9

Given the string 'Hello ?, welcome to ?' and the array ['foo', 'bar'], how do I get the string 'Hello foo, welcome to bar' in a single line of code with JavaScript (possibly with jQuery, Underscore, etc.)?

2
  • Do they have to be question marks?
    – Paul
    Jan 19, 2012 at 18:01
  • 2
    Why does it have to be a single line? Jan 19, 2012 at 18:01

5 Answers 5

23
var s = 'Hello ?, welcome to ?';
var a = ['foo', 'bar'];
var i = 0;
alert(s.replace(/\?/g,function(){return a[i++]}));
2
  • 3
    +1 You could also eliminate i by using return a.shift() (though a would be empty afterwards).
    – pimvdb
    Jan 19, 2012 at 18:14
  • 1
    @Andrew almost anything can take a function. Jan 19, 2012 at 19:05
8

Kind of silly to put it all on one line, but:

var str = 'Hello ?, welcome to ?',
    arr = ['foo', 'bar'],
    i = 0;


while(str.indexOf("?") >= 0) { str = str.replace("?", arr[i++]); }
3
  • 1
    Would be more beautiful if you sis str = str.replace("?", arr[i++]); Jan 19, 2012 at 18:03
  • Yes, I was just thinking that myself.. Updating... And thanks for the comment! Jan 19, 2012 at 18:03
  • This has to be the most dubious JS comma placing style I have ever seen. Jan 19, 2012 at 18:09
4

You could use vsprintf. Although if you include sprintf, it's much more than one line.

vsprintf('Hello %s, welcome to %s', [foo, bar]);
2

let str = 'Hello ?, welcome to ?'
let arr = ['foo', 'bar']
const fn = Array.prototype.shift.bind(arr)
let  result = str.replace(/\?/g, fn)

console.log(result);

1

Let's build a replaceWith function:

const replaceWith =
  (...str) =>
    (fallback) =>
      str.length === 0
        ? fallback
        : str.shift();

It's a curried function: it takes a list of replacement strings and returns another function which will return the replacements one by one:

const replacements = replaceWith('🥗', '🥙', '🍱');
replacements(); //=> '🥗'
replacements(); //=> '🥙'
replacements(); //=> '🍱'

After the third call you have exhausted all the replacements so the next calls will either return undefined or whatever you passed as a fallback parameter:

replacements(); //=> undefined
replacements('🌯'); //=> '🌯'

This fallback parameter can be handy if you have more substrings to replace than replacement strings at your disposal. (But we will come to that later.)

Now using replaceWith we can do:

'Hello ?, welcome to ?'.replace(/\?/g, replaceWith('foo', 'bar'));
//=> 'Hello foo, welcome to bar'

Behind the scene it calls the function returned by replaceWith (let's call it fn) with:

fn('?'); //=> 'foo'
fn('?'); //=> 'bar'

The fallback parameter (i.e. your placeholder '?' in this case) is ignored while there are still replacement strings. However it will be returned as is when there are more placeholders than replacements:

'Hello ? and ?, welcome to ?'.replace(/\?/g, replaceWith('foo', 'bar'));
//=> 'Hello foo and bar, welcome to ?'

Acknowledgment

This answer is a variation of Alex Varghese excellent answer.

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