178

JavaScript converts a large INT to scientific notation when the number becomes large. How can I prevent this from happening?

  • 1
    Do you want 1E21 to display as '1000000000000000000000'? Are you concerned with how the number is displayed, or how it is stored? – outis Nov 6 '09 at 6:19
  • 3
    i am concerned about how it is displayed: I have a document.write(myvariable) command – chris Nov 6 '09 at 6:20
  • 1
    i need the number as part of a URL – chris Nov 6 '09 at 21:43
  • 3
    @outis: Human users are not the only ones who want to read numbers. It seems D3 will throw an exception when encountering a translate transformation that contains coordinates in scientific notation. – O. R. Mapper Sep 7 '17 at 9:05
  • 2
    There is still a use for this when you are dealing with numbers up to a certain size. Scientific notation will be hard to read for users who don't know scientific notation too after all. – hippietrail Sep 15 '17 at 3:08

22 Answers 22

106

There's Number.toFixed, but it uses scientific notation if the number is >= 1e21 and has a maximum precision of 20. Other than that, you can roll your own, but it will be messy.

function toFixed(x) {
  if (Math.abs(x) < 1.0) {
    var e = parseInt(x.toString().split('e-')[1]);
    if (e) {
        x *= Math.pow(10,e-1);
        x = '0.' + (new Array(e)).join('0') + x.toString().substring(2);
    }
  } else {
    var e = parseInt(x.toString().split('+')[1]);
    if (e > 20) {
        e -= 20;
        x /= Math.pow(10,e);
        x += (new Array(e+1)).join('0');
    }
  }
  return x;
}

Above uses cheap-'n'-easy string repetition ((new Array(n+1)).join(str)). You could define String.prototype.repeat using Russian Peasant Multiplication and use that instead.

This answer should only be applied to the context of the question: displaying a large number without using scientific notation. For anything else, you should use a BigInt library, such as BigNumber, Leemon's BigInt, or BigInteger. Going forward, the new native BigInt (note: not Leemon's) should be available; Chromium and browsers based on it (Chrome, the new Edge [v79+], Brave) and Firefox all have support; Safari's support is underway.

Here's how you'd use BigInt for it: BigInt(n).toString()

Example:

const n = 13523563246234613317632;
console.log("toFixed (wrong): " + n.toFixed());
console.log("BigInt (right):  " + BigInt(n).toString());

Beware, though, that any integer you output as a JavaScript number (not a BigInt) that's more than 15-16 digits (specifically, greater than Number.MAX_SAFE_INTEGER + 1 [9,007,199,254,740,992]) may be be rounded, because JavaScript's number type (IEEE-754 double-precision floating point) can't precisely hold all integers beyond that point. As of Number.MAX_SAFE_INTEGER + 1 it's working in multiples of 2, so it can't hold odd numbers anymore (and similiarly, at 18,014,398,509,481,984 it starts working in multiples of 4, then 8, then 16, ...).

Consequently, if you can rely on BigInt support, output your number as a string you pass to the BigInt function:

const n = BigInt("YourNumberHere");

Example:

const n1 = BigInt(18014398509481985); // WRONG, will round to 18014398509481984
                                      // before `BigInt` sees it
console.log(n1.toString() + " <== WRONG");
const n2 = BigInt("18014398509481985"); // RIGHT, BigInt handles it
console.log(n2.toString() + " <== Right");

| improve this answer | |
  • Your solution gives me a very different result for 2^1000 than wolframalpha. Any pointers? – Shane Reustle Aug 10 '11 at 22:50
  • 4
    @Shane: This Q&A is about displaying floating point numbers as base-10 integers and doesn't address numbers that can't be represented in a floating point format (which will arise when converting to base 10). You need a JS bigint library, as is mentioned in the final line. – outis Aug 11 '11 at 1:05
  • 1
    @PeterOlson: look like I left out a Math.abs. Thanks for the heads-up. – outis Mar 23 '12 at 17:38
  • 1
    toFixed(Number.MAX_VALUE) == Number.MAX_VALUE should return true then, but it doesn't... – manonthemat Jan 17 '17 at 22:02
  • 3
    Actually this code as it is does not work for very small negative numbers: toFixed( -1E-20 ) -> "0.0000000000000000000.09999999999999999" – davidthings Jun 15 '17 at 0:37
39

I know this is an older question, but shows recently active. MDN toLocaleString

const myNumb = 1000000000000000000000;
console.log( myNumb ); // 1e+21
console.log( myNumb.toLocaleString() ); // "1,000,000,000,000,000,000,000"
console.log( myNumb.toLocaleString('fullwide', {useGrouping:false}) ); // "1000000000000000000000"

you can use options to format the output.

Note:

Number.toLocaleString() rounds after 16 decimal places, so that...

const myNumb = 586084736227728377283728272309128120398;
console.log( myNumb.toLocaleString('fullwide', { useGrouping: false }) );

...returns...

586084736227728400000000000000000000000

This is perhaps undesirable if accuracy is important in the intended result.

| improve this answer | |
  • 2
    This is the foolproof answer. – Aria Oct 27 '18 at 13:58
  • This doesn't work in PhantomJS 2.1.1 - it still ends up in scientific notation. Fine in Chrome. – Egor Nepomnyaschih Mar 1 '19 at 14:43
  • 1
    This doesn't appear to work for very small decimals: var myNumb = 0.0000000001; console.log( myNumb.toLocaleString('fullwide', { useGrouping: false }) ); – eh1160 Aug 26 '19 at 14:15
  • One can set maximumSignificantDigits option (max 21) to format very small decimals, ie: js console.log( myNumb.toLocaleString('fullwide', { useGrouping: true, maximumSignificantDigits:6}) ); – Sir. MaNiAl Nov 26 '19 at 2:56
19

For small number, and you know how many decimals you want, you can use toFixed and then use a regexp to remove the trailing zeros.

Number(1e-7).toFixed(8).replace(/\.?0+$/,"") //0.000
| improve this answer | |
  • 24
    question literallly asked for large number – swyx Aug 11 '17 at 8:42
  • Be careful to avoid 0 as an argument of toFixed call - it will end up in erasing significant trailing zeros: (1000).toFixed(0).replace(/\.?0+$/,"") // 1, not 1000 – Egor Nepomnyaschih Mar 1 '19 at 14:33
15

one more possible solution:

function toFix(i){
 var str='';
 do{
   let a = i%10;
   i=Math.trunc(i/10);
   str = a+str;
 }while(i>0)
 return str;
}
| improve this answer | |
  • 7
    This doesn't preserve the original value...for instance 31415926535897932384626433832795 becomes 31415926535897938480804068462624 – zero_cool Feb 2 '18 at 3:39
  • Not positive but likely to do with how JavaScript handles large numbers. – zero_cool Jan 13 '19 at 1:33
  • @domsson Basically because IEEE floating point numbers arithmetic apply. numbers in Javascript are actually represented as floating point number as well as "decimal numbers", there is no native "integer exact type". You can read more here : medium.com/dailyjs/javascripts-number-type-8d59199db1b6 – Pac0 Jan 28 '19 at 13:58
  • @zero_cool Any number greater than Number.MAX_SAFE_INTEGER is likely to suffer this problem. – Pac0 Jan 28 '19 at 14:01
10

Here is my short variant of Number.prototype.toFixed method that works with any number:

Number.prototype.toFixedSpecial = function(n) {
  var str = this.toFixed(n);
  if (str.indexOf('e+') === -1)
    return str;

  // if number is in scientific notation, pick (b)ase and (p)ower
  str = str.replace('.', '').split('e+').reduce(function(p, b) {
    return p + Array(b - p.length + 2).join(0);
  });
  
  if (n > 0)
    str += '.' + Array(n + 1).join(0);
  
  return str;
};

console.log( 1e21.toFixedSpecial(2) );       // "1000000000000000000000.00"
console.log( 2.1e24.toFixedSpecial(0) );     // "2100000000000000000000000"
console.log( 1234567..toFixedSpecial(1) );   // "1234567.0"
console.log( 1234567.89.toFixedSpecial(3) ); // "1234567.890"

| improve this answer | |
  • if you compare Number.MAX_VALUE.toFixedSpecial(2) to Number.MAX_VALUE, you'll see that they're not equal. – manonthemat Jan 18 '17 at 19:06
  • 4
    @manonthemat Of course they are not equal, because the first one is a formatted string and the second one is a Number. If you cast the first one to a Number, you will see that they are absolutely equal: jsfiddle.net/qd6hpnyx/1. You can take your downvote back :P – VisioN Jan 18 '17 at 22:50
  • fair enough.... I just noticed I can't, unless you're editing your answer. – manonthemat Jan 18 '17 at 23:03
  • Better to also replace any trailing .0 with empty string. – vsync Sep 11 '18 at 7:14
  • I get a somewhat strange value when I try console.log(2.2e307.toFixedSpecial(10)). I mean... I get several trailing zeros. Upvoting anyway because this seems closest to what I need. – peter.petrov Oct 8 '19 at 20:42
6

The following solution bypasses the automatic exponentional formatting for very big and very small numbers. This is outis's solution with a bugfix: It was not working for very small negative numbers.

function numberToString(num)
{
    let numStr = String(num);

    if (Math.abs(num) < 1.0)
    {
        let e = parseInt(num.toString().split('e-')[1]);
        if (e)
        {
            let negative = num < 0;
            if (negative) num *= -1
            num *= Math.pow(10, e - 1);
            numStr = '0.' + (new Array(e)).join('0') + num.toString().substring(2);
            if (negative) numStr = "-" + numStr;
        }
    }
    else
    {
        let e = parseInt(num.toString().split('+')[1]);
        if (e > 20)
        {
            e -= 20;
            num /= Math.pow(10, e);
            numStr = num.toString() + (new Array(e + 1)).join('0');
        }
    }

    return numStr;
}

// testing ...
console.log(numberToString(+0.0000000000000000001));
console.log(numberToString(-0.0000000000000000001));
console.log(numberToString(+314564649798762418795));
console.log(numberToString(-314564649798762418795));

| improve this answer | |
2

This is what I ended up using to take the value from an input, expanding numbers less than 17digits and converting Exponential numbers to x10y

// e.g.
//  niceNumber("1.24e+4")   becomes 
// 1.24x10 to the power of 4 [displayed in Superscript]

function niceNumber(num) {
  try{
        var sOut = num.toString();
      if ( sOut.length >=17 || sOut.indexOf("e") > 0){
      sOut=parseFloat(num).toPrecision(5)+"";
      sOut = sOut.replace("e","x10<sup>")+"</sup>";
      }
      return sOut;

  }
  catch ( e) {
      return num;
  }
}
| improve this answer | |
2

The answers of others do not give you the exact number!
This function calculates the desired number accurately and returns it in the string to prevent it from being changed by javascript!
If you need a numerical result, just multiply the result of the function in number one!

function toNonExponential(value) {
    // if value is not a number try to convert it to number
    if (typeof value !== "number") {
        value = parseFloat(value);

        // after convert, if value is not a number return empty string
        if (isNaN(value)) {
            return "";
        }
    }

    var sign;
    var e;

    // if value is negative, save "-" in sign variable and calculate the absolute value
    if (value < 0) {
        sign = "-";
        value = Math.abs(value);
    }
    else {
        sign = "";
    }

    // if value is between 0 and 1
    if (value < 1.0) {
        // get e value
        e = parseInt(value.toString().split('e-')[1]);

        // if value is exponential convert it to non exponential
        if (e) {
            value *= Math.pow(10, e - 1);
            value = '0.' + (new Array(e)).join('0') + value.toString().substring(2);
        }
    }
    else {
        // get e value
        e = parseInt(value.toString().split('e+')[1]);

        // if value is exponential convert it to non exponential
        if (e) {
            value /= Math.pow(10, e);
            value += (new Array(e + 1)).join('0');
        }
    }

    // if value has negative sign, add to it
    return sign + value;
}
| improve this answer | |
  • Some additional information about this code only answer would probably be useful. – Pyves Jul 19 '17 at 8:22
  • Comments added to the function. – user1297556 Apr 5 '19 at 6:36
1

Use .toPrecision, .toFixed, etc. You can count the number of digits in your number by converting it to a string with .toString then looking at its .length.

| improve this answer | |
  • for some reason, toPrecision doesn't work. if you try: window.examplenum = 1352356324623461346, and then say alert(window.examplenum.toPrecision(20)), it doesn't pop up an alert – chris Nov 6 '09 at 6:05
  • actually it pops up sometimes showing scientific notation, and other times it doesn't pop up at all. what am i doing wrong? – chris Nov 6 '09 at 6:06
  • 18
    Neither of the suggestion methods work for large (or small) numbers. (2e64).toString() will return "2e+64", so .length is useless. – CodeManX Nov 5 '14 at 23:05
1

You can loop over the number and achieve the rounding

// functionality to replace char at given index

String.prototype.replaceAt=function(index, character) {
    return this.substr(0, index) + character + this.substr(index+character.length);
}

// looping over the number starts

var str = "123456789123456799.55";
var arr = str.split('.');
str = arr[0];
i = (str.length-1);
if(arr[1].length && Math.round(arr[1]/100)){
  while(i>0){
    var intVal = parseInt(str.charAt(i));

   if(intVal == 9){
      str = str.replaceAt(i,'0');
      console.log(1,str)
   }else{
      str = str.replaceAt(i,(intVal+1).toString()); 
      console.log(2,i,(intVal+1).toString(),str)
      break;
   }
   i--;
 }
}
| improve this answer | |
1

I tried working with the string form rather than the number and this seemed to work. I have only tested this on Chrome but it should be universal:

function removeExponent(s) {
    var ie = s.indexOf('e');
    if (ie != -1) {
        if (s.charAt(ie + 1) == '-') {
            // negative exponent, prepend with .0s
            var n = s.substr(ie + 2).match(/[0-9]+/);
            s = s.substr(2, ie - 2); // remove the leading '0.' and exponent chars
            for (var i = 0; i < n; i++) {
                s = '0' + s;
            }
            s = '.' + s;
        } else {
            // positive exponent, postpend with 0s
            var n = s.substr(ie + 1).match(/[0-9]+/);
            s = s.substr(0, ie); // strip off exponent chars            
            for (var i = 0; i < n; i++) {
                s += '0';
            }       
        }
    }
    return s;
}
| improve this answer | |
1

I think there may be several similar answers, but here's a thing I came up with

// If you're gonna tell me not to use 'with' I understand, just,
// it has no other purpose, ;( andthe code actually looks neater
// 'with' it but I will edit the answer if anyone insists
var commas = false;

function digit(number1, index1, base1) {
    with (Math) {
        return floor(number1/pow(base1, index1))%base1;
    }
}

function digits(number1, base1) {
    with (Math) {
        o = "";
        l = floor(log10(number1)/log10(base1));
        for (var index1 = 0; index1 < l+1; index1++) {
            o = digit(number1, index1, base1) + o;
            if (commas && i%3==2 && i<l) {
                o = "," + o;
            }
        }
        return o;
    }
}

// Test - this is the limit of accurate digits I think
console.log(1234567890123450);

Note: this is only as accurate as the javascript math functions and has problems when using log instead of log10 on the line before the for loop; it will write 1000 in base-10 as 000 so I changed it to log10 because people will mostly be using base-10 anyways.

This may not be a very accurate solution but I'm proud to say it can successfully translate numbers across bases and comes with an option for commas!

| improve this answer | |
1

Your question:

number :0x68656c6c6f206f72656f
display:4.9299704811152646e+23

You can use this: https://github.com/MikeMcl/bignumber.js

A JavaScript library for arbitrary-precision decimal and non-decimal arithmetic.

like this:

let ten =new BigNumber('0x68656c6c6f206f72656f',16);
console.log(ten.toString(10));
display:492997048111526447310191
| improve this answer | |
  • well, beware that bignumber.js cant go beyond 15 significant digits ... – Michael Heuberger Mar 29 '17 at 2:23
0

I know it's many years later, but I had been working on a similar issue recently and I wanted to post my solution. The currently accepted answer pads out the exponent part with 0's, and mine attempts to find the exact answer, although in general it isn't perfectly accurate for very large numbers because of JS's limit in floating point precision.

This does work for Math.pow(2, 100), returning the correct value of 1267650600228229401496703205376.

function toFixed(x) {
  var result = '';
  var xStr = x.toString(10);
  var digitCount = xStr.indexOf('e') === -1 ? xStr.length : (parseInt(xStr.substr(xStr.indexOf('e') + 1)) + 1);
  
  for (var i = 1; i <= digitCount; i++) {
    var mod = (x % Math.pow(10, i)).toString(10);
    var exponent = (mod.indexOf('e') === -1) ? 0 : parseInt(mod.substr(mod.indexOf('e')+1));
    if ((exponent === 0 && mod.length !== i) || (exponent > 0 && exponent !== i-1)) {
      result = '0' + result;
    }
    else {
      result = mod.charAt(0) + result;
    }
  }
  return result;
}

console.log(toFixed(Math.pow(2,100))); // 1267650600228229401496703205376

| improve this answer | |
  • @Oriol - yeah, you're right; I guess whatever I tried it with previously just worked out that way due to other factors. I'll remove that little note in my answer. – andi Jan 13 '17 at 6:18
  • 1
    doesn't work: toFixed(Number.MAX_VALUE) == Number.MAX_VALUE – manonthemat Jan 17 '17 at 22:05
0
function printInt(n) { return n.toPrecision(100).replace(/\..*/,""); }

with some issues:

  • 0.9 is displayed as "0"
  • -0.9 is displayed as "-0"
  • 1e100 is displayed as "1"
  • works only for numbers up to ~1e99 => use other constant for greater numbers; or smaller for optimization.
| improve this answer | |
  • Yeah those are some issues. – Adam Leggett May 4 at 13:15
0

Busting out the regular expressions. This has no precision issues and is not a lot of code.

function toPlainString(num) {
  return (''+num).replace(/(-?)(\d*)\.?(\d+)e([+-]\d+)/,
    function(a,b,c,d,e) {
      return e < 0
        ? b + '0.' + Array(1-e-c.length).join(0) + c + d
        : b + c + d + Array(e-d.length+1).join(0);
    });
}

console.log(toPlainString(12345e+12));
console.log(toPlainString(12345e+24));
console.log(toPlainString(-12345e+24));
console.log(toPlainString(12345e-12));
console.log(toPlainString(123e-12));
console.log(toPlainString(-123e-12));
console.log(toPlainString(-123.45e-56));

| improve this answer | |
-1

If you are just doing it for display, you can build an array from the digits before they're rounded.

var num = Math.pow(2, 100);
var reconstruct = [];
while(num > 0) {
    reconstruct.unshift(num % 10);
    num = Math.floor(num / 10);
}
console.log(reconstruct.join(''));
| improve this answer | |
  • This will return the right answer, but will take so much time and might end up for the execution to time out. – Hannah May Sep 6 '18 at 2:58
-1

Currently there is no native function to dissolve scientific notation. However, for this purpose you must write your own functionality.

Here is my:

function dissolveExponentialNotation(number)
{
    if(!Number.isFinite(number)) { return undefined; }

    let text = number.toString();
    let items = text.split('e');

    if(items.length == 1) { return text; }

    let significandText = items[0];
    let exponent = parseInt(items[1]);

    let characters = Array.from(significandText);
    let minus = characters[0] == '-';
    if(minus) { characters.splice(0, 1); }
    let indexDot = characters.reduce((accumulator, character, index) =>
    {
        if(!accumulator.found) { if(character == '.') { accumulator.found = true; } else { accumulator.index++; } }
        return accumulator;
    }, { index: 0, found: false }).index;

    characters.splice(indexDot, 1);

    indexDot += exponent;

    if(indexDot >= 0 && indexDot < characters.length - 1)
    {
        characters.splice(indexDot, 0, '.');
    }
    else if(indexDot < 0)
    {
        characters.unshift("0.", "0".repeat(-indexDot));
    }
    else
    {
        characters.push("0".repeat(indexDot - characters.length));
    }

    return (minus ? "-" : "") + characters.join("");
}
| improve this answer | |
  • This fails for really big numbers. I tried 2830869077153280552556547081187254342445169156730 and got 2830869077153280500000000000000000000000000000000 – callback Oct 17 '19 at 9:12
-1

You can use from-exponential module. It is lightweight and fully tested.

import fromExponential from 'from-exponential';

fromExponential(1.123e-10); // => '0.0000000001123'
| improve this answer | |
-1

You can also use YourJS.fullNumber. For instance YourJS.fullNumber(Number.MAX_VALUE) results in the following: 179769313486231570000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000

It also works for really small numbers. YourJS.fullNumber(Number.MIN_VALUE) returns this: 0.000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000005

It is important to note that this function will always return finite numbers as strings but will return non-finite numbers (eg. NaN or Infinity) as undefined.

You can test it out in the YourJS Console here.

| improve this answer | |
-3

You can use number.toString(10.1):

console.log(Number.MAX_VALUE.toString(10.1));

Note: This currently works in Chrome, but not in Firefox. The specification says the radix has to be an integer, so this results in unreliable behavior.

| improve this answer | |
  • what the heck does this do? A radix of 10.1? – joniba Nov 3 '16 at 13:47
  • This doesn't work. Since ES5, implementations are required to use ToInteger on the argument. So using 10.1 or 10 or nothing are equivalent. – Oriol Jan 12 '17 at 22:42
  • Yes, this has indeed stopped working somewhat recently. Kinda sad, but this answer is now irrelevant. – Zambonifofex Jan 13 '17 at 23:36
-6

I had the same issue with oracle returning scientic notation, but I needed the actual number for a url. I just used a PHP trick by subtracting zero, and I get the correct number.

for example 5.4987E7 is the val.

newval = val - 0;

newval now equals 54987000

| improve this answer | |
  • 2
    This has no effect. 5.4987E7 has an exponent less than 21, so it shows up as the full number regardless when converted to string. (5.4987E21 - 0).toString() => "5.4987e+21" – Dwight Oct 10 '13 at 23:19

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