14

I want to create a regex with following logic: 1., If string contains T replace it with space 2., If string contains Z remove Z

I wrote two regex already, but I can't combine them:

string.replace(/\T/g,' ') && string.replace(/\Z/g,'');

EDIT: I want the regex code to be shorter

4
  • 1
    Why tou need to combine? Just use var res = string.replace(/\T/g,' ').replace(/\Z/g,'');
    – VadimB
    Commented Jun 2, 2017 at 9:05
  • @VadimB I can see 2 possible reasons: 1: OP wants the regex code to be shorter, 2: OP wants to store regex in an Object or List of Regex
    – nick zoum
    Commented Jun 2, 2017 at 9:07
  • @nickzoum shorter Commented Jun 2, 2017 at 9:08
  • Possible duplicate of Replace multiple characters in one replace call
    – Liam
    Commented Jun 2, 2017 at 10:23

4 Answers 4

31

Doesn't seem this even needs regex. Just 2 chained replacements would do.

var str = '[T] and [Z] but not [T] and [Z]';
var result = str.replace('T',' ').replace('Z','');
console.log(result);

However, a simple replace only replaces the first occurence.
To replace all, regex still comes in handy. By making use of the global g flag.
Note that the characters aren't escaped with \. There's no need.

var str = '[T] and [Z] and another [T] and [Z]';
var result = str.replace(/T/g,' ').replace(/Z/g,'');
console.log(result);

// By using regex we could also ignore lower/upper-case. (the i flag)
// Also, if more than 1 letter needs replacement, a character class [] makes it simple.
var str2 = '(t) or (Ⓣ) and (z) or (Ⓩ). But also uppercase (T) or (Z)';
var result2 = str2.replace(/[tⓉ]/gi,' ').replace(/[zⓏ]/gi,'');
console.log(result2);

But if the intention is to process really big strings, and performance matters?
Then I found out in another challenge that using an unnamed callback function inside 1 regex replace can prove to be faster. When compared to using 2 regex replaces.

Probably because if it's only 1 regex then it only has to process the huge string once.

Example snippet:

console.time('creating big string');
var bigstring = 'TZ-'.repeat(2000000);
console.timeEnd('creating big string');

console.log('bigstring length: '+bigstring.length);

console.time('double replace big string');
var result1 = bigstring.replace(/[t]/gi,'X').replace(/[z]/gi,'Y');
console.timeEnd('double replace big string');

console.time('single replace big string');
var result2 = bigstring.replace(/([t])|([z])/gi, function(m, c1, c2){
         if(c1) return 'X'; // if capture group 1 has something
         return 'Y';
       });
console.timeEnd('single replace big string');

var smallstring = 'TZ-'.repeat(5000);

console.log('smallstring length: '+smallstring.length);

console.time('double replace small string');
var result3 = smallstring.replace(/T/g,'X').replace(/Z/g,'Y');
console.timeEnd('double replace small string');

console.time('single replace small string');
var result4 = smallstring.replace(/(T)|(Z)/g, function(m, c1, c2){
         if(c1) return 'X'; 
         return 'Y';
       });
console.timeEnd('single replace small string');

3
  • 1
    Likely more efficient too
    – Liam
    Commented Jun 2, 2017 at 9:14
  • 2
    replace(string) only replaces once. Try with [T] and [Z] and more [Z]
    – georg
    Commented Jun 2, 2017 at 9:26
  • @georg True, So I've added that insight to the answer. Thanks.
    – LukStorms
    Commented Jun 2, 2017 at 9:36
8

Do you look for something like this?

ES6

var key = {
  'T': ' ',
  'Z': ''
}
"ATAZATA".replace(/[TZ]/g, (char) => key[char] || '');

Vanilla

"ATAZATA".replace(/[TZ]/g,function (char) {return key[char] || ''});

or

"ATAZATA".replace(/[TZ]/g,function (char) {return char==='T'?' ':''});
1
  • This is the most succinct and worked great for me with ES6 syntax. Thank you!
    – B. Bulpett
    Commented Nov 4, 2017 at 17:55
3

you can capture both and then decide what to do in the callback:

string.replace(/[TZ]/g,(m => m === 'T' ? '' : ' '));

var string = 'AZorro Tab'

var res = string.replace(/[TZ]/g,(m => m === 'T' ? '' : ' '));

console.log(res)

-- edit --

Using a dict substitution you can also do:

var string = 'AZorro Tab'

var dict = { T : '', Z : ' '}

var re = new RegExp(`[${ Object.keys(dict).join('') }]`,'g')

var res = string.replace(re,(m => dict[m] ) )

console.log(res)

3
  • You can also consider a replacement dict, as in {T: ' ', Z: ''} and then m => replacements[m]
    – georg
    Commented Jun 2, 2017 at 9:10
  • Bear in mind that if this is for the web IE doesn't support arrow functions
    – Liam
    Commented Jun 2, 2017 at 9:11
  • @Liam what you say is true , but readability wise es6 looks too much better
    – maioman
    Commented Jun 2, 2017 at 9:18
1

Second Update

I have developed the following function to use in production, perhaps it can help someone else. It's basically a loop of the native's replaceAll Javascript function, it does not make use of regex:

function replaceMultiple(text, characters){
  for (const [i, each] of characters.entries()) {
    const previousChar = Object.keys(each);
    const newChar = Object.values(each);

    text = text.replaceAll(previousChar, newChar);
  }  
  
return text
}

Usage is very simple:


const text = '#Please send_an_information_pack_to_the_following_address:';
const characters = [
    {
    "#":""
    },
   {
    "_":" "
    },
]

const result = replaceMultiple(text, characters);

console.log(result); //'Please send an information pack to the following address:'

Update

You can now use replaceAll natively.

Outdated Answer

Here is another version using String Prototype. Enjoy!

String.prototype.replaceAll = function(obj) {
    let finalString = '';
    let word = this;
    for (let each of word){
        for (const o in obj){
            const value = obj[o];
            if (each == o){
                each = value;
            }
        }
        finalString += each;
    }
    
    return finalString;
};

'abc'.replaceAll({'a':'x', 'b':'y'}); //"xyc"
2
  • Bad idea to add it directly to the prototype, since you've replaced the native implementation of replaceAll that now exists in modern browsers... Commented May 21, 2022 at 3:52
  • Yep, don't do that. When I created that function "replaceAll" was not available yet. I updated the answer. Commented May 21, 2022 at 6:26

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