-1

I need to multiply two numbers in JavaScript, but I need to do without using the multiplication operator "*". Is it possible?

function a(b,c){
    return b*c;
} // note:need to do this without the "*" operator
4

Yes. Because multiplication is just addition done multiple times. Also have meaningful signatures for methods instead of using single alphabets.

function multiply(num, times){
   // TODO what if times is zero
   // TODO what if times is negative
   var n = num;
   for(var i = 1; i < times; i++)
      num += n; // increments itself
   return num;
} 
  • not correct 5 * 5 = 25; in you case it will be on first step 5 + 5 = 10; and on second step 10 + 10; – kpblc Apr 1 '15 at 8:19
  • @kpblc oh yeah. Thanks. Edited – Amit Joki Apr 1 '15 at 8:20
  • and now i can push +1 to you) – kpblc Apr 1 '15 at 8:38
  • 2
    Explaining the downvote is both good for me and my code as both gets improved. – Amit Joki Apr 1 '15 at 8:41
  • @ShaikRasool why do you think I know it? – Amit Joki Apr 1 '15 at 9:11
3

a=(b,c)=>Math.round(b/(1/c))

  • 1
    While this code may answer the question, providing additional context regarding why and/or how this code answers the question improves its long-term value. – dferenc Feb 10 '18 at 19:59
  • dferenc, I believe it's pretty much straightforward except maybe round method — I used it in order to get sane and accurate result e.g. (since 0.1 + 0.2 !== 0.3) – daGo Feb 11 '18 at 10:46
  • 1
    It is a great solution indeed, and I did not flag it or anything (note: code only answers always go to review queue…). However, I guess even a simple arrow function can be something not trivial for someone who just started to learn javascript. – dferenc Feb 11 '18 at 11:42
  • it's also not trivial for people not familiar with/rusty with reciprocals. – thatpaintingelephant Apr 19 '18 at 22:21
2

You need to be able to handle negatives and zeros. Other above answers don't help here. There are different ways. One relatively messy way could be ifs:

function multiply(num1, num2) {
  var sum = 0;
  for (var i = 0; i < Math.abs(num2); i++) {
    sum += num1;
  }

  if (num1 < 0 && num2 < 0) {
    return Math.abs(sum);
  } else if (num1 < 0 || num2 < 0 ) {
    return -sum;
  } else {
    return sum;
  }
}
0

repeat() method of string can be used to find multiplication of two numbers.

var a = 3;
var b = 4;
console.log("c".repeat(a).repeat(b).length)
log: 12

It is repeating c, a times=> 'ccc' and then whole string b times=> 'cccccccccccc', length of the final string will be a*b;

This is similar to loop approach. This approach is limited to positive and integer numbers only.

0

function multiply(num1, num2) {  
  let num = 0;
  // Check whether one or both nums are negative
  let flag = false;
  if(num1 < 0 && num2 < 0){
    flag = true;
    // Make both positive numbers
    num1 = Math.abs(num1);
    num2 = Math.abs(num2);
  }else if(num1 < 0 || num2 < 0){
    flag = false;
    // Make the negative number positive & keep in num2
    if(num1 < 0){
      temp = num2;
      num2 = Math.abs(num1);
      num1 = temp;
    }else{
      num2 = Math.abs(num2);
    }
  }else{
    flag = true;
  }
  
  let product = 0;
  while(num < num2){
    product += num1;
    num += 1;
  }

  // Condition satisfy only when 1 num is negative
  if(!flag){
    return -product;

  }
  return product;
}

console.log(multiply(-2,-2));

  • Please add more context to your code, what are you trying to achieve? What is not happening? – Jean-Baptiste Aug 5 at 1:16
-1

Is this from some programming puzzle or interview question? :)

Since multiplication is repeated addition, you probably want a loop which adds one of the factors to the result for each count in the other factor.

-1
function multiply(a, b) {
  let answer = a
  for(var i = 0; i < b - 1; i++) {
    answer += a
  }
  return answer
}

Breakdown:

  1. multiply(6, 3) - our a is 6 and b is 3 before multiplying
  2. answer is 6 //
  3. iteration begins
    • answer is now 12, i is now 1 // i is now 1
    • answer is now 18, i is now 2
    • inner loop ends, as i is no longer less than (b - 1)
  4. then we return answer which would be 18
-2
 $a=5;
 $b=3;
 for($i=0;$i<$b;$i++){
 $c +=$a; 

  }

 echo $c;

This simple and easy way in php i hope this is so easy and simple

  • 1
    The question is about JavaScript, not PHP. – John Montgomery Oct 23 at 17:49
  • function multiply(a, b){ let answer = a for(var i = 0; i < b - 1; i++){ answer += a } return answer } now happy this is in javascript .. – Rakesh kumar Oad Oct 24 at 18:30

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