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I would like to find words in a sentence starting with a prefix and remove the rest of the characters.

Example:

this sentence Type_123 contains a Type_uiy

I would like to remove the characters that come after Type so I can have:

this sentence Type contains a Type

I know how I would go to remove the prefix with regex str.replace(/Type_/g,'') but how do I do the opposite action?

N.B. js prior ES6 if possible

  • 1
    str = str.replace(/\b(Type)_\w+/g,'$1') – anubhava Oct 3 '18 at 14:12
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    Or str.replace(/(?<=Type)\w+/g, '') – Mohammad Oct 3 '18 at 14:15
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Use the expression \b(Type)\w+ to capture the Type prefix.

Explanation:

\b     | Match a word boundary (beginning of word)
(Type) | Capture the word "Type"
\w+    | Match one or more word characters, including an underscore

var str = 'this sentence Type_123 contains a Type_uiy';
var regex = /\b(Type)\w+/g;

console.log(str.replace(regex, '$1'));

The $1 in the replace() method is a reference to the captured characters. In this case, $1 stands for Type. So anywhere in the sentence, Type_xxx will be replaced with Type.

See MDN's documentation on the replace() method.

  • what is $1 for? – Jonathan Oct 3 '18 at 14:18
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    Adding a link for the String.prototype.replace() method's documentation(from the Mozilla Developers Network would be better) will help, not only the OP, but anyone who sees your answer. – ths Oct 3 '18 at 14:28
  • I completely agree. I'll add it. – Adam Oct 3 '18 at 14:29
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    @Jonathan However, \b(Type)\w+ will replace Typer with Type, too. If you need to make sure there is an underscore, add it explicitly as in \b(Type)_\w+ , do not rely on \w. – Wiktor Stribiżew Oct 3 '18 at 14:43
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Install: https://github.com/icodeforlove/string-saw

let str = "Here's a sentence that contains Type_123 and Type_uiy";
let result = saw(str)
    .remove(/(?<=Type_)\w+/g)
    .toString();

The above would result in:

"Here's a sentence that contains Type_ and Type_"

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