2

I'm trying to square each number in an array and my original code didn't work. I looked up another way to do it, but I'd like to know WHY the original code didn't work.

Original code:

function(arr) {

    ret= [];            

    for (var i = 0, len = arr.length; i < len; i++) {
        root = Math.sqrt(arr[i]);
        ret.push(root);
    }

    return ret;
}

Working Code:

function(arr) {

    ret= [];

    for (var i = 0, len = arr.length; i < len; i++) {
        ret.push(arr[i] * arr[i]);
    }

    return ret;     
}
3
  • 1
    Well, why didn't it work? (Describe "didn't work".) Note that sqrt is the "square root of", which is different from "the square of". Observing a simple Math.sqrt(10) vs 10 * 10 should have indicated exactly what "didn't work". Commented Oct 28, 2013 at 21:15
  • 5
    Math.sqrt - is square root. See Math.pow Commented Oct 28, 2013 at 21:16
  • OP used the word root, so it seems like it was intentional.
    – kon psych
    Commented May 26, 2014 at 1:59

18 Answers 18

20

Math.sqrt gives you square root not square of a number. Use Math.pow with second argument of 2.

17

How about that ?

function (arr) {
  return arr.map(function (x) {
    return Math.pow(x, 2);
  });
}

Array.map(func) applies the function to each element of the map and returns the array composed of the new values. Math.pow(base, exp) raises base to its exp power.

1
  • Now it can be: arr.map(x => Math.pow(x,2))
    – Farhan
    Commented Feb 22, 2021 at 19:34
4

The first sample is taking the square root, not squaring the value. To square you want to use

Math.pow(arr[i],2);
2

Here is how it can be done, using a simple method called .forEach

var numbers = [1,2,3,4,5,6,7,8];
numbers.forEach(function(element, index, array){
    array[index] = element* element;
});
console.log(numbers);
2

Best way to Square each number in an array in javascript

Array.prototype.square = function () {
    var arr1 = [];
    this.map(function (obj) {
        arr1.push(obj * obj);
    });
    return arr1;
}
arr = [1, 6, 7, 9];
console.log(arr.square());
arr1 = [4, 6, 3, 2];
console.log(arr1.square())
2

Here is the function write with ES6 Exponentiation (**):

let arr = [1, 6, 7, 9];
let result = arr.map(x => x ** 2);
console.log(result);

1

The original code is taking the square root of the value. The second version is multiplying the value with itself (squaring it). These are inverse operations

1

I hope this answers your question

const numbers = [1,2,3,4,5,6,7,8,9];
for(let squareIt of numbers){
    console.log(Math.pow(squareIt, 2));
}
Resolved by kiss-barnabas

0

Use embedded for , for pretty syntax :

      var arr=[1,2,3,4] ;
      [for (i of arr) i*i ]; 

      //OUT : > [1,4,9,16]
3
  • 1
    While this may answer the question, a bit more context would be helpful. Commented Dec 16, 2015 at 22:45
  • This is not valid JavaScript
    – Mulan
    Commented Nov 16, 2017 at 15:13
  • Am I missing something?
    – Mulan
    Commented Nov 16, 2017 at 22:41
0

Declarative Programming :)

let list = [1,2,3,4,5,6,7,8,9,10];
let result = list.map(x => x*x);
console.log(result);

0

Avoid unnecessary loops, use map()function

let array = [1,2,3,4,5];
function square(a){            // function to find square
  return a*a;
}
arrSquare = array.map(square);    //array is the array of numbers and arrSquare will be an array of same length with squares of every number

You can make the code shorter like this:

let array = [1,2,3,4,5];
arrSquare = array.map(function (a){return a*a;});
0
let arr = [1, 2, 3];
let mapped = arr.map(x => Math.pow(x, 2));
console.log(mapped);
3
  • Do we use Math.pow? Commented Jan 20, 2020 at 17:54
  • See "Explaining entirely code-based answers". While this might be technically correct it doesn't explain why it solves the problem or should be the selected answer. We should educate in addition to help solve the problem. Commented Jan 20, 2020 at 21:55
  • It's just one of many options for solving this. Of course we can solve it differently :)
    – Ad_
    Commented Jan 21, 2020 at 16:51
0

This should work.

let kiss=[3,4,5,6];
let arra=[];
for(o in kiss){
   arra.push(kiss[o]*kiss[o])
  

}
console.log(kiss=arra)
0
using array square root of the first number is equal to the cube root of the second number

function SquareAndCube(arr) {
    let newarr = [];
    for(i=0 ; i<arr.length; i++) {
        if(Math.sqrt(arr[0])/2 === Math.cbrt(arr[1])/2  ) {
            return true;
       } else return false;
    }
}
console.log(SquareAndCube([36, 215]))
0

This should work with the .map() method:

const number = [2, 6, 6, 2, 8, 10];
const squareNumber = number.map(num => num*num);
console.log(squareNumber);

-1
function squareDigits(num){
  //may the code be with you
  var output = [];
  var splitNum = num.toString();
   for(var i = 0; i < splitNum.length; i++){
     output.push(splitNum.charAt(i))
    }

   function mapOut(){
    var arr = output;
    return arr.map(function(x){
        console.log(Math.pow(x, 2));
    })
   }
   mapOut();
}

squareDigits(9819);

This should work

2
  • I think you misunderstood the question. You're squaring each digit of the input, that's not what the OP asked for. Commented Mar 6, 2017 at 13:17
  • @PatrickHund The title clearly shows "Square each number in an array in javascript". I assumed each number to be the digit of the input. Commented Mar 6, 2017 at 13:30
-1

This will work

const marr = [1,2,3,4,5,6,7,8,9,10]; console.log(marr.map((x) => Math.pow(x, 2)));

-1
function map(square,a) {
  var result = [];
  for(var i=0;i<=a.length-1;i++)
   result[i]=square(a[i]);
  return result;
}

var square = function(x) {
   return x*x;
}

var value=[1,2,3,4];
var final= map(square,value);
console.log(final);

You can also try the above code snippet.

1
  • Welcome to SO! Please, edit your answer in order to correct formatting of the code. Commented Nov 29, 2018 at 7:38

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