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I am a bit new to Java, so I am just unsure if I am doing things like they should or not. I am developing a Program, that is more for learning Java purpose and which is thought for commandline use. One of the Features should be a kind of search an replace.

Starting the program from the commandline like this:

java -jar pro.jar -s ${} -r foo

means: search for the exact String ${} and replace it with foo. I want to search with an Regexp, so I have to escape the escape-characters ($,(,{,},\,…) in the search string.

${} --> \$\{ftp:\/\/www\.stuff\.com\}

Therefore I wrote that function:

private static Pattern getSearchPattern()
    String searchArg = cli.getOptionValue( "s" ).trim();
    StringBuffer escapedSearch = new StringBuffer();
    Pattern metas = Pattern.compile( "([\\.\\?\\*\\{\\}\\[\\]\\(\\)\\^\\$\\+\\|\\\\])" );
    Matcher metaMatcher = metas.matcher( searchArg );

    while( metaMatcher.find() )
        metaMatcher.appendReplacement(escapedSearch, "\\\\\\\\$0" );
    metaMatcher.appendTail( escapedSearch );

    return Pattern.compile( escapedSearch.toString() );

all in all does this work, but there are so many backslashes. Does this escape all metachrackters? Is that a »robust« solution?

share|improve this question
dont know if its a possibility for you but maybe you could make sure there's just a single argument that accepts patterns and provide it always as the last one. then the remainder ofthe commandline is always your argument and there's less escaping to do – radai May 4 '13 at 9:20

1 Answer 1

up vote 4 down vote accepted

You can do something much better than use them. You can use a PatternQuote.

Pattern metas = Pattern.quote("no escaped regex chars in here");

One other way to get rid of \\ is to use character classes []. So if you put [.] instead of \\. the results will be the same and hopefully you get some readability.

share|improve this answer
+1 for Pattern.quote, which is designed for precisely this task. There's also Matcher.quoteReplacement which you can use on the replacement string if you want it to be treated literally (rather than $1 being treated as a backreference to a capturing group in the pattern). – Ian Roberts May 4 '13 at 11:52
Thank you! Works just like expected! Nice! – philipp May 7 '13 at 7:11

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