This new approximation is vulnerable to the same fate as the a1 / b1 solution it replaced; that’s to say, we can keep incrementing K to conjure as many distinct 2-good pairs as we want. The proof doesn’t guarantee that it’s going to happen on any specific cadence, but it says that it will if we try long enough.
先理解原理:看动图 + 手动模拟小数组
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