1

All methods inside a class a will call a method b,How to call c() or d() automatically calls b() without writing b() in c() or d()

class a {
  b() {}
  c() {
    b();
    console.log("123")
  }
  d() {
    b();
    console.log("123")
  }
}

3
  • 4
    What you need. Please explain it clearly Apr 22, 2019 at 4:05
  • what is the purpose of doing that? Apr 22, 2019 at 4:17
  • It is very troublesome to write b() in each method.
    – 潘夏开
    Apr 22, 2019 at 4:30

2 Answers 2

3

You can do this by returning a proxy from a's constructor that intercepts name lookups and tests whether they are functions. If they are, call b (unless you actually called b):

class a {
    constructor(){
        const handler = {
            get(target, propKey, receiver) {
                const targetValue = Reflect.get(target, propKey, receiver);
                
                if (typeof targetValue === 'function') {                     
                    return function (...args) {
                        // don't recursively call b
                        if (propKey !=='b') target.b()
                        return targetValue.apply(this, args); // call original function
                    }
                } else {
                    return targetValue;
                }
            }
        };
        return new Proxy(this, handler);           
    }
    b(){
        console.log('b called')
    }
    c(arg){
     console.log("c called with ", arg)
    }
    d(){
     console.log("d called")
    }
 }
 


 let instance = new a
 
 instance.c("hello")
 instance.d() 
 instance.b()  // only called once  

 // still works for methods set after the fact:
 a.prototype.g = function(){
     console.log("g called")
 }

 instance.g()  // still calls b

0
1

You could traverse the .prototype property of a, and overwrite each method with one that first calls b.

class a {
  b() { console.log("called b") }
  c() {
    console.log("called c")
  }
  d() {
    console.log("called d")
  }
}
for (const n of Object.getOwnPropertyNames(a.prototype)) {
  const f = a.prototype[n];
  if (typeof f === "function" && n !== "b") {
    a.prototype[n] = function(...args) {
      this.b();
      return f.apply(this, args);
    }
  }
}

var aa = new a();
aa.c();
aa.d();

0

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.