题干

默写。
①碧云天,黄叶地,秋色连波 ,                                  
                               ,自缘身在最高层。
                               ,夜吟应觉月光寒。(           《无题》)
④无言独上西楼,月如钩。                               
⑤抽刀断水水更流,                            
⑥默写《早春呈水部张十八员外》                                                                                                                       
⑦面对人生失败和痛苦,我们应该有范仲淹在《岳阳楼记》中提到的那样                                                                  

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答案(点此获取答案解析)

①波上寒烟翠
②不畏浮云遮望眼。
③晓镜但愁云鬓改 李商隐
④寂寞梧桐深院锁清秋
⑤举杯销愁愁更愁
⑥天街小雨润如酥 草色遥看近却无 最是一年春好处 绝胜烟柳满皇都
⑦不以物喜 不以己悲

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阅读理解

    Computers have beaten human world champions at chess and, earlier this year, the board game Go. So far, though, they have struggled at the card table. So we challenged one AI to a game.

    Why is poker(扑克)so difficult? Chess and Go are “information complete” games where all players can see all the relevant information. In poker, other players' cards are hidden, making it an “information incomplete” game. Players have to guess opponents' hands from their actions----tricky for computers. Poker has become a new benchmark for AI research. Solving poker could lead to many breakthroughs, from cyber security to driverless cars.

    Scientists believe it is only a matter of time before AI once again vanquishes humans, hence our human-machine match comes up in a game of Texas Hold's Em Limit Poker. The AI was developed by Johannes Heinrich, researcher studying machine learning at UCL. It combines two techniques: neural(神经的)networks and reinforcement learning(强化学习).

    Neural networks, to some degree, copy the structure of human brains: their processors are highly interconnected and work at the same time to solve problems. They are good at spotting patterns in huge amounts of data. Reinforcement learning is when a machine, given a task, carries it out, learning from mistakes it makes. In this case, it means playing poker against itself billions of times to get better.

    Mr Heinrich told Sky News: “Today we are presenting a new procedure that has learned in a different way, more similar to how humans learn. In particular, it is able to learn abstract patterns, represented by its neural network, which allow it to deal with new and unseen situations.”

    After two hours of quite defensive play, from the computer at least, we called it a draw.