Why does Async/Await work properly when the loop is inside the async function and not the other way...

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Why does Async/Await work properly when the loop is inside the async function and not the other way around?

JavaScript closure inside loops – simple practical exampleHttpClient.GetAsync(…) never returns when using await/asyncHow and when to use ‘async’ and ‘await’When correctly use Task.Run and when just async-awaitWhy is my variable unaltered after I modify it inside of a function? - Asynchronous code referenceCombination of async function + await + setTimeoutCall async/await functions in parallelUsing async/await with a forEach loopECMAScript7 async/await inconsistent behavior depending on whether using brackets in arrow function or notcode inside async function executes before the code that follows itasync / await not working?

I have three snippets that loop three times while awaiting on a promise.

In the first snippet, it works as I expect and the value of i is decremented with each await.

let i = 3;



(async () => {

  while (i) {

    await Promise.resolve();

    console.log(i);

    i--;

  }

})();

Output:

In the second one, the value of i is continuously decremented until it reaches zero and then all the awaits are executed.

let i = 3;



while (i) {

  (async () => {

    await Promise.resolve();

    console.log(i);

  })();

  i--;

}

Output:

Lastly, this one causes an Allocation failed - JavaScript heap out of memory error and doesn't print any values.

let i = 3;

while (i) {

  (async () => {

    await Promise.resolve();

    console.log(i);

    i--;

  })();

}

Can someone explain why they exhibit these different behaviors? Thanks.

edited yesterday

asked yesterday

Ahmed Karaman

34719

9

Do you know how async functions desugar to promises?

– Bergi
yesterday

@Bergi It's just a syntactic sugar for dealing with promises instead of using the .then() and .catch() methods. Am I right ?

– Ahmed Karaman
11 hours ago

Yes, basically. So what do you think would your code look like if written with then()?

– Bergi
11 hours ago

For the second snippet, it would be: while (i) { Promise.resolve().then(res => console.log(i)); i--; }

– Ahmed Karaman
10 hours ago

Exactly. And it seems obvious now why this logs 0 three times.

– Bergi
9 hours ago

add a comment |

I have three snippets that loop three times while awaiting on a promise.

In the first snippet, it works as I expect and the value of i is decremented with each await.

let i = 3;



(async () => {

  while (i) {

    await Promise.resolve();

    console.log(i);

    i--;

  }

})();

Output:

In the second one, the value of i is continuously decremented until it reaches zero and then all the awaits are executed.

let i = 3;



while (i) {

  (async () => {

    await Promise.resolve();

    console.log(i);

  })();

  i--;

}

Output:

Lastly, this one causes an Allocation failed - JavaScript heap out of memory error and doesn't print any values.

let i = 3;

while (i) {

  (async () => {

    await Promise.resolve();

    console.log(i);

    i--;

  })();

}

Can someone explain why they exhibit these different behaviors? Thanks.

edited yesterday

asked yesterday

Ahmed Karaman

34719

9

Do you know how async functions desugar to promises?

– Bergi
yesterday

@Bergi It's just a syntactic sugar for dealing with promises instead of using the .then() and .catch() methods. Am I right ?

– Ahmed Karaman
11 hours ago

Yes, basically. So what do you think would your code look like if written with then()?

– Bergi
11 hours ago

For the second snippet, it would be: while (i) { Promise.resolve().then(res => console.log(i)); i--; }

– Ahmed Karaman
10 hours ago

Exactly. And it seems obvious now why this logs 0 three times.

– Bergi
9 hours ago

add a comment |

I have three snippets that loop three times while awaiting on a promise.

In the first snippet, it works as I expect and the value of i is decremented with each await.

let i = 3;



(async () => {

  while (i) {

    await Promise.resolve();

    console.log(i);

    i--;

  }

})();

Output:

In the second one, the value of i is continuously decremented until it reaches zero and then all the awaits are executed.

let i = 3;



while (i) {

  (async () => {

    await Promise.resolve();

    console.log(i);

  })();

  i--;

}

Output:

Lastly, this one causes an Allocation failed - JavaScript heap out of memory error and doesn't print any values.

let i = 3;

while (i) {

  (async () => {

    await Promise.resolve();

    console.log(i);

    i--;

  })();

}

Can someone explain why they exhibit these different behaviors? Thanks.

edited yesterday

asked yesterday

Ahmed Karaman

34719

I have three snippets that loop three times while awaiting on a promise.

In the first snippet, it works as I expect and the value of i is decremented with each await.

let i = 3;



(async () => {

  while (i) {

    await Promise.resolve();

    console.log(i);

    i--;

  }

})();

Output:

In the second one, the value of i is continuously decremented until it reaches zero and then all the awaits are executed.

let i = 3;



while (i) {

  (async () => {

    await Promise.resolve();

    console.log(i);

  })();

  i--;

}

Output:

Lastly, this one causes an Allocation failed - JavaScript heap out of memory error and doesn't print any values.

let i = 3;

while (i) {

  (async () => {

    await Promise.resolve();

    console.log(i);

    i--;

  })();

}

Can someone explain why they exhibit these different behaviors? Thanks.

javascript async-await es6-promise

edited yesterday

asked yesterday

Ahmed Karaman

34719

edited yesterday

asked yesterday

Ahmed Karaman

34719

edited yesterday

asked yesterday

Ahmed Karaman

34719

asked yesterday

Ahmed Karaman

34719

asked yesterday

Ahmed Karaman

34719

9

Do you know how async functions desugar to promises?

– Bergi
yesterday

@Bergi It's just a syntactic sugar for dealing with promises instead of using the .then() and .catch() methods. Am I right ?

– Ahmed Karaman
11 hours ago

Yes, basically. So what do you think would your code look like if written with then()?

– Bergi
11 hours ago

For the second snippet, it would be: while (i) { Promise.resolve().then(res => console.log(i)); i--; }

– Ahmed Karaman
10 hours ago

Exactly. And it seems obvious now why this logs 0 three times.

– Bergi
9 hours ago

add a comment |

9

Do you know how async functions desugar to promises?

– Bergi
yesterday

@Bergi It's just a syntactic sugar for dealing with promises instead of using the .then() and .catch() methods. Am I right ?

– Ahmed Karaman
11 hours ago

Yes, basically. So what do you think would your code look like if written with then()?

– Bergi
11 hours ago

For the second snippet, it would be: while (i) { Promise.resolve().then(res => console.log(i)); i--; }

– Ahmed Karaman
10 hours ago

Exactly. And it seems obvious now why this logs 0 three times.

– Bergi
9 hours ago

Do you know how async functions desugar to promises?

– Bergi
yesterday

@Bergi It's just a syntactic sugar for dealing with promises instead of using the .then() and .catch() methods. Am I right ?

– Ahmed Karaman
11 hours ago

Yes, basically. So what do you think would your code look like if written with then()?

– Bergi
11 hours ago

For the second snippet, it would be: while (i) { Promise.resolve().then(res => console.log(i)); i--; }

– Ahmed Karaman
10 hours ago

Exactly. And it seems obvious now why this logs 0 three times.

– Bergi
9 hours ago

add a comment |

4 Answers
4

active

oldest

votes

Concerning your second snippet:

Caling an async function without awaiting it's result is called fire and forget. You tell JavaScript that it should start some asynchronous processing, but you do not care when and how it finishes. That's what happens. It loops, fires some asynchronous tasks, when the loop is done they somewhen finish, and will log 0 as the loop already reached its end. If you'd do:

await (async () => {

  await Promise.resolve();

  console.log(i);

})();

it will loop in order.

Concerning your third snippet:

You never decrement i in the loop, therefore the loop runs forever. It would decrement i if the asynchronous tasks where executed somewhen, but that does not happen as the while loop runs crazy and blocks & crashes the browser.

 let i = 3;

 while(i > 0) {

   doStuff();

 }

edited 15 hours ago

answered yesterday

Jonas Wilms

63.3k53457

add a comment |

Focusing primarily on the last example:

let i = 3;

while (i) {

  (async () => {

    await Promise.resolve();

    console.log(i);

    i--;

  })();

}

It may help if we rewrite the code without async/await to reveal what it is really doing. Under the hood, the code execution of the async function is deferred for later:

let callbacks = [];



let i = 0;

while (i > 0) {

  callbacks.push(() => {

    console.log(i);

    i--;

  });

}



callbacks.forEach(cb => {

  cb();

});

As you can see, none of the callbacks are executed until after the loop is completed. Since the loop never halts, eventually the vm will run out of space to store callbacks.

answered yesterday

Joel Cornett

17.9k44270

add a comment |

Because in the first case console.log and decrement work in sync with each other because they are both inside the same asnychronous function.
In the second case console.log works asynchronously and decrement works synchronously.
Therefore, the decrement will be executed first, the asynchronous function will wait for the synchronous function to finish, then it will be executed with i == 0

In the third case, the loop body executes synchronously, and runs the asynchronous function at each iteration. Therefore, the decrement can not work until the end of the loop, so the condition in the cycle is always true. And so until the stack or memory is full

edited yesterday

answered yesterday

Nikita Umnov

1544

New contributor

add a comment |

In your particular example it decrements the i and then runs the async code like:

let i = 3;



while (i) {

  i--; // <---------------------

  (async () => {            // |

    await Promise.resolve();// |

    console.log(i);         // |

  })();                     // |

 // >---------------------------

}

Regarding your third snippet, it will never decrease the i value and so loop runs forever and thus crashes application:

let i = 3;

while (i) {

  (async () => {

    await Promise.resolve(); // await and resolve >-----------

    // the following code doesn't run after it resolves   // |

    console.log(i);                                       // |

    i--;                                                  // |

  })();                                                   // |

  // out from the (async() => {})() <-------------------------

}

edited yesterday

answered yesterday

Bhojendra Rauniyar

53.1k2081135

Not really, If you would remove the await Promise.resolve it would log correctly.

– Jonas Wilms
yesterday

@Bhojendra Rauniyar Can you please check this third snippet?

– Ahmed Karaman
yesterday

@JonasWilms Does what you say mean that if we have an async function without an await in its body that it will be blocking and run synchronously like any other function?

– Ahmed Karaman
yesterday

2

the asynchronous code runs in background this is incorrect. The async code is deferred, and since event loop is busy with infinite while loop the async code never runs. if it was in background, the output numbers would be random but the i would be equal to zero eventually.

– meze
yesterday

1

@BhojendraRauniyar JavaScript is single-threaded, so there is no “background”. Only one chunk of code can run at one time. I’m fuzzing over some of the details here, but there is a single event loop that dequeues a pending callback and runs it to completion. In order to prevent blocking (such as waiting for a timer or a network request), code is broken up into smaller callbacks in order to give competing events their chance to run in the single thread. await is just syntactic sugar for “schedule a callback to run after the thing we’re waiting on is available”.

– Joel Cornett
yesterday

|
show 4 more comments

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4 Answers
4

active

oldest

votes

4 Answers
4

active

oldest

votes

Concerning your second snippet:

await (async () => {

  await Promise.resolve();

  console.log(i);

})();

it will loop in order.

Concerning your third snippet:

 let i = 3;

 while(i > 0) {

   doStuff();

 }

edited 15 hours ago

answered yesterday

Jonas Wilms

63.3k53457

add a comment |

Concerning your second snippet:

await (async () => {

  await Promise.resolve();

  console.log(i);

})();

it will loop in order.

Concerning your third snippet:

 let i = 3;

 while(i > 0) {

   doStuff();

 }

edited 15 hours ago

answered yesterday

Jonas Wilms

63.3k53457

add a comment |

Concerning your second snippet:

await (async () => {

  await Promise.resolve();

  console.log(i);

})();

it will loop in order.

Concerning your third snippet:

 let i = 3;

 while(i > 0) {

   doStuff();

 }

edited 15 hours ago

answered yesterday

Jonas Wilms

63.3k53457

Concerning your second snippet:

await (async () => {

  await Promise.resolve();

  console.log(i);

})();

it will loop in order.

Concerning your third snippet:

 let i = 3;

 while(i > 0) {

   doStuff();

 }

edited 15 hours ago

answered yesterday

Jonas Wilms

63.3k53457

edited 15 hours ago

answered yesterday

Jonas Wilms

63.3k53457

answered yesterday

Jonas Wilms

63.3k53457

answered yesterday

Jonas Wilms

63.3k53457

add a comment |

Focusing primarily on the last example:

let i = 3;

while (i) {

  (async () => {

    await Promise.resolve();

    console.log(i);

    i--;

  })();

}

It may help if we rewrite the code without async/await to reveal what it is really doing. Under the hood, the code execution of the async function is deferred for later:

let callbacks = [];



let i = 0;

while (i > 0) {

  callbacks.push(() => {

    console.log(i);

    i--;

  });

}



callbacks.forEach(cb => {

  cb();

});

As you can see, none of the callbacks are executed until after the loop is completed. Since the loop never halts, eventually the vm will run out of space to store callbacks.

answered yesterday

Joel Cornett

17.9k44270

add a comment |

Focusing primarily on the last example:

let i = 3;

while (i) {

  (async () => {

    await Promise.resolve();

    console.log(i);

    i--;

  })();

}

It may help if we rewrite the code without async/await to reveal what it is really doing. Under the hood, the code execution of the async function is deferred for later:

let callbacks = [];



let i = 0;

while (i > 0) {

  callbacks.push(() => {

    console.log(i);

    i--;

  });

}



callbacks.forEach(cb => {

  cb();

});

As you can see, none of the callbacks are executed until after the loop is completed. Since the loop never halts, eventually the vm will run out of space to store callbacks.

answered yesterday

Joel Cornett

17.9k44270

add a comment |

Focusing primarily on the last example:

let i = 3;

while (i) {

  (async () => {

    await Promise.resolve();

    console.log(i);

    i--;

  })();

}

It may help if we rewrite the code without async/await to reveal what it is really doing. Under the hood, the code execution of the async function is deferred for later:

let callbacks = [];



let i = 0;

while (i > 0) {

  callbacks.push(() => {

    console.log(i);

    i--;

  });

}



callbacks.forEach(cb => {

  cb();

});

As you can see, none of the callbacks are executed until after the loop is completed. Since the loop never halts, eventually the vm will run out of space to store callbacks.

answered yesterday

Joel Cornett

17.9k44270

Focusing primarily on the last example:

let i = 3;

while (i) {

  (async () => {

    await Promise.resolve();

    console.log(i);

    i--;

  })();

}

It may help if we rewrite the code without async/await to reveal what it is really doing. Under the hood, the code execution of the async function is deferred for later:

let callbacks = [];



let i = 0;

while (i > 0) {

  callbacks.push(() => {

    console.log(i);

    i--;

  });

}



callbacks.forEach(cb => {

  cb();

});

As you can see, none of the callbacks are executed until after the loop is completed. Since the loop never halts, eventually the vm will run out of space to store callbacks.

answered yesterday

Joel Cornett

17.9k44270

answered yesterday

Joel Cornett

17.9k44270

answered yesterday

Joel Cornett

17.9k44270

answered yesterday

Joel Cornett

17.9k44270

add a comment |

edited yesterday

answered yesterday

Nikita Umnov

1544

New contributor

add a comment |

edited yesterday

answered yesterday

Nikita Umnov

1544

New contributor

add a comment |

edited yesterday

answered yesterday

Nikita Umnov

1544

New contributor

edited yesterday

answered yesterday

Nikita Umnov

1544

New contributor

edited yesterday

answered yesterday

Nikita Umnov

1544

New contributor

answered yesterday

Nikita Umnov

1544

answered yesterday

Nikita Umnov

1544

New contributor

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add a comment |

In your particular example it decrements the i and then runs the async code like:

let i = 3;



while (i) {

  i--; // <---------------------

  (async () => {            // |

    await Promise.resolve();// |

    console.log(i);         // |

  })();                     // |

 // >---------------------------

}

Regarding your third snippet, it will never decrease the i value and so loop runs forever and thus crashes application:

let i = 3;

while (i) {

  (async () => {

    await Promise.resolve(); // await and resolve >-----------

    // the following code doesn't run after it resolves   // |

    console.log(i);                                       // |

    i--;                                                  // |

  })();                                                   // |

  // out from the (async() => {})() <-------------------------

}

edited yesterday

answered yesterday

Bhojendra Rauniyar

53.1k2081135

Not really, If you would remove the await Promise.resolve it would log correctly.

– Jonas Wilms
yesterday

@Bhojendra Rauniyar Can you please check this third snippet?

– Ahmed Karaman
yesterday

@JonasWilms Does what you say mean that if we have an async function without an await in its body that it will be blocking and run synchronously like any other function?

– Ahmed Karaman
yesterday

2

the asynchronous code runs in background this is incorrect. The async code is deferred, and since event loop is busy with infinite while loop the async code never runs. if it was in background, the output numbers would be random but the i would be equal to zero eventually.

– meze
yesterday

1

@BhojendraRauniyar JavaScript is single-threaded, so there is no “background”. Only one chunk of code can run at one time. I’m fuzzing over some of the details here, but there is a single event loop that dequeues a pending callback and runs it to completion. In order to prevent blocking (such as waiting for a timer or a network request), code is broken up into smaller callbacks in order to give competing events their chance to run in the single thread. await is just syntactic sugar for “schedule a callback to run after the thing we’re waiting on is available”.

– Joel Cornett
yesterday

|
show 4 more comments

In your particular example it decrements the i and then runs the async code like:

let i = 3;



while (i) {

  i--; // <---------------------

  (async () => {            // |

    await Promise.resolve();// |

    console.log(i);         // |

  })();                     // |

 // >---------------------------

}

Regarding your third snippet, it will never decrease the i value and so loop runs forever and thus crashes application:

let i = 3;

while (i) {

  (async () => {

    await Promise.resolve(); // await and resolve >-----------

    // the following code doesn't run after it resolves   // |

    console.log(i);                                       // |

    i--;                                                  // |

  })();                                                   // |

  // out from the (async() => {})() <-------------------------

}

edited yesterday

answered yesterday

Bhojendra Rauniyar

53.1k2081135

Not really, If you would remove the await Promise.resolve it would log correctly.

– Jonas Wilms
yesterday

@Bhojendra Rauniyar Can you please check this third snippet?

– Ahmed Karaman
yesterday

@JonasWilms Does what you say mean that if we have an async function without an await in its body that it will be blocking and run synchronously like any other function?

– Ahmed Karaman
yesterday

2

the asynchronous code runs in background this is incorrect. The async code is deferred, and since event loop is busy with infinite while loop the async code never runs. if it was in background, the output numbers would be random but the i would be equal to zero eventually.

– meze
yesterday

1

@BhojendraRauniyar JavaScript is single-threaded, so there is no “background”. Only one chunk of code can run at one time. I’m fuzzing over some of the details here, but there is a single event loop that dequeues a pending callback and runs it to completion. In order to prevent blocking (such as waiting for a timer or a network request), code is broken up into smaller callbacks in order to give competing events their chance to run in the single thread. await is just syntactic sugar for “schedule a callback to run after the thing we’re waiting on is available”.

– Joel Cornett
yesterday

|
show 4 more comments

In your particular example it decrements the i and then runs the async code like:

let i = 3;



while (i) {

  i--; // <---------------------

  (async () => {            // |

    await Promise.resolve();// |

    console.log(i);         // |

  })();                     // |

 // >---------------------------

}

Regarding your third snippet, it will never decrease the i value and so loop runs forever and thus crashes application:

let i = 3;

while (i) {

  (async () => {

    await Promise.resolve(); // await and resolve >-----------

    // the following code doesn't run after it resolves   // |

    console.log(i);                                       // |

    i--;                                                  // |

  })();                                                   // |

  // out from the (async() => {})() <-------------------------

}

edited yesterday

answered yesterday

Bhojendra Rauniyar

53.1k2081135

In your particular example it decrements the i and then runs the async code like:

let i = 3;



while (i) {

  i--; // <---------------------

  (async () => {            // |

    await Promise.resolve();// |

    console.log(i);         // |

  })();                     // |

 // >---------------------------

}

Regarding your third snippet, it will never decrease the i value and so loop runs forever and thus crashes application:

let i = 3;

while (i) {

  (async () => {

    await Promise.resolve(); // await and resolve >-----------

    // the following code doesn't run after it resolves   // |

    console.log(i);                                       // |

    i--;                                                  // |

  })();                                                   // |

  // out from the (async() => {})() <-------------------------

}

edited yesterday

answered yesterday

Bhojendra Rauniyar

53.1k2081135

edited yesterday

answered yesterday

Bhojendra Rauniyar

53.1k2081135

answered yesterday

Bhojendra Rauniyar

53.1k2081135

answered yesterday

Bhojendra Rauniyar

53.1k2081135

Not really, If you would remove the await Promise.resolve it would log correctly.

– Jonas Wilms
yesterday

@Bhojendra Rauniyar Can you please check this third snippet?

– Ahmed Karaman
yesterday

@JonasWilms Does what you say mean that if we have an async function without an await in its body that it will be blocking and run synchronously like any other function?

– Ahmed Karaman
yesterday

2

the asynchronous code runs in background this is incorrect. The async code is deferred, and since event loop is busy with infinite while loop the async code never runs. if it was in background, the output numbers would be random but the i would be equal to zero eventually.

– meze
yesterday

1

@BhojendraRauniyar JavaScript is single-threaded, so there is no “background”. Only one chunk of code can run at one time. I’m fuzzing over some of the details here, but there is a single event loop that dequeues a pending callback and runs it to completion. In order to prevent blocking (such as waiting for a timer or a network request), code is broken up into smaller callbacks in order to give competing events their chance to run in the single thread. await is just syntactic sugar for “schedule a callback to run after the thing we’re waiting on is available”.

– Joel Cornett
yesterday

|
show 4 more comments

Not really, If you would remove the await Promise.resolve it would log correctly.

– Jonas Wilms
yesterday

@Bhojendra Rauniyar Can you please check this third snippet?

– Ahmed Karaman
yesterday

@JonasWilms Does what you say mean that if we have an async function without an await in its body that it will be blocking and run synchronously like any other function?

– Ahmed Karaman
yesterday

2

the asynchronous code runs in background this is incorrect. The async code is deferred, and since event loop is busy with infinite while loop the async code never runs. if it was in background, the output numbers would be random but the i would be equal to zero eventually.

– meze
yesterday

1

@BhojendraRauniyar JavaScript is single-threaded, so there is no “background”. Only one chunk of code can run at one time. I’m fuzzing over some of the details here, but there is a single event loop that dequeues a pending callback and runs it to completion. In order to prevent blocking (such as waiting for a timer or a network request), code is broken up into smaller callbacks in order to give competing events their chance to run in the single thread. await is just syntactic sugar for “schedule a callback to run after the thing we’re waiting on is available”.

– Joel Cornett
yesterday

Not really, If you would remove the await Promise.resolve it would log correctly.

– Jonas Wilms
yesterday

@Bhojendra Rauniyar Can you please check this third snippet?

– Ahmed Karaman
yesterday

@JonasWilms Does what you say mean that if we have an async function without an await in its body that it will be blocking and run synchronously like any other function?

– Ahmed Karaman
yesterday

the asynchronous code runs in background this is incorrect. The async code is deferred, and since event loop is busy with infinite while loop the async code never runs. if it was in background, the output numbers would be random but the i would be equal to zero eventually.

– meze
yesterday

@BhojendraRauniyar JavaScript is single-threaded, so there is no “background”. Only one chunk of code can run at one time. I’m fuzzing over some of the details here, but there is a single event loop that dequeues a pending callback and runs it to completion. In order to prevent blocking (such as waiting for a timer or a network request), code is broken up into smaller callbacks in order to give competing events their chance to run in the single thread. await is just syntactic sugar for “schedule a callback to run after the thing we’re waiting on is available”.

– Joel Cornett
yesterday

|
show 4 more comments

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