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i have the below code:

const chaine  =  'lorem {{name}} lorem lorem {{name}}..." ;

i need replace all {{name}} with the array elements like this

cont list  = ['java', 'regex']  

so the expected result is

lorem java lorem lorem regex...

Note:

  • {{name}} numbers in string is variable
  • array element length is variable , we can have 1..N

thanks

5
  • {{name}} numbers in string is variable What do you mean here, what numbers are you talking about?.
    – Keith
    Jul 5, 2019 at 10:32
  • just split by your needle and replace it using map.
    – briosheje
    Jul 5, 2019 at 10:32
  • @Keith, for this example i have two {{name}}, in an other example i have 3 {{name}} example 'lorem {{name}} lorem lorem {{name}} lorem {{name}}..." . i need a generic solution Jul 5, 2019 at 10:37
  • 1
    if the {{variable}} is variable then this may help stackoverflow.com/questions/56522292/… Jul 5, 2019 at 10:38
  • What happens if you have a templte of one {{name}} two {{name}} three {{name}} but only have ["alpha", "beta"]? Or if the array contains ["alpha", "beta", "gamma", "delta"]
    – VLAZ
    Jul 5, 2019 at 10:51

4 Answers 4

3

You could look for the replacement values and get the item from list.

var string = 'lorem {{name}} lorem lorem {{name}}...',
    list = ['java', 'regex'],
    result = string.replace(/\{\{name\}\}/g, (i => _ => list[i++])(0));

console.log(result);

A bit more advanced version by taking an object and a property for every propery for the index.

var string = 'lorem {{name}} lorem lorem {{name}}, {{foo}}...',
    replacements = { name: ['java', 'regex'], foo: ['bar'] },
    result = string.replace(/\{\{([^}]+)\}\}/g, (_, key) => {
        if (!(key in replacements)) return key;
        replacements['_' + key] = replacements['_' + key] || 0;
        return replacements[key][replacements['_' + key]++];
    });

console.log(result);

2
  • 1
    Oh. The first example is just fantastic. Thanks for sharing.
    – briosheje
    Jul 5, 2019 at 11:31
  • Could also shift from the list instead of the IIFE if you wanted (though that'll mutate if you don't copy it first, ofc) _ => list.shift() Jul 6, 2019 at 9:39
2

You can make it work using .replace(). Demo:

const chaine  =  "lorem {{name}} lorem lorem {{name}}..." ;
const list  = ['java', 'regex'];
var result = chaine.replace(/\{\{name\}\}/g, function(text) {
  return list.shift();
});
console.log(result);

2

const chaine = 'lorem {{name}} lorem lorem {{name}}...';
const list = ['java', 'regex'];

const textWithEverythingReplaced = list.reduce((textWithReplacedValues, wordToReplaceItWith) => {
  return textWithReplacedValues.replace("{{name}}", wordToReplaceItWith)
}, chaine);

console.log(textWithEverythingReplaced);


Disclaimer

As much as this code can work, the algorithm is not robust. It will break when you have more {{name}} than you have replacers.

Unless you can validate the fact that there are equal number of {{name}} as there are list.length, you should be alright.

1

Seen as you want it to be generic, it might also make sense to make into a re-usable function. Below is an example.

const repFn = (str, arr) => {
  let i = 0;
  return str.replace(/{{name}}/g, x =>arr[i ++]);
}

const chaine  =  "lorem {{name}} lorem lorem {{name}}..." ;
const list  = ['java', 'regex'];



console.log(repFn(chaine, list));
console.log(
  repFn("{{name}}, a few {{name}} can {{name}} up the {{name}} of a thousand",
    ["Sometimes", "words", "sum", "wisdom"]
));

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