adfls";
var regex = new Regex(String.Join("|",map.Keys));
var newStr = regex.Replace(str, m => map[m.Value]);
// newStr = a5asda__ampfj__hshahdk6adfls

Live example: http://rextester.com/rundotnet?code=ADDN57626

This uses a Replace(docs) overload which allows you to specify a lambda expression for the replacement.


It has been pointed out in the comments that a find pattern which has regex syntax in it will not work as expected. This could be overcome by using Regex.Escape and a minor change to the code above:

var str = "a1asda&fj#ahdk5adfls";
var regex = new Regex(String.Join("|",map.Keys.Select(k => Regex.Escape(k)));
var newStr = regex.Replace(str, m => map[m.Value]);
// newStr = a5asda__ampfj__hshahdk6adfls
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3  
However, you should still escape the strings. What if one of the tokens to be replaced is $? –  Tim Pietzcker Sep 8 '11 at 17:32
    
See my answer which expands on this to make it more flexible (so you can use more regex syntax). –  Ray Sep 15 '11 at 10:06
    
Made an edit, but it's awaiting peer review. Replace map.Keys with map.Keys.Select(s => Regex.Escape(s)) to handle cases where the key is a regex-sensitive character like + or * –  Kache Sep 17 '12 at 1:53
    
@Kache - Thanks, I think your edit was pretty good but it seems to have been declined. Might edit something similar in myself, but as a footnote rather than a change to the actual code. –  Jamiec Sep 17 '12 at 7:14

How about using string.Replace()?

string foo = "a1asda&fj#ahdk5adfls"; 

string bar = foo.Replace("&","__amp")
                .Replace("#","__hsh")
                .Replace("5", "6")
                .Replace("1", "5");
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1  
Heck I think this is better than mine, but the OP asked for regex and now the OP has 2 problems :) –  Jamiec Sep 8 '11 at 16:07
    
Jamiec : you got it! :) Your answer is great and could be extended if the list of items is going to come from a source (file, db, etc.), whereas mine is hardcoded, and requires a recompile when a change is required. –  p.campbell Sep 8 '11 at 16:10
2  
That only works because you've reordered the 5 -> 6 and the 1 -> 5, in reality you could have 1 -> 5 and 5 -> 1 and it wouldn't work. –  Ray Sep 8 '11 at 16:11
    
Ray : that was deliberate. I coded the solution to ensure that it works. What do you mean it "only works" due to that? It's a simple string replacement. There are a multitude of ways to code this so that "it wouldn't work". I constructed the answer to make it work period. What's your point? I got lucky or something? –  p.campbell Sep 8 '11 at 16:14
    
I assumed that the table and string were only examples, and in a real program the replacement pattern (as well as the input string) would be arguments. –  Ray Sep 8 '11 at 16:28

Similar to Jamiec's answer, but this allows you to use regexes that don't match the text exactly, e.g. \. can't be used with Jamiec's answer, because you can't look up the match in the dictionary.

This solution relies on creating groups, looking up which group was matched, and then looking up the replacement value. It's a more complicated, but more flexible.

First make the map a list of KeyValuePairs

var map = new List<KeyValuePair<string, string>>();           
map.Add(new KeyValuePair<string, string>("\.", "dot"));

Then create your regex like so:

string pattern = String.Join("|", map.Select(k => "(" + k.Key + ")"));
var regex = new Regex(pattern, RegexOptions.Compiled);

Then the match evaluator becomes a bit more complicated:

private static string Evaluator(List<KeyValuePair<string, string>> map, Match match)
{            
    for (int i = 0; i < match.Groups.Count; i++)
    {
        var group = match.Groups[i];
        if (group.Success)
        {
            return map[i].Value;
        }
    }

    //shouldn't happen
    throw new ArgumentException("Match found that doesn't have any successful groups");
}

Then call the regex replace like so:

var newString = regex.Replace(text, m => Evaluator(map, m))
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Thanks, but my input "Hello [[salutation]] [[firstname]] [[lastname]]" is giving output "Hello Dr. Dr. Dr.". Maps are:map.Add(new KeyValuePair<string, string>(@"[{2}salutation]{2}", "Dr.")); map.Add(new KeyValuePair<string, string>(@"[{2}firstname]{2}", "John")); map.Add(new KeyValuePair<string, string>(@"[{2}lastname]{2}", "Doe")); –  Manish Dec 22 '13 at 15:30

Given a dictionary like in the other answers, you can use an "aggregate" to map each pattern in the dictionary to a replacement. This will give you far more flexibility that the other answers, as you can have different regex options for each pattern.

For example, the following code will "romanize" greek text (https://en.wikipedia.org/w/index.php?title=Romanization_of_Greek&section=3#Modern_Greek, Standard/UN):

var map = new Dictionary<string,string>() {
    {"α[ύυ](?=[άαβγδέεζήηίΐϊιλμνόορύΰϋυώω])", "av"}, {"α[ύυ]", "af"}, {"α[ϊΐ]", "aï"}, {"α[ιί]", "ai"}, {"[άα]", "a"},
    {"β", "v"}, {"γ(?=[γξχ])", "n"}, {"γ", "g"}, {"δ", "d"},
    {"ε[υύ](?=[άαβγδέεζήηίΐϊιλμνόορύΰϋυώω])", "ev"}, {"ε[υύ]", "ef"}, {"ει", "ei"}, {"[εέ]", "e"}, {"ζ", "z"},
    {"η[υύ](?=[άαβγδέεζήηίΐϊιλμνόορύΰϋυώω])", "iv"}, {"η[υύ]", "if"}, {"[ηήιί]", "i"}, {"[ϊΐ]", "ï"},
    {"θ", "th"}, {"κ", "k"}, {"λ", "l"}, {"\\bμπ|μπ\\b", "b"}, {"μπ", "mb"}, {"μ", "m"}, {"ν", "n"},
    {"ο[ιί]", "oi"}, {"ο[υύ]", "ou"}, {"[οόωώ]", "o"}, {"ξ", "x"}, {"π", "p"}, {"ρ", "r"},
    {"[σς]", "s"}, {"τ", "t"}, {"[υύϋΰ]", "y"}, {"φ", "f"}, {"χ", "ch"}, {"ψ", "ps"}
};

var input = "Ο Καλύμνιος σφουγγαράς ψυθίρισε πως θα βουτήξει χωρίς να διστάζει."; 
map.Aggregate(input, (i, m) => Regex.Replace(i, m.Key, m.Value, RegexOptions.IgnoreCase));

returning (without modifying the "input" variable:

"o kalymnios sfoungaras psythirise pos tha voutixei choris na distazei."

You can of course use something like:

foreach (var m in map) input = Regex.Replace(input, m.Key, m.Value, RegexOptions.IgnoreCase);

which does modify the "input" variable.

Also you can add this to improve performance:

var remap = new Dictionary<Regex, string>();
foreach (var m in map) remap.Add(new Regex(m.Key, RegexOptions.IgnoreCase | RegexOptions.Compiled), m.Value);

cache or make static the remap dictionary and then use:

remap.Aggregate(input, (i, m) => m.Key.Replace(i, m.Value));
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