6

I want to eval() some lines of code inside of async function. While the following code is ok,

async function foo()
{
  await foo1();
  await foo2();
}

the following throws an error: await is only valid in async function

let ctxScript = 'await foo1(); await foo2();';
async function foo()
{
  eval( ctxScript );
}

How could I handle this? My foo() should be async as it is Puppetteer controller function

  • 2
    Take a step back - why do you want to eval the code? If you give us the real problem, perhaps it would turn out there is a different solution – VLAZ May 17 '19 at 13:13
  • I want to execute different actions due to different conditions. My async foo() is big, but only the small pieces of code that I want execute by eval() are different. – Randy Vogel May 17 '19 at 13:15
  • 1
    You can already execute different functions without needing eval - if for example, or calling a whole different function, polymorphism, setting up lookup tables with functionality and so on. – VLAZ May 17 '19 at 13:16
  • Ok, my X problem is that I want to use some different code inside of function, that should be async, what's the best Y to do it? Move all the async() code into includes, like said in answer #1? – Randy Vogel May 17 '19 at 13:20
  • 5
    Why do we always have to have someone saying to not use eval when asking about eval? Just answer the question, there are legitimate use cases for it. – Vidar Aug 1 '19 at 9:41
12

foo() should not necessarily be async, as that has no effect on the execution context of eval. Instead, a possible solution is to wrap your ctxScript in a self-executing async function, like so: eval("(async () => {" + ctxScript + "})()")

| improve this answer | |
  • My foo() should be async as it is Puppetteer controller function. – Randy Vogel May 17 '19 at 13:16
  • My point was that whether foo() is async or not has no bearing whether the code inside the eval is in an async execution context or not. Hence my answer. – Ermir May 17 '19 at 14:08
  • So it has, await is not working inside of eval(), inside of async function. – Randy Vogel May 17 '19 at 14:23
  • From the comments above, perhaps using eval here is not the best solution to your problem, as it has massive downsides (slower, different execution context, the risk for code injection). – Ermir May 17 '19 at 14:24
  • I see, eval() there right now only as a quick patch, seeing and understanding and accepting all the risks. But this is my first time with node.js and async so I don't know better ways yet. – Randy Vogel May 17 '19 at 14:26
4

Ended up using Ermir`s answer:

let ctxScript = '(async () => {await foo1();await foo2();is_script_ended = true; })();';

async function foo()
{
  // a lot of code
  is_script_ended = false;
  eval( ctxScript );
  while(!is_script_ended){ await sleep(1000); }
  // a lot of code
}
| improve this answer | |
  • 2
    Sleeping is never really a good idea in code hey. If your eval script ever fails, then it will sleep forever until you restart the system. If you really want to use sleep, maybe wrap everything in a try catch, so that if the code breaks, your sleep will stop. Something like try {eval(ctxScript)} catch () {is_script_ended = true} – Frank Feb 20 at 12:03
1

If you want to dynamically call some async code in some larger function, then you can supply a callback that does this for you. This way you can call your function with different extra functionality by giving it different callback functions to execute:

// some sample async functions
var resolveAfter2Seconds = function() {
  console.log("starting slow promise -> ");
  return new Promise(resolve => {
    setTimeout(function() {
      resolve("slow");
      console.log("<- slow promise is done");
    }, 2000);
  });
};

var resolveAfter1Second = function() {
  console.log("starting fast promise ->");
  return new Promise(resolve => {
    setTimeout(function() {
      resolve("fast");
      console.log("<- fast promise is done");
    }, 1000);
  });
};

//a function that accepts a callback and would await its execution
async function foo(callback) {
  console.log("-- some code --");
  await callback();
  console.log("-- some more code --");
}

//calling with an async function that combines any code you want to execute
foo(async () => { 
  await resolveAfter2Seconds();
  await resolveAfter1Second();
})

| improve this answer | |
  • TY very much for the great example! Now imagine, that I have some objects in the definition of async function foo(), that created after ---some code--- and before callback, and have thousands of different double-awaits (now stored into files), when secondary calling this function foo(), that want to use these objects. – Randy Vogel May 17 '19 at 14:06
  • ths doesn't explain how to get an expression value from the async, only to call a function later – wow ow Jun 24 at 1:24
  • @wowow what's the problem? const result = await callback() will get the value. I didn't think it needs to be stated explicitly, since there is no change in how you'd do that. I was focusing on showing how to avoid eval. – VLAZ Jun 25 at 9:11
0

If you want to be able to await the eval you can use this:

await Object.getPrototypeOf(async function() {}).constructor("your code here")();

This uses the AsyncFunction constructor. MDN has a page on it which describes the differences between using it and using eval:

Note: async functions created with the AsyncFunction constructor do not create closures to their creation contexts; they are always created in the global scope.

When running them, they will only be able to access their own local variables and global ones, not the ones from the scope in which the AsyncFunction constructor was called.

This is different from using eval with code for an async function expression.

This means that if you have variables that you want your evaled code to be able to access, you need to add them to globalThis:

const testVar = "Hello world";
globalThis["testVar"] = testVar;
await Object.getPrototypeOf(async function() {}).constructor("console.log(testVar);")();
delete globalThis["testVar"];
| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.