133

I want to convert binary string in to digit E.g

var binary = "1101000" // code for 104
var digit = binary.toString(10); // Convert String or Digit (But it does not work !)
console.log(digit);

How is it possible? Thanks

10 Answers 10

250

The parseInt function converts strings to numbers, and it takes a second argument specifying the base in which the string representation is:

var digit = parseInt(binary, 2);

See it in action.

9
  • 1
    Is this still relevant? parseInt(101, 2) returns 5.
    – srph
    Mar 17 '15 at 10:28
  • 16
    @srph: That's not surprising, 101 in base 2 is 5 in base 10.
    – Jon
    Mar 17 '15 at 10:41
  • 3
    Ah, I see. I must have misunderstood what the parseInt. I thought it would convert the string from base 10 -> whatever (thinking like parseInt('5612', 2) would return its binary form ;).
    – srph
    Mar 17 '15 at 13:54
  • 1
    @baptx any method at all that returns a Number will fail for such high values (see this question and accepted answer). Checking the state of the art today, you should use BigInt (which is widely supported) instead. You can directly adapt this answer here by changing the implementation to explicitly use BigInt and the exponentiation operator ** instead of Math.pow, and it will work.
    – Jon
    Dec 8 '20 at 13:18
  • 1
    @baptx I made a fiddle here. I don't think that this let's say "extension" merits being included in the answer though.
    – Jon
    Dec 11 '20 at 15:54
23

ES6 supports binary numeric literals for integers, so if the binary string is immutable, as in the example code in the question, one could just type it in as it is with the prefix 0b or 0B:

var binary = 0b1101000; // code for 104
console.log(binary); // prints 104
13

Use the radix parameter of parseInt:

var binary = "1101000";
var digit = parseInt(binary, 2);
console.log(digit);
11

parseInt() with radix is a best solution (as was told by many):

But if you want to implement it without parseInt, here is an implementation:

  function bin2dec(num){
    return num.split('').reverse().reduce(function(x, y, i){
      return (y === '1') ? x + Math.pow(2, i) : x;
    }, 0);
  }
1
  • There is a reduceRight() function now. You may not need reverse() anymore.
    – ikhvjs
    Jul 13 at 6:49
8
var num = 10;

alert("Binary " + num.toString(2));   // 1010
alert("Octal " + num.toString(8));    // 12
alert("Hex " + num.toString(16));     // a

alert("Binary to Decimal " + parseInt("1010", 2));  // 10
alert("Octal to Decimal " + parseInt("12", 8));     // 10
alert("Hex to Decimal " + parseInt("a", 16));       // 10
2

I gathered all what others have suggested and created following function which has 3 arguments, the number and the base which that number has come from and the base which that number is going to be on:

changeBase(1101000, 2, 10) => 104

Run Code Snippet to try it yourself:

function changeBase(number, fromBase, toBase) {
    if (fromBase == 10)
        return (parseInt(number)).toString(toBase)
    else if (toBase == 10)
        return parseInt(number, fromBase);
    else {
        var numberInDecimal = parseInt(number, fromBase);
        return parseInt(numberInDecimal).toString(toBase);
    }
}

$("#btnConvert").click(function(){
    var number = $("#txtNumber").val(),
    fromBase = $("#txtFromBase").val(),
    toBase = $("#txtToBase").val();
    $("#lblResult").text(changeBase(number, fromBase, toBase));
});
#lblResult {
  padding: 20px;
}
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>
<input id="txtNumber" type="text" placeholder="Number" />
<input id="txtFromBase" type="text" placeholder="From Base" />
<input id="txtToBase" type="text" placeholder="To Base" />
<input id="btnConvert" type="button" value="Convert" />
<span id="lblResult"></span>

<p>Examples: <br />
  <em>110, 2, 10</em> => <em>6</em>; (110)<sub>2</sub> = 6<br />

  <em>2d, 16, 10</em> => <em>45</em>; (2d)<sub>16</sub> = 45<br />
  <em>45, 10, 16</em> => <em>2d</em>; 45 = (2d)<sub>16</sub><br />
  <em>101101, 2, 16</em> => <em>2d</em>; (101101)<sub>2</sub> = (2d)<sub>16</sub>
</p>

FYI: If you want to pass 2d as a hex number, you need to send it as a string so it goes like this: changeBase('2d', 16, 10)

1
  • 1
    Doesn't handle floating point numbers. 3.14159265,10,16 gives 3 Dec 13 '19 at 8:51
1
function binaryToDecimal(string) {
    let decimal = +0;
    let bits = +1;
    for(let i = 0; i < string.length; i++) {
        let currNum = +(string[string.length - i - 1]);
        if(currNum === 1) {
            decimal += bits;
        }
        bits *= 2;
    }
    console.log(decimal);
}
1

Building on the comments of @baptx, @Jon and @ikhvjs, the following should work with really large binary strings:

// ES10+
function bin2dec(binStr) {
    const lastIndex = binStr.length - 1;

    return Array.from(binStr).reduceRight((total, currValue, index) => (
        (currValue === '1') ? total + (BigInt(2) ** BigInt(lastIndex - index)) : total
    ), BigInt(0));
}

Or, the same using a for loop:

// ES10+
function bin2dec(binStr) {
    const lastIndex = binStr.length - 1;
    let total = BigInt(0);

    for (let i = 0; i < binStr.length; i++) {
        if (binStr[lastIndex - i] === '1') {
            total += (BigInt(2) ** BigInt(i));
        }
    }

    return total;
}

For example:

console.log(bin2dec('101')); // 5n

console.log(bin2dec('110101')); // 53n

console.log(bin2dec('11111111111111111111111111111111111111111111111111111')); // 9007199254740991n

console.log(bin2dec('101110110001101000111100001110001000101000101011001100000011101')); // 6741077324010461213n

Wrote a blog post about it for those who wish to learn more.

-1

Another implementation just for functional JS practicing could be

var bin2int = s => Array.prototype.reduce.call(s, (p,c) => p*2 + +c)
console.log(bin2int("101010"));
where +c coerces String type c to a Number type value for proper addition.

-2

Slightly modified conventional binary conversion algorithm utilizing some more ES6 syntax and auto-features:

  1. Convert binary sequence string to Array (assuming it wasnt already passed as array)

  2. Reverse sequence to force 0 index to start at right-most binary digit as binary is calculated right-left

  3. 'reduce' Array function traverses array, performing summation of (2^index) per binary digit [only if binary digit === 1] (0 digit always yields 0)

NOTE: Binary conversion formula:

{where d=binary digit, i=array index, n=array length-1 (starting from right)}

n
∑ (d * 2^i)
i=0

let decimal = Array.from(binaryString).reverse().reduce((total, val, index)=>val==="1"?total + 2**index:total, 0);  

console.log(`Converted BINARY sequence (${binaryString}) to DECIMAL (${decimal}).`);