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I have a question.

In the formal web page of google.script run, they saids that you can call "any server-side function" from client side using google.script.run.

In the below gs file, I defined function "hoge" using normal function expression.(the "this!" row)

If I execute this situation, output is randomly 1-4 numbers displayed on browser

By the way, I tried to change the define style of function "hoge". I created 3 pattern using anonymous function. (all are called from client side using "hoge(vv)")

  1. var hoge = function hoge(x){return x;}; (both side using "hoge" keyword) → then this worked same as normal function definition style.
  2. var hoge = function (x){return x;}; (only left using "hoge" keyword) → error
  3. var hogeNot = function hoge(x){return x;}; (only right using "hoge" keyword) → error

Q. Why, "1" work well, but "2" is error.

Thank you.

// gs file

var x;

function doGet() {
    return HtmlService.createTemplateFromFile("hello").evaluate(); // テンプレートオブジェクトの取得
}

function hoge(x){ // this!
  return x;
}
// html file

<!DOCTYPE html>
<html>
  <head>
    <base target="_top">
  </head>
  <body>
   <p id="wi">hello</p>
    <script>
    function success(get){
      document.getElementById("wi").insertAdjacentHTML("afterend","<p>" + get + "</p>");
    }

    for (var v=1; v <= 4; ++v){ // aaを4回呼ぶ
      aa(v);
    }

    async function aa(vv){
      await google.script.run.withSuccessHandler(success).hoge(vv);
    }
    </script>
  </body>
</html>
1

Q. Why, "1" work well, but "2" is error.

For this question, how about this answer? Please think of this as just one of several possible answers.

Experiment:

At Google Apps Script, it seems that when the function can be recognized with the script editor and the function can be seen at this, the function can be directly run. For checking whether the function is included in this, the following script can be used.

Sample script:

function myFunction() {
  for (var i in this) {
    if (i == "hoge") {
      Logger.log("%s, %s", i, typeof this[i])
    }
  }
}

About var hoge = function hoge(x){return x;};

In this case, the function of hoge can be seen at the script editor and this function can be directly run by the script editor. And also, above script returns hoge, function.

About var hoge = function (x){return x;};

In this case, the function of hoge cannot be seen at the script editor while above script returns hoge, function. And hoge cannot be directly run because this cannot be seen at the script editor.

When this function of hoge is run from other function, the script works.

About var hogeNot = function hoge(x){return x;};

In this case, the function of hogeNot cannot be seen at the script editor. But the function of hoge can be seen at the script editor. When the function of hoge is run by the script editor, an error like the function is not found occurs. At the above script, i == "hoge" is always false. But when i == "hogeNot" is used for the if statement, hogeNot, function is returned.

When this function of hogeNot is run from other function, the script works. But when this function of hoge is run from other function, an error occurs.

Result:

From above situations, it is considered that in order to run with google.script.run, it is required to be able to directly run the function at the script editor. I think that this might be the specification of Google side.

If I misunderstood your question and this was not the direction you want, I apologize.

3
  • Thanks a lots for your answer. Thanks to your answer, I could understand why couldn't call function in gs using google.script.run. – 容易いtayasui Dec 18 '19 at 9:17
  • @容易いtayasui Welcome. Thank you for letting me know. I'm glad your issue was resolved. If your question was solved, please push an accept button. Other people who have the same issue with you can also base your question as a question which can be solved. And I think that your issue and solution will be useful for them. If you don't find the button, feel free to tell me. stackoverflow.com/help/accepted-answer – Tanaike Dec 18 '19 at 23:22
  • @容易いtayasui Thank you for your response. – Tanaike Dec 19 '19 at 1:15

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