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標題: 機器人會超越人類嗎,?Will Robotics Outclass Humans? [打印本頁]
作者: 小師妹_c937B 時間: 2016-10-20 16:17
標題: 機器人會超越人類嗎?Will Robotics Outclass Humans?
明天,,世界機器人大會就要在北京舉行了,,世界機器人產(chǎn)業(yè)巨頭匯聚一堂,帶來自己的最新產(chǎn)品與技術(shù),。在看到機器人產(chǎn)業(yè)如火如荼的同時,,我們也無法忽略近期爆出的富士康機器換人的傳聞,工業(yè)機器人尚且如此,,具有高度人工智能的機器人會否超越人類,,甚至是取代人類呢。+ v$ T9 `1 w Y6 t c' z+ Y
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我想起很多年前看過的一部美國大片《I,ROBOT》(機械公敵)里面的機器人就是在意識覺醒后企圖推翻人類社會,,而最近最火爆的HBO新劇《西部世界》同樣探討了機器人倫理,。當科技發(fā)展到一定程度,人與機器,,機器與機器之間的關(guān)系是否需要重新思考,?/ \* u+ L$ W9 I
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8 L, ?! V; f6 y5 K* p1 k1 H今天的這篇短文就是關(guān)于機器人科技發(fā)展的探討,在學(xué)習(xí)英語的同時,,不妨思考一下這個命題,,也許會有全新的理解。
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% l" r9 s! u+ C& @! w% \' c————————————這是正文的分隔線—————————————
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! b' C" D: h$ z# u6 d§ In recent years we have seen increasing waves of advanced computing technology which have revolutionized our daily lives
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§ As our computing speed increases so does the speed of its growth
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§ These faster and faster processors are starting to be able to learn and adapt to their environments
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§ As the technology continues to grow we will see more and more computers capable of "learning" and "thought"
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As the field of artificial intelligence (AI) continues to accelerate, the concept of intelligent robotics is far closer than ever before. As our computing power grows, we have begun to learn to “teach” devices to carry out tasks. We are teaching computers every day as we use predictive texting, Google, or Siri. These programs use the information we give them to make an estimation of what we need, or to react differently to a given input. As they receive and “l(fā)earn” from more information, these programs will be able to intelligently respond to questions or predict your needs. While true artificial intelligence and robotics are something Isaac Asimov only dreamed about, scientists are making strides to turn science fiction into science fact. How far will technology go? Will robotics outclass humans one day?
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Advancing ResearchThis technology isn’t just for helping Siri order a pizza or Google finding the fastest route to the best Waffle House. In the UK, a recent publication by a research group at the University of Manchester led by, computer scientist, Ross King, has developed and built a custom “robotic scientist” named “Eve” which has found compounds that may help fight a drug resistant strain of malaria.
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“Eve” is a group of computers and testing instruments which is working to test experiments. However, the innovation does not simply stop at an automated testing procedure. Eve has the capability to design its own experiments, generate and test its hypothesis, to then interpret the results to create a modified hypothesis. Given an ample supply of reagents, Eve would keep testing and continue to refine its knowledge. The ability to screen and constantly reevaluate the information is helpful to save on often wasted and costly reagents, as King says:
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If you screen the whole library, you’ll find all the hits, but you’ve consumed some of all the compounds and a lot of time. Doing things Eve’s way could help solve what he calls pharma’s “fundamental problem”: It is too slow and expensive to develop new drugs.
While a machine like Eve is still in stages of infancy, it could potentially grow to be much more. A testing robot such as this may not match up with the strengths of a human computational chemist but can still provide a large value to pharmaceutical researchers to help identify useful compounds for drugs. However, if we use history as a guide, machines have been outperforming humans since the industrial revolution!
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Programmable Learning Brains
$ [; @$ Z5 \7 |6 q% f* J5 VOne technology which could create a huge disruption would be a self learning and self expanding artificial intelligence. Currently ‘machine learning’ is a small subfield within the greater field of AI. Eve is one example of a program taking what it knows and expanding it, it is possible for computers to learn to perform complex tasks for which they were not originally programmed.
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The field of machine learning is how programs like Google Now can adapt to your voice commands, Pandora/Spotify can recommend songs that you will enjoy or even a program like Watson which can solve Jeopardy questions.
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Disruptive Innovations4 \0 v$ [- u% J) f% M X! b1 F
A noteworthy example of a technology which could disrupt tens of thousands of jobs is the computing power behindself driving cars. While all a stop sign or traffic light seemingly causes us to do is stop or slow down, these occurrences are actually used as learning opportunities for self driving vehicles. The software is able to observe human behavior and use that to pick the proper response given any situation.
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However, there is a lot more to self-driving cars than just entering a set of common road rules into a computer. As Pedro Domingos, Professor of Computer Science at the University of Washington discusses:
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People tried just imputing all the rules of the road, but that doesn’t work,” explains Pedro. “Most of what you need to know about driving are things that we take for granted, like looking at the curve in a road you’ve never seen before and turning the wheel accordingly. To us, this is just instinctive, but it’s difficult to teach a computer to do that. But [one] can learn by observing how people drive. A self-driving car is just a robotic controlled by a bunch of algorithms with the accumulated experience of all the cars it has observed driving before—and that’s what makes up for a lack of common sense.
These technologies are quite a ways from mass adoption, but they are showing promise of what the field of artificial intelligence can do in the future. While robotics, artificial intelligence and self learning machines are in their infancy, they are growing and changing faster than ever imaginable. These machines can allow more work to be done in less time, with fewer people. Although some jobs may be lost to automation and intelligent systems, these will open the way for even more complex problems to be evaluated with the benefit of technologies which can grow and adapt to their situation. While the future is uncertain, the continual growth and expansion of adaptive robotic technology will a field to keep an eye on.
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作者: 慕圣 時間: 2016-10-20 17:10
機器人的腦子變好使啦
,,什么都學(xué)會了也挺可怕的# u: n Y( e; e1 N+ C/ _
作者: 水色筆跡 時間: 2016-10-20 17:11
在大數(shù)據(jù)的支持下,,看機器人能否“自我進化”,如果能,,那將會變得完全不可控,,那時超越人類將是輕而易舉(到時機器人還會不會讓人存在還另說呢)!
作者: 成歌2047 時間: 2016-10-20 17:16
我覺得不可能,!因為機器人是人類制造的,,始終是靠人類的給它的程序和指令辦事,其人工智能與人類還是很有大差距,,也不可能有創(chuàng)造性,,只有機械重復(fù),。
作者: albert.tang 時間: 2016-10-20 18:34
如果讓機器人完全掌握了制造和自我修復(fù)功能是非常可怕的事情,。
作者: 小河HH 時間: 2016-10-20 18:38
一切皆有可能,。我感覺發(fā)展下去會超過人類的。
作者: ralphtyler 時間: 2016-10-20 19:45
程序的自我進化如果出現(xiàn),,那就是我們被淘汰的時候
作者: 淡然 時間: 2016-10-20 20:10
我認為機器人永遠不會超越人類,,因為機器人是人類發(fā)明的。
作者: 子木李 時間: 2016-10-27 20:54
去看了下 感覺好多都是機器 還不能稱為機器人 還有很大空間啊
作者: 打開一扇窗戶 時間: 2021-12-8 12:56
機器人超越人類不是不可能的事情,,尤其是AI的發(fā)展,,讓機器人的自我進化變成可能,科技是把雙刃劍,,也許未來一天,,人類真的會被機器人奴役也說不準。
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