Check Digit Sum Javascript- recursion












-3














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"));









share|improve this question
























  • Check here I have found same problem here
    – Dulanga Heshan
    Nov 13 at 20:55
















-3














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"));









share|improve this question
























  • Check here I have found same problem here
    – Dulanga Heshan
    Nov 13 at 20:55














-3












-3








-3


0





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"));









share|improve this question















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"));






javascript






share|improve this question















share|improve this question













share|improve this question




share|improve this question








edited Nov 13 at 20:44

























asked Nov 13 at 20:33









A G J

41




41












  • Check here I have found same problem here
    – Dulanga Heshan
    Nov 13 at 20:55


















  • Check here I have found same problem here
    – Dulanga Heshan
    Nov 13 at 20:55
















Check here I have found same problem here
– Dulanga Heshan
Nov 13 at 20:55




Check here I have found same problem here
– Dulanga Heshan
Nov 13 at 20:55












2 Answers
2






active

oldest

votes


















0














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.






share|improve this answer























  • it's not a pure recursion, you are using one another function reduce here .
    – Jaisa Ram
    Nov 13 at 21:57



















0

















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






share|improve this answer





















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    2 Answers
    2






    active

    oldest

    votes








    2 Answers
    2






    active

    oldest

    votes









    active

    oldest

    votes






    active

    oldest

    votes









    0














    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.






    share|improve this answer























    • it's not a pure recursion, you are using one another function reduce here .
      – Jaisa Ram
      Nov 13 at 21:57
















    0














    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.






    share|improve this answer























    • it's not a pure recursion, you are using one another function reduce here .
      – Jaisa Ram
      Nov 13 at 21:57














    0












    0








    0






    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.






    share|improve this answer














    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 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"))





    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"))






    share|improve this answer














    share|improve this answer



    share|improve this answer








    edited Nov 13 at 20:53

























    answered Nov 13 at 20:48









    connexo

    20.4k73554




    20.4k73554












    • it's not a pure recursion, you are using one another function reduce here .
      – Jaisa Ram
      Nov 13 at 21:57


















    • it's not a pure recursion, you are using one another function reduce here .
      – Jaisa Ram
      Nov 13 at 21:57
















    it's not a pure recursion, you are using one another function reduce here .
    – Jaisa Ram
    Nov 13 at 21:57




    it's not a pure recursion, you are using one another function reduce here .
    – Jaisa Ram
    Nov 13 at 21:57













    0

















    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






    share|improve this answer


























      0

















      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






      share|improve this answer
























        0












        0








        0









        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






        share|improve this answer















        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






        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"));





        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"));






        share|improve this answer












        share|improve this answer



        share|improve this answer










        answered Nov 13 at 22:13









        Jaisa Ram

        21137




        21137






























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