ABOUT THE SPEAKER
Alex Edmans - Finance professor, editor
Alex Edmans uses rigorous academic research to influence real-life business practices -- in particular, how companies can pursue purpose as well as profit.

Why you should listen

Alex Edmans is professor of finance at London Business School and managing editor of the Review of Finance, the leading academic finance journal in Europe. He is an expert in corporate governance, executive compensation, corporate social responsibility and behavioral economics.

Edmans has a unique combination of deep academic rigor and practical business experience. He's particularly passionate about translating complex academic research into practical ideas that can then be applied to real-life problems. He has spoken at the World Economic Forum in Davos, at the World Bank Distinguished Speaker Series and in the UK House of Commons. Edmans is heavily involved in the ongoing reform of corporate governance, in particular to ensure that both the diagnosis of problems and suggested solutions are based on rigorous evidence rather than anecdote. He was appointed by the UK government to study the effect of share buybacks on executive pay and investment. Edmans also serves on the Steering Group of The Purposeful Company, which aims to embed purpose into the heart of business, and on Royal London Asset Management's Responsible Investment Advisory Committee.
 
Edmans has been interviewed by Bloomberg, BBC, CNBC, CNN, ESPN, Fox, ITV, NPR, Reuters, Sky News and Sky Sports, and has written for the Wall Street Journal, Financial Times and Harvard Business Review. He runs a blog, Access to Finance, that makes academic research accessible to a general audience, and was appointed Mercers' School Memorial Professor of Business by Gresham College, to give free lectures to the public. Edmans was previously a tenured professor at Wharton, where he won 14 teaching awards in six years. At LBS, he won the Excellence in Teaching award, LBS's highest teaching accolade.

More profile about the speaker
Alex Edmans | Speaker | TED.com
TEDxLondonBusinessSchool

Alex Edmans: What to trust in a "post-truth" world

亚历克斯·爱德蒙斯: 在后真相的世界里该相信什么

Filmed:
1,695,337 views

研究员亚历克斯·爱德蒙斯说,只有当你真正愿意接受犯错的可能性时,你才会成长。在一次见解深刻的演讲中,他探讨了证实偏差(即倾向于只接受支持个人信仰的信息)是如何让你在社交媒体、政治和其他领域误入歧途的,并提供了三个实用的建议来帮助你寻找真正的信仰。(比如:指定某人做你生活中的魔鬼代言人。)
- Finance professor, editor
Alex Edmans uses rigorous academic research to influence real-life business practices -- in particular, how companies can pursue purpose as well as profit. Full bio

Double-click the English transcript below to play the video.

00:13
Belle美女 Gibson吉布森 was a happy快乐 young年轻 Australian澳大利亚.
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贝尔·吉布森是一个
快乐的澳大利亚年轻人。
她住在珀斯,
她喜欢玩滑板。
00:16
She lived生活 in Perth珀斯,
and she loved喜爱 skateboarding滑板运动.
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00:20
But in 2009, Belle美女 learned学到了 that she had
brain cancer癌症 and four months个月 to live生活.
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但在2009年,
贝尔得知自己患有脑癌,
并且只有四个月可活。
00:25
Two months个月 of chemo化疗
and radiotherapy放疗 had no effect影响.
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两个月的化疗和放疗没有见效。
00:29
But Belle美女 was determined决心.
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但是贝尔的意志很坚强,
贝尔一直都是一位斗士。
00:30
She'd been a fighter战斗机 her whole整个 life.
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从6岁起,
她就得给患自闭症的哥哥,
00:32
From age年龄 six, she had to cook厨师
for her brother哥哥, who had autism自闭症,
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还有患多发性硬化症的母亲做饭。
00:36
and her mother母亲,
who had multiple sclerosis硬化.
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她的父亲一直缺位。
00:38
Her father父亲 was out of the picture图片.
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00:40
So Belle美女 fought战斗, with exercise行使,
with meditation冥想
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因此,贝尔用锻炼、冥想抗癌
同时,她也用蔬果代替肉食。
00:44
and by ditching放弃 meat
for fruit水果 and vegetables蔬菜.
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00:47
And she made制作 a complete完成 recovery复苏.
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她完全康复了。
00:50
Belle's贝尔的 story故事 went viral病毒.
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贝尔的故事迅速走红。
她的故事在推特和博客上广为流传。
00:52
It was tweeted啾啾, blogged博客 about,
shared共享 and reached到达 millions百万 of people.
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00:56
It showed显示 the benefits好处 of shunning避开
traditional传统 medicine医学
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它展示了传统医学以外的
饮食和锻炼的意义。
00:59
for diet饮食 and exercise行使.
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01:01
In August八月 2013, Belle美女 launched推出
a healthy健康 eating app应用,
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2013年8月,贝尔发布了
一款健康饮食的应用软件,
“健康厨房”
01:05
The Whole整个 Pantry储藏室,
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首月下载量达到20万次。
01:07
downloaded下载 200,000 times
in the first month.
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01:13
But Belle's贝尔的 story故事 was a lie谎言.
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但贝尔的故事是个谎言。
01:17
Belle美女 never had cancer癌症.
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贝尔从来没有过癌症。
01:19
People shared共享 her story故事
without ever checking检查 if it was true真正.
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人们分享她的故事时
从未去检验其真实性。
01:24
This is a classic经典 example
of confirmation确认 bias偏压.
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这是肯证偏差的典型例子。
01:28
We accept接受 a story故事 uncritically不加批判
if it confirms确认 what we'd星期三 like to be true真正.
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我们会不加批判地接受一个故事,
当它证实了我们认为是真实的事时,
01:33
And we reject拒绝 any story故事
that contradicts相矛盾 it.
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并且我们会拒绝
任何与之相悖的故事。
01:36
How often经常 do we see this
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我们看到了多少这种情况?
在我们分享却忽略的故事中。
01:38
in the stories故事
that we share分享 and we ignore忽视?
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在政治上,在商业中,
在健康建议上。
01:41
In politics政治, in business商业,
in health健康 advice忠告.
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01:47
The Oxford牛津 Dictionary's词典的
word of 2016 was "post-truth后的真相."
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牛津词典2016年的
年度词汇是“后真相”。
01:51
And the recognition承认 that we now live生活
in a post-truth后的真相 world世界
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人们意识到
我们正处在后真相世界中,
所以如今我们非常强调核查事实。
01:55
has led to a much needed需要 emphasis重点
on checking检查 the facts事实.
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01:59
But the punch冲床 line线 of my talk
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但我演讲的重点是
仅仅去核查真相还不够。
02:00
is that just checking检查
the facts事实 is not enough足够.
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02:04
Even if Belle's贝尔的 story故事 were true真正,
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即便贝尔的故事是真的,
它也是一个不相关的故事。
02:07
it would be just as irrelevant不相干.
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02:10
Why?
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为什么?
02:11
Well, let's look at one of the most
fundamental基本的 techniques技术 in statistics统计.
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让我们看看统计学中的
一个基本原理。
贝叶斯推理。
02:15
It's called Bayesian贝叶斯 inference推理.
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02:18
And the very simple简单 version is this:
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它的核心观点就是,
我们关心:“数据是否支持这个理论?”
02:21
We care关心 about "does the data数据
support支持 the theory理论?"
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02:25
Does the data数据 increase增加 our belief信仰
that the theory理论 is true真正?
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这个数据是否能够证实
这个理论为真
02:29
But instead代替, we end结束 up asking,
"Is the data数据 consistent一贯 with the theory理论?"
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但相反,我们最终会问,
“数据是否与理论一致?”
02:34
But being存在 consistent一贯 with the theory理论
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但与理论一致
不等于数据支持这个理论。
02:37
does not mean that the data数据
supports支持 the theory理论.
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02:40
Why?
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为什么?
因为有一个关键但被人遗忘的点——
02:41
Because of a crucial关键
but forgotten忘记了 third第三 term术语 --
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数据也可以和对立的理论一致。
02:45
the data数据 could also be consistent一贯
with rival对手 theories理论.
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02:49
But due应有 to confirmation确认 bias偏压,
we never consider考虑 the rival对手 theories理论,
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但由于肯证偏差,
我们从不考虑对立的理论,
因为我们袒护
我们的宠物理论。
02:54
because we're so protective保护的
of our own拥有 pet宠物 theory理论.
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02:58
Now, let's look at this for Belle's贝尔的 story故事.
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现在,让我们看看贝尔的故事。
我们关心的是:贝尔的故事
03:01
Well, we care关心 about:
Does Belle's贝尔的 story故事 support支持 the theory理论
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支持饮食治愈癌症的理论吗?
03:05
that diet饮食 cures治愈 cancer癌症?
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但相反,我们最终问的是:
03:06
But instead代替, we end结束 up asking,
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“贝尔的故事
等同于饮食治愈癌症吗?”
03:08
"Is Belle's贝尔的 story故事 consistent一贯
with diet饮食 curing养护 cancer癌症?"
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03:13
And the answer回答 is yes.
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答案是肯定的。
03:15
If diet饮食 did cure治愈 cancer癌症,
we'd星期三 see stories故事 like Belle's贝尔的.
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如果饮食可以治愈癌症,
我们会看到像贝尔这样的故事。
03:20
But even if diet饮食 did not cure治愈 cancer癌症,
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但即便饮食不能治疗癌症,
我们仍然会看到像贝尔这样的故事。
03:23
we'd星期三 still see stories故事 like Belle's贝尔的.
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03:26
A single story故事 in which哪一个
a patient患者 apparently显然地 self-cured自固化
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比如一个病人自我治愈
只是因为一开始被误诊。
03:31
just due应有 to being存在 misdiagnosed误诊
in the first place地点.
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03:35
Just like, even if smoking抽烟
was bad for your health健康,
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或者,即使吸烟有害健康,
你仍然会看到一个烟民活到100岁。
03:39
you'd still see one smoker抽烟者
who lived生活 until直到 100.
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03:42
(Laughter笑声)
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(笑声)
03:44
Just like, even if education教育
was good for your income收入,
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又或者,即使接受教育
有助于增加你的收入,
你仍会看到没上过大学的千万富翁。
03:46
you'd still see one multimillionaire多百万富翁
who didn't go to university大学.
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(笑声)
03:51
(Laughter笑声)
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所以贝尔故事最大的问题
不在于它是虚假的。
03:56
So the biggest最大 problem问题 with Belle's贝尔的 story故事
is not that it was false.
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在于它只是一个故事。
03:59
It's that it's only one story故事.
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04:03
There might威力 be thousands数千 of other stories故事
where diet饮食 alone单独 failed失败,
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也许有成千上万仅靠饮食失败的故事,
但我们从没听到这些故事。
04:07
but we never hear about them.
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04:10
We share分享 the outlier局外人 cases
because they are new,
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我们分享异常个案
只是因为它们是新奇的,
因此它们成了新闻。
04:14
and therefore因此 they are news新闻.
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04:16
We never share分享 the ordinary普通 cases.
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我们从不分享普通案例。
它们太普通,
它们就是日常发生的事情。
04:19
They're too ordinary普通,
they're what normally一般 happens发生.
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04:23
And that's the true真正
99 percent百分 that we ignore忽视.
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这是我们忽略的99%的真相。
就像在社会中,
04:26
Just like in society社会, you can't just
listen to the one percent百分,
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你不能只听1%的异常个案,
04:29
the outliers离群,
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去忽略99%的普通事实。
04:30
and ignore忽视 the 99 percent百分, the ordinary普通.
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04:34
Because that's the second第二 example
of confirmation确认 bias偏压.
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因为这是第二个肯证偏差的例子,
我们接受事实作为数据。
04:37
We accept接受 a fact事实 as data数据.
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04:41
The biggest最大 problem问题 is not
that we live生活 in a post-truth后的真相 world世界;
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最大的问题不在于
我们生活在后真相世界;
在于我们生活在后数据世界。
04:45
it's that we live生活 in a post-data数据后 world世界.
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04:49
We prefer比较喜欢 a single story故事 to tons of data数据.
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比起大量的数据,
我们更喜欢简单的故事。
04:54
Now, stories故事 are powerful强大,
they're vivid生动, they bring带来 it to life.
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那些强大的,生动的,鲜活的故事。
他们告诉你
演讲要用故事开场。
04:57
They tell you to start开始
every一切 talk with a story故事.
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我也是这样做的。
05:00
I did.
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05:01
But a single story故事
is meaningless无意义的 and misleading误导
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但一个简单的故事
是没有意义且误导人的,
除非它有大量的数据支持。
05:06
unless除非 it's backed已备份 up by large-scale大规模 data数据.
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05:11
But even if we had large-scale大规模 data数据,
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但即便我们有大量的数据,
这可能仍然不够。
05:13
that might威力 still not be enough足够.
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05:16
Because it could still be consistent一贯
with rival对手 theories理论.
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因为它可能仍然与对立结论一致。
05:20
Let me explain说明.
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让我解释一下。
05:22
A classic经典 study研究
by psychologist心理学家 Peter彼得 Wason沃森
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心理学家彼得·沃森的一项经典研究
给你一组三个数据
05:25
gives you a set of three numbers数字
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并让你思考产生这些数据的规律。
05:27
and asks you to think of the rule规则
that generated产生 them.
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05:30
So if you're given特定 two, four, six,
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如果他们给了你三个数字:
2,4,6,
规律是什么?
05:35
what's the rule规则?
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05:36
Well, most people would think,
it's successive连续 even numbers数字.
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很多人会认为,这是连续的偶数。
05:40
How would you test测试 it?
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你会如何检验它?
你可以提出其他连续偶数的组合:
05:42
Well, you'd propose提出 other sets
of successive连续 even numbers数字:
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4,6,8或者12,14,16.
05:45
4, 6, 8 or 12, 14, 16.
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05:49
And Peter彼得 would say these sets also work.
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彼得说这些数组也行。
05:53
But knowing会心 that these sets also work,
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但知道这些数组也行,
知道数百组连续的偶数也可以,
05:55
knowing会心 that perhaps也许 hundreds数以百计 of sets
of successive连续 even numbers数字 also work,
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这个结论形同虚设。
06:00
tells告诉 you nothing.
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06:02
Because this is still consistent一贯
with rival对手 theories理论.
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因为这仍然与对立理论一致。
06:06
Perhaps也许 the rule规则
is any three even numbers数字.
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也许规则可能是任意三个偶数。
06:11
Or any three increasing增加 numbers数字.
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或者任何三个不断增加的数字。
06:14
And that's the third第三 example
of confirmation确认 bias偏压:
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这是第三个肯证偏差的例子:
接受数据作为证据,
06:17
accepting验收 data数据 as evidence证据,
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即便它与对立结论一致。
06:20
even if it's consistent一贯
with rival对手 theories理论.
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06:24
Data数据 is just a collection采集 of facts事实.
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数据只是事实的组合。
06:28
Evidence证据 is data数据 that supports支持
one theory理论 and rules规则 out others其他.
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证据是支持一种理论
排除其他理论的数据。
06:34
So the best最好 way to support支持 your theory理论
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所以支持你的理论最好的方法是
试图去反驳它,
做魔鬼的代言人(唱反调)。
06:37
is actually其实 to try to disprove驳斥 it,
to play devil's鬼才 advocate主张.
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06:41
So test测试 something, like 4, 12, 26.
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所以检验一下,
比如4,12,26.
06:46
If you got a yes to that,
that would disprove驳斥 your theory理论
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如果你的答案是肯定的,
那么就证明
你的连续偶数理论是不成立的。
06:50
of successive连续 even numbers数字.
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06:53
Yet然而 this test测试 is powerful强大,
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这个检验很有力,
因为如果答案不是,
就可以排除“任何三个偶数”
06:55
because if you got a no, it would rule规则 out
"any three even numbers数字"
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和“任何三个不断增长的数字”。
07:00
and "any three increasing增加 numbers数字."
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它会排除对立理论,
但不排除你的理论。
07:01
It would rule规则 out the rival对手 theories理论,
but not rule规则 out yours你的.
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07:05
But most people are too afraid害怕
of testing测试 the 4, 12, 26,
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但大部分人
不敢用4,12,26检验,
因为他们不想肯定,
07:10
because they don't want to get a yes
and prove证明 their pet宠物 theory理论 to be wrong错误.
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也不想承认他们的宠物理论是错的。
07:16
Confirmation确认 bias偏压 is not only
about failing失败 to search搜索 for new data数据,
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肯证偏差不仅指
未能搜索到新的数据,
它也与你误解数据有关。
07:22
but it's also about misinterpreting曲解
data数据 once一旦 you receive接收 it.
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07:26
And this applies适用 outside the lab实验室
to important重要, real-world真实世界 problems问题.
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这个理论也适用于
实验室外的现实世界。
的确,托马斯•爱迪生有句名言
07:29
Indeed确实, Thomas托马斯 Edison爱迪生 famously著名 said,
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我没有失败,
07:33
"I have not failed失败,
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我成功地发现了1万种行不通的方法
07:35
I have found发现 10,000 ways方法 that won't惯于 work."
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07:40
Finding查找 out that you're wrong错误
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发现你的错误
是通往成功的唯一道路。
07:42
is the only way to find out what's right.
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07:46
Say you're a university大学
admissions招生 director导向器
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假设你是大学招生办主任,
你的理论是只有来自富裕家庭
07:49
and your theory理论 is that only
students学生们 with good grades等级
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成绩好的学生才表现好。
07:52
from rich丰富 families家庭 do well.
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07:54
So you only let in such这样 students学生们.
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所以你只招这些学生,
他们都表现很好。
07:56
And they do well.
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07:58
But that's also consistent一贯
with the rival对手 theory理论.
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但这也跟对立理论一致。
08:01
Perhaps也许 all students学生们
with good grades等级 do well,
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可能所有成绩好的学生都表现好,
不论富裕或贫穷。
08:04
rich丰富 or poor较差的.
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08:06
But you never test测试 that theory理论
because you never let in poor较差的 students学生们
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但你永远不会测试这个理论,
因为你不会招贫穷学生,
因为你不想被证明错误。
08:10
because you don't want to be proven证明 wrong错误.
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08:14
So, what have we learned学到了?
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那么,我们学到了什么?
08:17
A story故事 is not fact事实,
because it may可能 not be true真正.
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一个故事不是事实,
因为它可能不是真的。
08:21
A fact事实 is not data数据,
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一个事实不是数据,
如果只是一个数据点,
它可能不具有代表性。
08:23
it may可能 not be representative代表
if it's only one data数据 point.
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08:28
And data数据 is not evidence证据 --
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数据不是证据——
如果它与对立理论一致,
就不具有支持性。
08:31
it may可能 not be supportive支持
if it's consistent一贯 with rival对手 theories理论.
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08:36
So, what do you do?
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你会怎么做?
08:39
When you're at
the inflection拐点 points of life,
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当你处在人生的转折点,
去选择生意的策略,
08:42
deciding决定 on a strategy战略 for your business商业,
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孩子的育儿技巧,
08:44
a parenting育儿 technique技术 for your child儿童
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或者健康养生,
08:47
or a regimen方案 for your health健康,
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你如何确保你不是基于故事
08:49
how do you ensure确保
that you don't have a story故事
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而是你拥有证据?
08:53
but you have evidence证据?
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08:56
Let me give you three tips提示.
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让我给你们三个提示。
08:58
The first is to actively积极地 seek寻求
other viewpoints观点.
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首先是积极寻求其他观点。
阅读和倾听你公然不同意的人。
09:02
Read and listen to people
you flagrantly公然 disagree不同意 with.
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在你看来,他们说的90%都不对。
09:06
Ninety九十 percent百分 of what they say
may可能 be wrong错误, in your view视图.
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09:10
But what if 10 percent百分 is right?
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但如果还有10%是对的呢?
09:13
As Aristotle亚里士多德 said,
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亚里士多德说过,
“受过教育的标志是,
09:15
"The mark标记 of an educated博学 man
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你可以不接受一种观点,
09:17
is the ability能力 to entertain招待 a thought
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但你能容纳它。”
09:21
without necessarily一定 accepting验收 it."
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09:24
Surround环绕 yourself你自己 with people
who challenge挑战 you,
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和挑战你的人在一起,
创造一种积极鼓励异见的环境。
09:26
and create创建 a culture文化
that actively积极地 encourages鼓励 dissent异议.
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09:31
Some banks银行 suffered遭遇 from groupthink群体思维,
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一些银行受到群体思维的影响,
员工不敢挑战管理者的借贷决策,
09:33
where staff员工 were too afraid害怕 to challenge挑战
management's管理层的 lending贷款 decisions决定,
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引发了金融危机。
09:38
contributing贡献 to the financial金融 crisis危机.
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09:41
In a meeting会议, appoint someone有人
to be devil's鬼才 advocate主张
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开会的时候,
指定某人充当魔鬼的代言人
挑战你的宠物理论。
09:45
against反对 your pet宠物 idea理念.
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09:47
And don't just hear another另一个 viewpoint观点 --
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不要只让这些观点从你的脑后飘过,
请认真倾听。
09:50
listen to it, as well.
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09:53
As psychologist心理学家 Stephen斯蒂芬 Covey科维 said,
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正如心理学家斯蒂芬·柯维所说,
“抱着理解的态度倾听,
09:55
"Listen with the intent意图 to understand理解,
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别只想着怎么回答。”
09:59
not the intent意图 to reply回复."
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10:01
A dissenting反对 viewpoint观点
is something to learn学习 from
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对立的观点是值得学习的,
而不是不假思索地反对。
10:05
not to argue争论 against反对.
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10:07
Which哪一个 takes us to the other
forgotten忘记了 terms条款 in Bayesian贝叶斯 inference推理.
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这使我们想到
贝叶斯推断中被遗忘的部分
10:12
Because data数据 allows允许 you to learn学习,
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因为数据给你学习的空间,
但学习只是一个起点。
10:14
but learning学习 is only relative相对的
to a starting开始 point.
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如果开始就完全确信
你的宠物理论必然成立,
10:18
If you started开始 with complete完成 certainty肯定
that your pet宠物 theory理论 must必须 be true真正,
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那么你的观点不会改变——
10:23
then your view视图 won't惯于 change更改 --
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不管你看到的数据是什么。
10:25
regardless而不管 of what data数据 you see.
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10:28
Only if you are truly open打开
to the possibility可能性 of being存在 wrong错误
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只有你真正接受犯错的可能性时,
你才能学习。
10:33
can you ever learn学习.
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10:35
As Leo狮子座 Tolstoy托尔斯泰 wrote,
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正如列夫·托尔斯泰所写,
“最难的事情
10:37
"The most difficult subjects主题
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也可以向最迟钝的人解释清楚,
10:39
can be explained解释 to the most
slow-witted思维迟钝 man
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只要他还没有
形成任何关于此问题的见解。
10:43
if he has not formed形成
any idea理念 of them already已经.
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10:46
But the simplest简单 thing
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但最简单的事情
却无法向最聪明的人说清楚,
10:48
cannot不能 be made制作 clear明确
to the most intelligent智能 man
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如果他确信他已经知道答案。“
10:51
if he is firmly牢牢 persuaded说服了
that he knows知道 already已经."
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10:56
Tip小费 number two is "listen to experts专家."
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第二个提示是:“听专家的。”
11:01
Now, that's perhaps也许 the most
unpopular不得人心 advice忠告 that I could give you.
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这可能是我给你的
最不流行的建议了。
(笑声)
11:04
(Laughter笑声)
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英国政治家迈克尔·戈夫曾说过:
11:05
British英国的 politician政治家 Michael迈克尔 Gove戈夫
famously著名 said that people in this country国家
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这个国家的人民已经受够专家了。
11:10
have had enough足够 of experts专家.
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11:13
A recent最近 poll轮询 showed显示 that more people
would trust相信 their hairdresser理发师 --
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最近的调查显示
更多人相信他们的理发师——
(笑声)
11:17
(Laughter笑声)
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或者街上的路人,
11:19
or the man on the street
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而非商界领袖、医疗服务机构、
甚至慈善机构的领导人。
11:21
than they would leaders领导者 of businesses企业,
the health健康 service服务 and even charities慈善机构.
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11:26
So we respect尊重 a teeth-whitening牙齿美白 formula
discovered发现 by a mom妈妈,
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所以我们敬仰一位母亲
发现的牙齿美白配方,
或者我们会听
女演员对疫苗接种的看法。
11:30
or we listen to an actress's女演员的 view视图
on vaccination疫苗接种.
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我们喜欢说实话、凭直觉做事的人,
11:33
We like people who tell it like it is,
who go with their gut肠道,
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我们觉得这叫真实。
11:36
and we call them authentic真实.
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11:38
But gut肠道 feel can only get you so far.
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但直觉只能让你走这么远。
11:42
Gut肠道 feel would tell you never to give
water to a baby宝宝 with diarrhea腹泻,
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直觉会告诉你永远不要
给腹泻的婴儿喝水,
因为它会从另外一端流出。
11:47
because it would just
flow out the other end结束.
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专家告诉你,事实并非如此。
11:49
Expertise专门知识 tells告诉 you otherwise除此以外.
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11:53
You'd never trust相信 your surgery手术
to the man on the street.
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你绝不会把你的手术交给街上的人。
11:56
You'd want an expert专家
who spent花费 years年份 doing surgery手术
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你想要一个拥有多年手术经验
并且有最佳技巧的专家。
12:00
and knows知道 the best最好 techniques技术.
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12:03
But that should apply应用
to every一切 major重大的 decision决定.
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但这点应该应用到每个重要的决定中。
12:07
Politics政治, business商业, health健康 advice忠告
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政治,商业,健康建议都需要专家,
12:11
require要求 expertise专门知识, just like surgery手术.
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就跟做手术一样。
12:16
So then, why are experts专家 so mistrusted不信任?
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那么,为什么专家如此不被信任呢?
12:20
Well, one reason原因
is they're seen看到 as out of touch触摸.
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一个原因是他们脱离群众。
一个年薪百万的总裁
不可能为街头的人发声。
12:24
A millionaire百万富翁 CEOCEO couldn't不能 possibly或者
speak说话 for the man on the street.
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12:29
But true真正 expertise专门知识 is found发现 on evidence证据.
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但真正的专业知识来自于证据。
12:33
And evidence证据 stands站立 up
for the man on the street
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证据支持街上的人,
反对精英。
12:36
and against反对 the elites精英.
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12:38
Because evidence证据 forces军队 you to prove证明 it.
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因为证据迫使你证明它。
12:41
Evidence证据 prevents防止 the elites精英
from imposing威风 their own拥有 view视图
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证据不允许精英们强加他们的观点
在没有证明的情况下。
12:46
without proof证明.
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12:49
A second第二 reason原因
why experts专家 are not trusted信任
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第二个专家不被信任的理由是,
不同的专家观点不同。
12:51
is that different不同 experts专家
say different不同 things.
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只要有专家说
脱欧对英国而言弊端重重,
12:54
For every一切 expert专家 who claimed声称 that leaving离开
the EU欧洲联盟 would be bad for Britain英国,
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就会有另外一个专家说
脱欧对英国而言好处良多。
12:58
another另一个 expert专家 claimed声称 it would be good.
228
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这些所谓的专家,
他们一半的观点都是错的。
13:01
Half of these so-called所谓 experts专家
will be wrong错误.
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13:05
And I have to admit承认 that most papers文件
written书面 by experts专家 are wrong错误.
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我不得不承认,大多数专家
写的论文也都是错的。
13:10
Or at best最好, make claims索赔 that
the evidence证据 doesn't actually其实 support支持.
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换一种好听一点的说法,
做出证据并不支持的断言。
13:14
So we can't just take
an expert's专家的 word for it.
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所以我们不能只相信专家。
13:18
In November十一月 2016, a study研究
on executive行政人员 pay工资 hit击中 national国民 headlines新闻头条.
233
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2016年11月,一个关于
高管薪酬的研究登上国家头条。
13:25
Even though虽然 none没有 of the newspapers报纸
who covered覆盖 the study研究
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尽管报道这项研究的报社
没有一家看过这项研究。
13:28
had even seen看到 the study研究.
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13:30
It wasn't even out yet然而.
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这项研究甚至还没有发表。
13:32
They just took the author's作者 word for it,
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他们只是把作者的话当真了,
13:35
just like with Belle美女.
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就像贝尔的故事一样。
13:38
Nor也不 does it mean that we can
just handpick手选 any study研究
239
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这不意味着我们可以随便挑选一个
刚好支持我们观点的研究——
13:40
that happens发生 to support支持 our viewpoint观点 --
240
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这也是肯证偏差。
13:42
that would, again, be confirmation确认 bias偏压.
241
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也不意味着7项研究表明A,
13:44
Nor也不 does it mean
that if seven studies学习 show显示 A
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三项研究表明B,
13:47
and three show显示 B,
243
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A就必然是真的。
13:49
that A must必须 be true真正.
244
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13:51
What matters事项 is the quality质量,
245
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重点在于质量,
而不是专家的数量。
13:53
and not the quantity数量 of expertise专门知识.
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13:57
So we should do two things.
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所以我们应该做两件事。
14:00
First, we should critically危重 examine检查
the credentials证书 of the authors作者.
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首先,我们应该
严格审查作者的资历,
14:05
Just like you'd critically危重 examine检查
the credentials证书 of a potential潜在 surgeon外科医生.
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就像你会谨慎地审视一个
外科医生的资质一样。
14:10
Are they truly experts专家 in the matter,
250
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他们真的是这个领域的专家吗,
或者他们有没有既得利益?
14:13
or do they have a vested既得利益 interest利益?
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14:16
Second第二, we should pay工资 particular特定 attention注意
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第二,我们应该特别注意
发布在顶级期刊上的论文。
14:19
to papers文件 published发表
in the top最佳 academic学术的 journals期刊.
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14:24
Now, academics学者 are often经常 accused被告
of being存在 detached超脱 from the real真实 world世界.
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如今,
学术界常常被指责与现实世界脱节。
14:28
But this detachment分离 gives you
years年份 to spend on a study研究.
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但这种脱节
给了你充足的时间去研究。
去真正确定一个结果,
14:32
To really nail down a result结果,
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去排除那些对立的理论,
14:34
to rule规则 out those rival对手 theories理论,
257
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2015
并且区分因果关系。
14:36
and to distinguish区分 correlation相关
from causation因果关系.
258
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14:40
And academic学术的 journals期刊 involve涉及 peer窥视 review评论,
259
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学术期刊涉及同行评议,
在这个环节,论文会被严格审查
14:43
where a paper is rigorously严格 scrutinized审查
260
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(笑声)
14:45
(Laughter笑声)
261
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被学术界的尖端代表审查。
14:47
by the world's世界 leading领导 minds头脑.
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14:50
The better the journal日志,
the higher更高 the standard标准.
263
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越好的期刊,标准越高。
最顶级期刊的论文拒绝率高达95%
14:53
The most elite原种 journals期刊
reject拒绝 95 percent百分 of papers文件.
264
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14:59
Now, academic学术的 evidence证据 is not everything.
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如今,学术证据并不是一切。
15:03
Real-world真实世界 experience经验 is critical危急, also.
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现实世界的经验也很重要。
15:06
And peer窥视 review评论 is not perfect完善,
mistakes错误 are made制作.
267
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同行评议也不尽完美,常犯错误。
15:10
But it's better to go
with something checked检查
268
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但有检查
总比没有检查好。
15:12
than something unchecked未选中.
269
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15:14
If we latch onto a study研究
because we like the findings发现,
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如果我们青睐一个研究
是因为我们喜欢这个发现,
而不考虑它是谁做的
或者它是否经过审查,
15:17
without considering考虑 who it's by
or whether是否 it's even been vetted审核,
271
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这个研究就很有可能误导人。
15:21
there is a massive大规模的 chance机会
that that study研究 is misleading误导.
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15:26
And those of us who claim要求 to be experts专家
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914894
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我们这些自称专家的人,
需要认识到我们分析能力的局限性。
15:29
should recognize认识 the limitations限制
of our analysis分析.
274
917498
3253
15:33
Very rarely很少 is it possible可能 to prove证明
or predict预测 something with certainty肯定,
275
921244
4563
确切地证明或预测某事
的可能性是很小的,
15:38
yet然而 it's so tempting诱人的 to make
a sweeping笼统的, unqualified不合格 statement声明.
276
926292
4369
然而,发表一份全面、
不够格的声明十分诱人。
15:43
It's easier更轻松 to turn into a headline标题
or to be tweeted啾啾 in 140 characters人物.
277
931069
4344
它们往往能成为头条
或者微博热点
15:48
But even evidence证据 may可能 not be proof证明.
278
936417
3142
即便证据并不充分详实。
15:52
It may可能 not be universal普遍,
it may可能 not apply应用 in every一切 setting设置.
279
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它可能不是通用的,
可能不适用于任何条件。
15:57
So don't say, "Red wine红酒
causes原因 longer life,"
280
945252
4920
所以不要说,
“红酒能延长寿命,”
当证据只是在
红酒与长寿相关时,
16:02
when the evidence证据 is only that red wine红酒
is correlated相关 with longer life.
281
950196
4682
16:07
And only then in people
who exercise行使 as well.
282
955379
2770
并且样本局限在运动人群中。
16:11
Tip小费 number three
is "pause暂停 before sharing分享 anything."
283
959868
3966
提示三:
“分享任何事情前先三思。”
16:16
The Hippocratic希波克拉底 oath誓言 says,
"First, do no harm危害."
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964907
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希波克拉底誓言(医者誓言)说,
“首先,不要伤害。”
16:21
What we share分享 is potentially可能 contagious传染性的,
285
969046
3134
我们分享的东西
有可能会快速蔓延,
所以要谨慎地对待
我们散布的东西。
16:24
so be very careful小心 about what we spread传播.
286
972204
3683
16:28
Our goal目标 should not be
to get likes喜欢 or retweets锐推.
287
976632
2953
我们的目的不应该是为了
获得点赞或转发。
否则,我们只会分享共识;
16:31
Otherwise除此以外, we only share分享 the consensus共识;
we don't challenge挑战 anyone's任何人的 thinking思维.
288
979609
3985
我们不会挑战任何人的思考。
16:36
Otherwise除此以外, we only share分享 what sounds声音 good,
289
984085
2905
否则,我们只分享听起来好的,
无视其是否是证据。
16:39
regardless而不管 of whether是否 it's evidence证据.
290
987014
2400
16:42
Instead代替, we should ask the following以下:
291
990188
2466
反过来,我们应该问如下问题:
16:45
If it's a story故事, is it true真正?
292
993572
2135
如果这是个故事,这是真的吗?
如果这是真的,
有大量的证据支持吗?
16:47
If it's true真正, is it backed已备份 up
by large-scale大规模 evidence证据?
293
995731
2865
如果有,证据是谁提供的,
他们的凭证是什么?
16:50
If it is, who is it by,
what are their credentials证书?
294
998620
2595
它发表了吗?
这个期刊是否足够权威?
16:53
Is it published发表,
how rigorous严格 is the journal日志?
295
1001239
2756
16:56
And ask yourself你自己
the million-dollar百万美元 question:
296
1004733
2317
并且郑重地问自己,
16:59
If the same相同 study研究 was written书面 by the same相同
authors作者 with the same相同 credentials证书
297
1007980
4023
如果同样的研究
是同等资质的同一作者写的,
17:05
but found发现 the opposite对面 results结果,
298
1013130
1587
但发现的是对立理论,
17:07
would you still be willing愿意
to believe it and to share分享 it?
299
1015608
3694
你仍然愿意相信和分享它吗?
17:13
Treating治疗 any problem问题 --
300
1021442
2246
处理任何问题——
国家经济问题或者个人健康问题,
17:15
a nation's国家 economic经济 problem问题
or an individual's个人 health健康 problem问题,
301
1023712
3792
很难。
17:19
is difficult.
302
1027528
1150
17:21
So we must必须 ensure确保 that we have
the very best最好 evidence证据 to guide指南 us.
303
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4383
所以我们必须确保
有最佳证据指引我们。
17:26
Only if it's true真正 can it be fact事实.
304
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2681
只有它是真的,才能成为事实。
17:29
Only if it's representative代表
can it be data数据.
305
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2781
只有具有代表性,才能成为数据。
17:33
Only if it's supportive支持
can it be evidence证据.
306
1041128
3165
只有被支持,才能是证据。
只有是证据,我们才能从后真相世界
17:36
And only with evidence证据
can we move移动 from a post-truth后的真相 world世界
307
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5167
走向支持真相的世界。
17:41
to a pro-truth亲真理 world世界.
308
1049508
1583
17:44
Thank you very much.
309
1052183
1334
谢谢。
(鼓掌)
17:45
(Applause掌声)
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Translated by jacks jun
Reviewed by Chen Yunru

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ABOUT THE SPEAKER
Alex Edmans - Finance professor, editor
Alex Edmans uses rigorous academic research to influence real-life business practices -- in particular, how companies can pursue purpose as well as profit.

Why you should listen

Alex Edmans is professor of finance at London Business School and managing editor of the Review of Finance, the leading academic finance journal in Europe. He is an expert in corporate governance, executive compensation, corporate social responsibility and behavioral economics.

Edmans has a unique combination of deep academic rigor and practical business experience. He's particularly passionate about translating complex academic research into practical ideas that can then be applied to real-life problems. He has spoken at the World Economic Forum in Davos, at the World Bank Distinguished Speaker Series and in the UK House of Commons. Edmans is heavily involved in the ongoing reform of corporate governance, in particular to ensure that both the diagnosis of problems and suggested solutions are based on rigorous evidence rather than anecdote. He was appointed by the UK government to study the effect of share buybacks on executive pay and investment. Edmans also serves on the Steering Group of The Purposeful Company, which aims to embed purpose into the heart of business, and on Royal London Asset Management's Responsible Investment Advisory Committee.
 
Edmans has been interviewed by Bloomberg, BBC, CNBC, CNN, ESPN, Fox, ITV, NPR, Reuters, Sky News and Sky Sports, and has written for the Wall Street Journal, Financial Times and Harvard Business Review. He runs a blog, Access to Finance, that makes academic research accessible to a general audience, and was appointed Mercers' School Memorial Professor of Business by Gresham College, to give free lectures to the public. Edmans was previously a tenured professor at Wharton, where he won 14 teaching awards in six years. At LBS, he won the Excellence in Teaching award, LBS's highest teaching accolade.

More profile about the speaker
Alex Edmans | Speaker | TED.com

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