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I have to do something like this

string  = " this is a good example to show"

search  = array {this,good,show}

find and replace them with a token like

string  = " {1} is a {2} example to {3}" (order is intact)

the string will undergo some processing and then

string  = " {1} is a {2} numbers to {3}" (order is intact)

tokens are again replaced back to the string likem so that the string becomes

string  = " this is a good number to show"

how to make sure that the pattern is matched and the same tokens are replaced

for example /[gG]ood/ is a pattern to search and replaced later with appropriate "case".Or in other words if ^\s*[0-9]+. is the pattern the matched string needs to be stored and replace to form the original text as it was

How should it be implemented so that the process is done at high performance ?

Thanks in advance.

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It would help if you cleaned up the syntax and read the help on how to format source code here. –  RoToRa May 6 '10 at 9:59

2 Answers 2

up vote 4 down vote accepted

You don't mention anything about multiple occurrences of the same token in the string, I guess you'll be replacing all occurrences.

It would go something like this:

var string = "This is a good example to show, this example to show is good";
var tokens = ['this','good','example'];

for (var i = 0; i < tokens.length; i++) {
    string.replace(new RegExp(tokens[i], "g"),"{"+i+"}");
}
// string processing here
for (var i = 0; i < tokens.length; i++) {
    string.replace(new RegExp("{"+i+"}","g"),tokens[i]);
}
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Thanks a lot. This is what I was trying to do. –  Sourabh May 6 '10 at 10:20
    
That only works if the strings to be replaced do not contain any special characters. Sadly, javascript has no built-in regex escaping capabilities. –  Tgr May 6 '10 at 10:24
    
Also, if it is really high-performance, using regexes for simple string substitution is not necessarily a good idea. –  Tgr May 6 '10 at 10:26
    
And that's not really how you use the regex constructor. –  Tgr May 6 '10 at 10:29
    
new RegExp("/foo/g") will not match on foo, only on /foo/g. You would need new RegExp("foo", "g"). –  Tgr May 6 '10 at 11:02
var string = "this is a good example to show"
var search = ["this","good","show"] // this is how you define a literal array

for (var i = 0, len = search.length; i < len; i++) {
   string.replace(RegExp(search[i], "g"), "{" + (i+1) + "}")
}

//... do stuff

string.replace(/\{(\d+)\}/, function(match, number) {
  if (+number > 0)
    return search[+number - 1];
});
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Thanks for the answer –  Sourabh May 6 '10 at 10:21

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