fix(curriculum): rework Problem Euler 65 (#41790)
* fix: rework challenge to use argument in function * fix: add solution * fix: missing backticks
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@ -26,20 +26,44 @@ $2, 3, \\dfrac{8}{3}, \\dfrac{11}{4}, \\dfrac{19}{7}, \\dfrac{87}{32}, \\dfrac{1
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The sum of digits in the numerator of the 10<sup>th</sup> convergent is $1 + 4 + 5 + 7 = 17$.
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Find the sum of digits in the numerator of the 100<sup>th</sup> convergent of the continued fraction for `e`.
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Find the sum of digits in the numerator of the `n`<sup>th</sup> convergent of the continued fraction for `e`.
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# --hints--
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`convergentsOfE()` should return a number.
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`convergentsOfE(10)` should return a number.
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```js
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assert(typeof convergentsOfE() === 'number');
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assert(typeof convergentsOfE(10) === 'number');
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```
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`convergentsOfE()` should return 272.
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`convergentsOfE(10)` should return `17`.
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```js
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assert.strictEqual(convergentsOfE(), 272);
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assert.strictEqual(convergentsOfE(10), 17);
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```
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`convergentsOfE(30)` should return `53`.
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```js
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assert.strictEqual(convergentsOfE(30), 53);
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```
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`convergentsOfE(50)` should return `91`.
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```js
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assert.strictEqual(convergentsOfE(50), 91);
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```
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`convergentsOfE(70)` should return `169`.
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```js
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assert.strictEqual(convergentsOfE(70), 169);
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```
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`convergentsOfE(100)` should return `272`.
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```js
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assert.strictEqual(convergentsOfE(100), 272);
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```
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# --seed--
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@ -47,16 +71,47 @@ assert.strictEqual(convergentsOfE(), 272);
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## --seed-contents--
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```js
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function convergentsOfE() {
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function convergentsOfE(n) {
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return true;
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}
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convergentsOfE();
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convergentsOfE(10);
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```
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# --solutions--
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```js
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// solution required
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function convergentsOfE(n) {
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function sumDigits(num) {
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let sum = 0n;
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while (num > 0) {
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sum += num % 10n;
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num = num / 10n;
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}
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return parseInt(sum);
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}
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// BigInt is needed for high convergents
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let convergents = [
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[2n, 1n],
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[3n, 1n]
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];
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const multipliers = [1n, 1n, 2n];
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for (let i = 2; i < n; i++) {
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const [secondLastConvergent, lastConvergent] = convergents;
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const [secondLastNumerator, secondLastDenominator] = secondLastConvergent;
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const [lastNumerator, lastDenominator] = lastConvergent;
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const curMultiplier = multipliers[i % 3];
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const numerator = secondLastNumerator + curMultiplier * lastNumerator;
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const denominator = secondLastDenominator + curMultiplier * lastDenominator;
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convergents = [lastConvergent, [numerator, denominator]]
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if (i % 3 === 2) {
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multipliers[2] += 2n;
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}
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}
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return sumDigits(convergents[1][0]);
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}
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```
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