2018-10-10 22:03:03 +00:00
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---
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id: 5900f4761000cf542c50ff88
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2020-12-16 07:37:30 +00:00
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title: 问题265:二进制圆圈
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2018-10-10 22:03:03 +00:00
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challengeType: 5
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videoUrl: ''
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2021-01-13 02:31:00 +00:00
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dashedName: problem-265-binary-circles
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2018-10-10 22:03:03 +00:00
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---
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2020-12-16 07:37:30 +00:00
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# --description--
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2018-10-10 22:03:03 +00:00
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2020-12-16 07:37:30 +00:00
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2N二进制数字可以放在一个圆圈中,这样所有N位顺时针子序列都是不同的。
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2018-10-10 22:03:03 +00:00
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2020-12-16 07:37:30 +00:00
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对于N = 3,两个这样的圆形布置是可能的,忽略旋转:
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2018-10-10 22:03:03 +00:00
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2020-12-16 07:37:30 +00:00
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对于第一种布置,顺时针顺序的3位子序列是:000,001,010,101,011,111,110和100。
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2018-10-10 22:03:03 +00:00
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2020-12-16 07:37:30 +00:00
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通过将以全零的子序列开始的二进制数字连接为最高有效位并顺时针进行,可以将每个循环排列编码为数字。因此,N = 3的两种排列表示为23和29:00010111 2 = 23 00011101 2 = 29
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2018-10-10 22:03:03 +00:00
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2020-12-16 07:37:30 +00:00
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调用S(N)唯一数值表示的总和,我们可以看到S(3)= 23 + 29 = 52。
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2018-10-10 22:03:03 +00:00
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2020-12-16 07:37:30 +00:00
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找到S(5)。
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2018-10-10 22:03:03 +00:00
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2020-12-16 07:37:30 +00:00
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# --hints--
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2018-10-10 22:03:03 +00:00
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2020-12-16 07:37:30 +00:00
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`euler265()`应该返回209110240768。
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2018-10-10 22:03:03 +00:00
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```js
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2020-12-16 07:37:30 +00:00
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assert.strictEqual(euler265(), 209110240768);
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2018-10-10 22:03:03 +00:00
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```
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2020-08-13 15:24:35 +00:00
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2021-01-13 02:31:00 +00:00
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# --seed--
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## --seed-contents--
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```js
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function euler265() {
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return true;
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}
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euler265();
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```
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2020-12-16 07:37:30 +00:00
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# --solutions--
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2021-01-13 02:31:00 +00:00
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```js
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// solution required
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```
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