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Tagged template functions aren't normal functions in the same way that constructor functions aren't normal functions. They should never be called apart from in a special way. Constructors, with a new, tagging functions with an interpolated string literal.

We have a convention that constructors must be in Pascal Case so it is clear to the caller that it's a constructor.

  1. Is there a similar convention for tagging functions?
  2. If not, would enforcing that they have a trailing underscore be ambiguous to any other convention?

function tagger_(s, name, food) {  
  return `${s[0]}${name}${s[1]}${food}${s[2]}`
}

const name = 'Dave';
const food = 'ice-cream'
const message = tagger_`Hello World!  My name is ${name} and I like ${food} for dinner`;

console.log(message);

The argument for this not being a normal function is that the first argument isn't a string.

const log = console.log;

function tagger_(s) {
    console.log(`Has raw property: ${!!s.raw}`);
}

tagger_(`Hello World!`);
tagger_`Hello World!`

Likewise the s.raw property contains the string, unescaped. There would be no practical way to spoof this. Even if one could, it would be very bad practice.

function tagger_(s) {
    console.log(`s.raw: ${s.raw}`);
}

tagger_`This\nhas\tspecial characters`

The Duck Typing Problem

Whilst it may be possible to create a duck-typed object to pass into the method such that it won't fail immediately, the interface of the engune-generated object might extent (e.g. maybe an escapedRaw property is added). This would mean anything calling the method as a normal function would break.

When we write a normal function were totally in control of it, this isn't the case here because the s parameter type isn't controlled by the writer if the function.

  • I don't think tagging functions are special. They have a distinctive signature, yes, but otherwise they really are normal functions. You can call them like any other function, you just have to pass the right arguments. – Bergi Mar 11 at 21:51
  • @Bergi They're special because the first argument is set to a special type. – BanksySan Mar 11 at 22:00
  • @Bergi I've added a demo to highlight why I think it should be a special function. – BanksySan Mar 11 at 22:10
  • @BanksySan — I think you're mistaken about the "non-string" argument. 'foo' instanceof String also returns false. – Ben Blank Mar 11 at 22:18
  • @BenBlank You're right. I've removed it. – BanksySan Mar 11 at 22:20

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