Windows 10
题目链接:
http://acm.hdu.edu.cn/showproblem.php?pid=5802
Description
Long long ago, there was an old monk living on the top of a mountain. Recently, our old monk found the operating system of his computer was updating to windows 10 automatically and he even can't just stop it !! With a peaceful heart, the old monk gradually accepted this reality because his favorite comic LoveLive doesn't depend on the OS. Today, like the past day, he opens bilibili and wants to watch it again. But he observes that the voice of his computer can be represented as dB and always be integer. Because he is old, he always needs 1 second to press a button. He found that if he wants to take up the voice, he only can add 1 dB in each second by pressing the up button. But when he wants to take down the voice, he can press the down button, and if the last second he presses the down button and the voice decrease x dB, then in this second, it will decrease 2 * x dB. But if the last second he chooses to have a rest or press the up button, in this second he can only decrease the voice by 1 dB. Now, he wonders the minimal seconds he should take to adjust the voice from p dB to q dB. Please be careful, because of some strange reasons, the voice of his computer can larger than any dB but can't be less than 0 dB.Input
First line contains a number T (1≤T≤300000),cases number. Next T line,each line contains two numbers p and q (0≤p,q≤109)Output
The minimal seconds he should takeSample Input
2 1 5 7 3Sample Output
4 4Source
2016 Multi-University Training Contest 6##题意: 要把音量从p调节到q. 每次调节需要1秒: 1. 按up会+1. 2. 按down:若上一秒是休息/up则-1;若上一秒下降x则-2*x.
##题解: 比赛的时候没有想清楚,看了题解后才知道贪心就可以了. 若p<=q肯定一直按up就可以了. 若 p>q , 贪心的想法是一直按down(中间可能停顿)直到p<=q,然后再按up升回来. 需要注意的一点是,停顿是为了打断连续的down下降太快,而按up也有打断的功效,所以用最后的up操作来抵消停顿(相当于提前按up).
##代码: ``` cpp #include