Prime Check JavaScript - javascript

What have I done wrong with this code? It can't print anything on the console.
Here it is the description of the problem:
Implement a javascript function that accepts an array containing an integer N and uses an expression to check if given N is prime (i.e. it is divisible without remainder only to itself and 1).
var n = ['2'];
function isPrime(n) {
if (n < 2) {
return false;
}
var isPrime = true;
for(var i = 2; i < Math.sqrt(n); i += 1) {
if (n % i === 0) {
isPrime = false;
}
}
return isPrime;
}
return isPrime(n);

There are couple errors in your code.
First, you need to check for every integer between 2 and Math.sqrt(n) inclusively. Your current code returns true for 4.
I don't think this is in a function, so you need to omit return from return isPrime(n) and replace it with a function wich prints out the return value of the funnction, like alert or console.log.
n is not a number, it's an array. You need to either make n a number, or call the function with isPrime(n[0]).
The correct code is
var n = 2;
function isPrime(n) {
if (n < 2) {
return false;
}
var isPrime = true;
for(var i = 2; i <= Math.sqrt(n); i += 1) {
if (n % i === 0) {
isPrime = false;
}
}
return isPrime;
}
alert(isPrime(n));
Note: You can change n += 1 to n++, and it works the same way.

n is an array, you want to access first element in the array and convert it to number first.
try replacing
return isPrime(n);
with
return isPrime(parseInt(n[0],10));
Your for-loop condition also needs a little modification
for(var i = 2; i <= Math.sqrt(n); i += 1) { //observe that i is not <= Math.sqrt(n)

A couple of little errors:
var n = 2;//<--no need to put n in an array
function isPrime(n) {
if (n < 2) {
return false;
}
var isPrime = true;
for(var i = 2; i < Math.sqrt(n); i += 1) {
if (n % i === 0) {
isPrime = false;
}
}
return isPrime;
}
isPrime(n);//<--no need for "return"

As to no output being printed, it is because you need to use console.log.
Replace return isPrime(n); with console.log(isPrime(n));.

Full working code:
var n = ['2', '3', '4', '5', '6', '7']; // you can use as many values as you want
function isPrime(n) {
if (n < 2) {
return false;
}
var isPrime = true;
for (var i = 2; i <= Math.sqrt(n); i += 1) { // Thanks to gurvinder372's comment
if (n % i === 0) {
isPrime = false;
}
}
return isPrime;
}
n.forEach(function(value) { // this is so you can iterate your array with js
console.log('is ' + value + ' prime or not? ' + isPrime(value)); // this so you can print a message in the console
});
/*
// Another approach of parsing the data, uncomment this piece of code and comment the one above to see it in action (both will give the same result)
for (index = 0; index < n.length; ++index) {
console.log('is ' + n[index] + ' prime or not? ' + isPrime(n[index])); // this so you can print a message in the console
}
*/

Related

Find and print the biggest prime number (JS)

I'm studying node.js and have some interesting task - Write a program that finds and prints the biggest prime number which is <= N.
Input // Output - 13 // 13
126 // 113
26 // 23
In last course with java i have the same task and my code is really simple:
import java.util.Scanner;
public class BiggestPrimeNumber {
public static void main(String[] args){
int n;
Scanner in = new Scanner(System.in);
n=in.nextInt();
while(prim(n) == false){
n--;
}
System.out.println(n);
}
public static boolean prim(int m){
int n=m;
for(int i=2;i<n;i++){
if(n%i == 0){
return false;
}
}
return true;
}
}
I try similar way to test it, but I'm don't have idea how to convert it:
let n = 126;
while (isPrime(n) === false) {
n -= 1;
}
console.log(n);
let n = m;
for (let i = 2; i < n; i += 1) {
if (n % i === 0) {
return false;
}
}
return true;
Can you help me, because I'm really have problem with js using in console.
I think this is what you want. You only need to declare a function and use it as you are doing.
let n = 126;
while (isPrime(n) === false) {
n -= 1;
}
console.log(n);
function isPrime(m) {
let n = m;
for (let i = 2; i < n; i += 1) {
if (n % i === 0) {
return false;
}
}
return true;
}
If your running it with NodeJS in console, you can save it in a file called prime.js (for example) and execute it with: node prime.js.
You can pass parameters to the script like: node prime.js 126 and then get them in the code. That will be something like that:
const args = process.argv;
let n = args[2];
while (isPrime(n) === false) {
n -= 1;
}
console.log(n);
function isPrime(m) {
let n = m;
for (let i = 2; i < n; i += 1) {
if (n % i === 0) {
return false;
}
}
return true;
}
You're pretty close. First off, you don't have isPrime defined. Second, if you were to paste all of your code into the browser console, it isn't going to like that you are defining n twice. I also cleaned up your isPrime bit of code.
let n = 100;
let result = n;
const isPrime = num => {
for(let i = 2; i < num; i++)
if(num % i === 0) return false;
return num !== 1 && num !== 0;
}
while (isPrime(result) === false) {
result -= 1;
}
console.log(result + " is the next prime below " + n);
Also, remember that javascript is not a compiled language, so unless you are defining your function in a class, the browser will interpret the code sequentially. Therefore, you have to have isPrime defined before you use it.
The algorithm to find the nearest prime number can be further optimized. All prime numbers are of the form 6k+1 or 6k-1 except the numbers 2 and 3. Also, instead of checking all the way to the number the check can be made till Sqrt(n). Here is the modified isPrime function:
let n = 126;
while (isPrime(n) === false) {
n -= 1;
}
console.log(n);
function isPrime(num) {
if (num <= 1) return false;
if (num < 4) return true;
if (num%2 === 0 || num%3 === 0) return false;
for (var i = 5; i*i <= num; i+=6) {
if (num % i === 0 || num % (i + 2) === 0)
return false;
}
return true;
}

Check Digit Sum Javascript- recursion [duplicate]

This question already has answers here:
Adding digits from a number, using recursivity - javascript
(6 answers)
Closed 8 months ago.
Looking for Javascript solution in recursion to get the sum of all digits in number until single digit come as result
For example, for the number is "55555" the sum of all digits is 25. Because this is not a single-digit number, 2 and 5 would be added, and the result, 7.
I tried the below solution based on the algorithm.
function getSum(n) {
let sum = 0;
while(n > 0 || sum > 9)
{
if(n == 0)
{
n = sum;
sum = 0;
}
sum += n % 10;
n /= 10;
}
return sum;
}
console.log(getSum("55555"));
This would kind of work, but I'm almost sure there's a beautiful one-line solution which I just don't see yet.
function singleDigitSum(str) {
str = [...str].reduce((acc, c) => { return Number(c) + acc }, 0)
while (str.toString().length > 1) {
str = singleDigitSum(str.toString());
}
return str
}
console.log(singleDigitSum("55555"))
Explanation:
As a first step in your function you reassign to the parameter passed to the function the result of a reducer function which sums up all numbers in your String. To be able to use Array.prototype.reduce() function, I'm spreading your str into an array using [...str].
Then, for as often as that reducer returns a value with more than one digit, rinse and repeat. When the while loop exits, the result is single digit and can be returned.
function checSumOfDigit(num, sum = "0") {
if (num.length == 1 && sum.length !== 1) {
return checSumOfDigit(Number(sum) + Number(num) + "", "0");
} else if (num.length == 1) {
return Number(sum) + Number(num);
}
num = num.split("")
sum = Number(sum) + Number(num.pop());
return checSumOfDigit(num.join(""), sum + "")
}
console.log(checSumOfDigit("567"));
console.log(checSumOfDigit("123"));
console.log(checSumOfDigit("55555"));
this code might be help you
If you need a recursion try this one
function CheckDigitSum(number) {
let nums = number.split('');
if (nums.length > 1) {
let sum = 0;
for (let i = 0; i < nums.length; i++) {
sum += Number(nums[i]);
}
return CheckDigitSum(sum.toString());
} else {
return parseInt(nums[0], 10);
}
}
Here you go:
function createCheckDigit(num) {
var output = Array.from(num.toString());
var sum = 0;
if (Array.isArray(output) && output.length) {
for ( i=0; i < output.length; i++){
sum = sum + parseInt(output[i]);
}
if ((sum/10) >= 1){
sum = createCheckDigit(sum);
}
}
return sum;
}
This can be calculated by recursive function.
function createCheckDigit(membershipId) {
// Write the code that goes here.
if(membershipId.length > 1){
var dgts = membershipId.split('');
var sum = 0;
dgts.forEach((dgt)=>{
sum += Number(dgt);
});
//console.log('Loop 1');
return createCheckDigit(sum + '');
}
else{
//console.log('Out of Loop 1');
return Number(membershipId);
}
}
console.log(createCheckDigit("5555555555"));
function checkid(num) {
let sum = 0;
let s = String(num);
for (i = 0; i < s.length; i++) {
sum = sum + Number(s[i]);
}
if(String(sum).length >= 2) return checkid(sum)
else return sum;
}
console.log(checkid(55555);

Happy numbers - recursion

I have an issue with a recursive algorithm, that solves the problem of finding the happy numbers.
Here is the code:
function TestingFunction(number){
sumNumberContainer = new Array(0);
CheckIfNumberIsHappy(number);
}
function CheckIfNumberIsHappy(number){
var sumOfTheNumbers = 0;
for (var i = 0; i < number.length; i++) {
sumOfTheNumbers += Math.pow(parseInt(number[i]), 2);
}
console.log(sumOfTheNumbers);
if(sumOfTheNumbers == 1){
return CheckIfNumberIsHappy(sumOfTheNumbers.toString());
//return true;
} else {
sumNumberContainer.push(sumOfTheNumbers);
if(sumNumberContainer.length > 1){
for (var i = 0; i < sumNumberContainer.length - 1; i++) {
for (var j = i + 1; j < sumNumberContainer.length; j++) {
if(sumNumberContainer[i] == sumNumberContainer[j]){
return CheckIfNumberIsHappy(sumOfTheNumbers.toString());
//return false;
}
}
}
}
CheckIfNumberIsHappy(sumOfTheNumbers.toString());
}
}
Algorithm is working ALMOST fine. I've tested it out by calling function with different numbers, and console was displaying correct results. The problem is that I almost can't get any value from the function. There are only few cases in which I can get any value: If the number is build out of ,,0", and ,,1", for example 1000.
Because of that, I figured out, that I have problem with returning any value when the function is calling itself again.
Now I ended up with 2 results:
Returning the
return CheckIfNumberIsHappy(sumOfTheNumbers.toString());
which is giving an infinity looped number. For example when the number is happy, the function is printing in the console number one again and again...
Returning the
//return true
or
//return false
which gives me an undefined value
I'm a little bit in check by this problem, and I'm begging you guys for help.
I would take a step back and reexamine your problem with recursion in mind. The first thing you should think about with recursion is your edge cases — when can you just return a value without recursing. For happy numbers, that's the easy case where the sum of squares === 1 and the harder case where there's a cycle. So test for those and return appropriately. Only after that do you need to recurse. It can then be pretty simple:
function sumSq(num) {
/* simple helper for sums of squares */
return num.toString().split('').reduce((a, c) => c * c + a, 0)
}
function isHappy(n, seen = []) {
/* seen array keeps track of previous values so we can detect cycle */
let ss = sumSq(n)
// two edge cases -- just return
if (ss === 1) return true
if (seen.includes(ss)) return false
// not an edge case, save the value to seen, and recurse.
seen.push(ss)
return isHappy(ss, seen)
}
console.log(isHappy(23))
console.log(isHappy(22))
console.log(isHappy(7839))
Here's a simplified approach to the problem
const digits = x =>
x < 10
? [ x ]
: [ ...digits (x / 10 >> 0), x % 10 ]
const sumSquares = xs =>
xs.reduce ((acc, x) => acc + x * x, 0)
const isHappy = (x, seen = new Set) =>
x === 1
? true
: seen.has (x)
? false
: isHappy ( sumSquares (digits (x))
, seen.add (x)
)
for (let n = 1; n < 100; n = n + 1)
if (isHappy (n))
console.log ("happy", n)
// happy 1
// happy 7
// happy 10
// ...
// happy 97
The program above could be improved by using a technique called memoization
Your code is almost correct. You just forgot to return the result of the recursive call:
function TestingFunction(number){
sumNumberContainer = new Array(0);
if (CheckIfNumberIsHappy(number))
console.log(number);
}
function CheckIfNumberIsHappy(number){
var sumOfTheNumbers = 0;
for (var i = 0; i < number.length; i++) {
sumOfTheNumbers += Math.pow(parseInt(number[i]), 2);
}
if(sumOfTheNumbers == 1){
return true;
} else {
sumNumberContainer.push(sumOfTheNumbers);
if(sumNumberContainer.length > 1){
for (var i = 0; i < sumNumberContainer.length - 1; i++) {
for (var j = i + 1; j < sumNumberContainer.length; j++) {
if(sumNumberContainer[i] == sumNumberContainer[j]){
return false;
}
}
}
}
return CheckIfNumberIsHappy(sumOfTheNumbers.toString());
}
}
for (let i=0; i<100; ++i)
TestingFunction(i.toString()); // 1 7 10 13 ... 91 94 97
I've got the solution, which was given to me in the comments, by the user: Mark_M.
I just had to use my previous
return true / return false
also I had to return the recursive statement in the function, and return the value of the CheckIfTheNumberIsHappy function, which was called in TestingFunction.
The working code:
function TestingFunction(number){
sumNumberContainer = new Array(0);
return CheckIfNumberIsHappy(number);
}
function CheckIfNumberIsHappy(number){
var sumOfTheNumbers = 0;
for (var i = 0; i < number.length; i++) {
sumOfTheNumbers += Math.pow(parseInt(number[i]), 2);
}
console.log(sumOfTheNumbers);
if(sumOfTheNumbers == 1){
return true;
} else {
sumNumberContainer.push(sumOfTheNumbers);
if(sumNumberContainer.length > 1){
for (var i = 0; i < sumNumberContainer.length - 1; i++) {
for (var j = i + 1; j < sumNumberContainer.length; j++) {
if(sumNumberContainer[i] == sumNumberContainer[j]){
return false;
}
}
}
}
return CheckIfNumberIsHappy(sumOfTheNumbers.toString());
}
}
Thanks for the great support :)

Javascript Happy Numbers not working

Here I have a function that should take a number n into the disHappy(n) to check if all
n in [n-0) are happy.
Happy Numbers wikipedia
If I only run happyChecker(n), I can tell that 7 is happy, but disHappy(n) doesn't show it. It is as if it doesn't receive the true. I have used console.log()'s all over the place and happyChecker(n) shows a number that SHOULD return true. When I placed a console.log() above the return true; for if(newNum===1), it showed that it branched into that branch but it just didn't seem to return the true.
function happyChecker(n) {
var arr = [];
var newNum = 0;
//here I split a number into a string then into an array of strings//
num = n.toString().split("");
for (var i = 0; i < num.length; i++) {
arr[i] = parseInt(num[i], 10);
}
//here I square each number then add it to newNum//
for (var i = 0; i < arr.length; i++) {
newNum += Math.pow(arr[i], 2);
}
//here I noticed that all unhappy numbers eventually came into one of these three//
//( and more) numbers, so I chose them to shorten the checking. A temporary solution for sure//
if (newNum === 58 || newNum === 4 || newNum == 37) {
return false;
}
if (newNum === 1) {
return true;
} else {
happyChecker(newNum);
}
}
function disHappy(num) {
for (j = num; j > 0; j--) {
if (happyChecker(j)) {
console.log(j + " is a Happy Number. It's so happy!!!.");
}
}
}
When you recurse, you need to return the value returned:
if (newNum === 1) {
return true;
} else {
return happyChecker(newNum);
}
You also should declare "num" with var.
I'm ordinarily not a "code golfer", but this is a good example of how the (new-ish) iterator utility methods on the Array prototype can clean up code. You can use the .reduce() function to traverse the array of digit characters and do the work of squaring and summing all at once:
var newNum = n.toString()
.split('')
.reduce(function(sum, digit) {
return sum + (+digit * +digit);
}, 0);
The call to .toString() returns a string, then .split('') gives you an array. Then .reduce() starts with an initial sum of 0 and for each element of the array (each digit), it adds to it the square of that digit. (Instead of parseInt() I just used the + unary operator; we know for sure that each string will be a valid number and an integer.)
You need to add return to the happyChecker call.
return happyChecker(newNum);
see:
http://jsfiddle.net/YjgL8/2/
here is my implementation
var getSum = function (n) {
if (!n >= 0) return -1;
var digits = n.toString().split("");
var sum = 0;
for (var i = 0; i < digits.length; i++) {
var digit = parseInt(digits[i], 10);
sum += digit * digit;
}
return sum;
}
/**
* #param {number} n
* #return {boolean}
*/
var isHappy = function(n, visited) {
if (n < 0) return false;
if (n === 1) return true;
if (typeof visited === 'undefined') visited = {};
sum = getSum(n);
if (visited[sum]) return false; // cycle
visited[sum] = true;
return isHappy(sum, visited);
};
Complete Example of finding happy numbers in range of custom number.
function happyNumbers() {
var result = document.getElementById("happy-result")
var inputy = parseInt(document.getElementById("happyValue").value)
result.innerHTML=""
for (i = 1; i < inputy; i++) {
(happy(i, i))
}
}
function happy(value,value2) {
var result = document.getElementById("happy-result")
var lengthNum = value.toString().length;
var resultNumbers = 0
for (var b = 0 ; b < lengthNum; b++) {
resultNumbers = resultNumbers + parseInt(value.toString().charAt(b)) * parseInt(value.toString().charAt(b))
}
if (resultNumbers == 4) {
return false
} else if (resultNumbers == 1) {
result.innerHTML += "<br> happy number " + i
return true
}else{
happy(resultNumbers, value2);
}
}
window.onload=happyNumbers()
<link rel="stylesheet" href="https://maxcdn.bootstrapcdn.com/bootstrap/3.3.7/css/bootstrap.min.css">
<div class="panel panel-default">
<div class="panel-heading">happy numbers</div>
<div class="panel-body">
<label>Enter the number that you want ot have see happy numbers uo to it</label>
<input id="happyValue" oninput="happyNumbers()" value="100" class="form-control" />
<div id="happy-result"></div>
</div>
</div>

First 100 primes javascript, why do I get undefined after my array of primes?

I get the 100 primes printed, but I also get undefined at the end. Why would that be?
function HundoPrimeNumbers() {
var primes = [];
function isPrime(n) {
if (isNaN(n) || !isFinite(n) || n % 1 || n < 2) return false;
var m = Math.sqrt(n);
for (var i = 2; i <= m; i++) if (n % i == 0) return false;
primes.push(n);
}
var n = 0
while (primes.length < 100) {
isPrime(n);
n++;
}
console.log(primes.join());
}
console.log(HundoPrimeNumbers());
You are logging the result of HundoPrimeNumbers:
console.log(HundoPrimeNumbers());
HundoPrimeNumbers does not have a return statement. When a function doesn't have a return statement, or returns without a value, like return;, it actually ends up returning undefined. This then gets logged to the console.
Solution: call it like this:
HundoPrimeNumbers();
undefined is the return value of console.log()

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