2.4 KiB
2.4 KiB
| id | title | challengeType | forumTopicId | dashedName |
|---|---|---|---|---|
| 5900f3bc1000cf542c50fecf | Problem 80: Square root digital expansion | 5 | 302194 | problem-80-square-root-digital-expansion |
--description--
It is well known that if the square root of a natural number is not an integer, then it is irrational. The decimal expansion of such square roots is infinite without any repeating pattern at all.
The square root of two is 1.41421356237309504880..., and the digital sum of the first one hundred decimal digits is 475.
For the first n natural numbers, find the total of the digital sums of the first one hundred decimal digits for all the irrational square roots.
--hints--
sqrtDigitalExpansion(2) should return a number.
assert(typeof sqrtDigitalExpansion(2) === 'number');
sqrtDigitalExpansion(2) should return 475.
assert.strictEqual(sqrtDigitalExpansion(2), 475);
sqrtDigitalExpansion(50) should return 19543.
assert.strictEqual(sqrtDigitalExpansion(50), 19543);
sqrtDigitalExpansion(100) should return 40886.
assert.strictEqual(sqrtDigitalExpansion(100), 40886);
--seed--
--seed-contents--
function sqrtDigitalExpansion(n) {
return true;
}
sqrtDigitalExpansion(2);
--solutions--
function sqrtDigitalExpansion(n) {
function sumDigits(number) {
let sum = 0;
while (number > 0n) {
let digit = number % 10n;
sum += parseInt(digit, 10);
number = number / 10n;
}
return sum;
}
function power(numberA, numberB) {
let result = 1n;
for (let b = 0; b < numberB; b++) {
result = result * BigInt(numberA);
}
return result;
}
// Based on http://www.afjarvis.staff.shef.ac.uk/maths/jarvisspec02.pdf
function expandSquareRoot(number, numDigits) {
let a = 5n * BigInt(number);
let b = 5n;
const boundaryWithNeededDigits = power(10, numDigits + 1);
while (b < boundaryWithNeededDigits) {
if (a >= b) {
a = a - b;
b = b + 10n;
} else {
a = a * 100n;
b = (b / 10n) * 100n + 5n;
}
}
return b / 100n;
}
let result = 0;
let nextPerfectRoot = 1;
const requiredDigits = 100;
for (let i = 1; i <= n; i++) {
if (nextPerfectRoot ** 2 === i) {
nextPerfectRoot++;
continue;
}
result += sumDigits(expandSquareRoot(i, requiredDigits));
}
return result;
}