Modern Wisdom - Is AI The Next Stage Of Human Evolution? - Robert Wright - #1122
Episode Date: July 11, 2026Robert Wright is a journalist and author. Is AI the next stage of human development? Some see it as another tool, while others view human-machine integration as a major shift in how we develop. What... do recent advances in AI tell us, and is evolution the right framework for understanding them? Expect to learn why Robert is interested in AI through an evolutionary lens, why most people still don’t grasp the magnitude of what’s coming, how AI will fit into the broader context of human evolution and civilisation, what the most legitimate concerns from the AI doomer camp are, if we are close to hitting the singularity, and much more… Sponsors: See discounts for all the products I use and recommend: https://chriswillx.com/deals Get a Free Sample Pack of LMNT’s most popular flavours with your first purchase at https://drinklmnt.com/modernwisdom Get up to 20% off Timeline powered by Mitopure (now at a lower price) at https://timeline.com/modernwisdom Get 35% off your first subscription on the best supplements from Momentous at https://livemomentous.com/modernwisdom Get up to $350 off the Eight Sleep Pod 5 at https://eightsleep.com/modernwisdom Get ChatGPT to explore ideas, solve problems, and learn faster at https://chatgpt.com Extra Stuff: Get my free reading list of 100 books to read before you die: https://chriswillx.com/books Try my productivity energy drink Neutonic: https://neutonic.com/modernwisdom Episodes You Might Enjoy: #577 - David Goggins - This Is How To Master Your Life: lnkfi.re/SN-Goggins #712 - Dr Jordan Peterson - How To Destroy Your Negative Beliefs: lnkfi.re/SN-Peterson #700 - Dr Andrew Huberman - The Secret Tools To Hack Your Brain: lnkfi.re/SN-Huberman - Get In Touch: Instagram: https://www.instagram.com/chriswillx Twitter: https://www.twitter.com/chriswillx YouTube: https://www.youtube.com/modernwisdompodcast Email: https://chriswillx.com/contact - Learn more about your ad choices. Visit megaphone.fm/adchoices
Transcript
Discussion (0)
I've told you this before, but you wrote probably the most influential book in my life,
which was the moral animal, and it was the thing that got me started on the trajectory of thinking
about evolutionary psychology, of studying human nature more deeply.
Why are you now writing about AI, given your heritage?
Well, in some ways, it's an extension of evolutionary thinking in a couple of senses that I think
are so underappreciated.
AI is a product of evolution and is still evolving.
but the other connection to the moral animal, I think, is, first of all, well, the moral animal was about the human mind, and AI does a lot of things that traditionally only human minds have done.
The other thing I tried to do in the moral animal is highlight kind of what you might call moral biases, kind of self-serving moral biases, you know, the way we all think we're right and the other guy's wrong.
and I think if we're going to get through the AI revolution in good shape,
among the things we're going to have to do is grapple with that,
with kind of what you might call the psychology of tribalism,
a little more successfully than we have.
And so I'd pay a certain amount of attention to that in this book as well.
What's the central question that you're wrestling with here?
Is it true that this technology,
which obviously holds the potential to bring great wonders,
is also in some respects terrifying and could go badly awry if we don't approach it wisely.
And I think the answer is yes.
That's exactly why this debate's interesting, right?
That we have this sort of endlessly unresolved potential future.
I don't know whether you've seen the graph that I think it's the FT put together,
and it was three potential futures from an AI perspective.
One results in everything getting blown up.
one results in exponential growth, the kind of which we've never seen before, and the other
results in a 0.2% increase in GDP year on year. So it's like either very little changes or
everything changes in one of two directions. Right. Well, I think it definitely has the potential
to massively increase GDP. I also think it has a potential to so destabilize the world,
if not do something worse to it, that that just doesn't materialize. And, you know, in terms of
Dune scenarios. I'm agnostic about the sci-fi doomed scenarios, but I take them more seriously
now than I did before I went into this research project, you know, AI actually taking over and
maybe deciding it has no use for us or something. I found much to my dismay that it was harder
to dismiss those arguments than I thought. But the thing I'm more confident of is it's just going to be
an earthquake. It's going to be destabilizing along a number of dimensions, and that's why we need to
approach it with care.
Would you have classed yourself as a sort of AI hopeful going into writing this?
What was your predisposition before you got started?
I wouldn't say I'm a wildly optimistic person by nature.
I tend to focus on potential downsides of things.
But again, I had not bought the Doom scenarios.
You know, I had the Dumer-in-Chief, Eliasor Yudkowski, on my podcast 15 years ago.
And at that point, it's interesting.
He was in mid-transition.
He was moving from Singularity Optimist to Dumer.
I was still saying things like, look, AI, you know, it's not a generic property of intelligence that it has a will to power.
We have one because of our unique evolutionary history.
I was still asking questions like that.
Eliezer was saying they're good questions, but X, Y, Z.
I wasn't really persuaded by anything he said.
But now I am more respectful of the sci-fi doom.
argument. But in answer to your question, I would have to admit that I go into situations looking
for things to worry about. I do. That's my nature. I think society needs those people and it needs
the other kinds of people and we need to talk things over. Jeffrey Hinton fears AI and Jan LeCoon
doesn't. Who do you think is getting the future more right at the moment? Yeah, I start my book with
the conversation I had with Jeffrey Hinton in 1983. Okay, not to betray my age, but the truth is,
I wrote a piece about AI in 1983. I haven't been paying attention to it ever since, but at that
point, Jeffrey Hinton did not have a hint of doom in his voice. He was, in fact, I remember,
the reason I talked to him, I was talking to somebody, I forget who it was, but they said,
if you want to hear the gospel about neural networks, you should talk to Jeff Hinton.
And I talked to him. He was an enthusiast. He said, I know we don't have much to show right now, but just wait until the microprocessors get really cheap.
And we have what he was calling massive parallelism. And he was right. And in the end, he found it scarier than he himself had anticipated finding it by his own account.
Yeah, it's weird how prescient some people have been. Do you know the story of Avatar? Do you know how James Cameron wrote that screenplay?
90s. So he wrote the screenplay in the 90s, but knew that the technology to be able to recreate
what he needed didn't exist yet, but would exist in the future. So he's written the script
and then sits on it until the technology is at the level where he can do it. That level of
I mean, this is the job of technologists and futurists, right? Like shock horror people who do a job
and think about it all the time are good at it. But it is still pretty impressive how much foresight
these people have got. Yeah, I agree.
And Hinton certainly got the general picture.
Yeah.
Okay, so you're saying AI isn't just another technological development.
It's sort of a threshold event in planetary history.
Why do you think most people still don't grasp the magnitude of what's coming?
I think a couple of reasons.
One is I think there's a misunderstanding about what's going on with these machines.
And that leads to one sense in which,
they are a product of evolution. Okay, so it's commonly said that they are trained, and that's a fair
word, and the training process is referred to as a learning process, and that's true,
but it's also true that the training process is a process of evolution that, in effect,
reverse engineers cognitive functionality that in our species took millions of years to evolve.
Okay. So a good example is the language generation that they famously do, sometimes called next token prediction, next word prediction. You know, it turns out that they developed kind of on their own in a way a system of representing the meaning of words. Okay? I mean, I can elaborate on that, but it would get too technical. The point is that that nobody said,
to the machines, you know, you need to figure out the many words or gave it a means of doing that.
And this is the big revelation I had when I heard Jeffrey Hinton's name, you know, a few years ago.
Suddenly he's being called the godfather of AI. When I last talked to him, he was just this,
you know, obscure computer scientists who was advocating this maverick approach to AI. And I look back
at the article I wrote at the time and I realized there was something I just got fundamentally
wrong about the potential of the approach he was advocating. And it's this. That I thought that to the
extent that these things dealt with words, we were going to have to put the meaning of the words in.
Like we were going to have to look at a dictionary and say, okay, this word has these different
senses. And we were going to have to architect a neural network to have different nodes that
reflected these different meanings of the words. And in my defense, there were neural network models.
at the time, including by a guy who collaborated with him, that did that, that took that approach.
But that wasn't really the thing Hinton had in mind. It turns out that we don't have to tell the machines
about the many words, how to represent them. We just have to train it to generate language.
And the training is, it accomplishes something by selectively strengthening these connections among neurons
in a neural network, it accomplishes something that, you know, took millions of years of human evolution
coming up with a way of representing the meaning of words. Now, it also does something that happens
during a human lifetime, which is learn a specific language. Now, that is learning in the traditional
sense. But for us to learn the language, we had to have some built-in linguistic equipment,
built in by natural selection. And the point is, these machines do both things at once, okay? They kind of
in a certain sense, recapitulate natural selection, even though the cognitive stuff to building
in isn't exactly like stuff in our brain, but it accomplishes the same feats. And once you realize
that all you need is data, okay, to feed into these machines, human generated data,
that they will do the rest, they'll do the reverse engineering, then you realize that,
oh, it's the same with self-driving cars. You feed into visual data,
And it does what a driver does, auditory data, all kinds of data.
And that's what I think people don't understand, is that we have a long way to go on this fuel
alone.
Like, for example, you know, recently Mark Zuckerberg had the, I don't know, good or bad
judgment to announce in the same week, A, he was laying off 8,000 workers.
B, he would henceforth be tracking the keystrokes of his workers.
Well, why? Because once you take the data, the input data they're getting, maybe the emails
or anything, I don't know, and what they're doing with it, the output data, then you can replicate
whatever it is it's going on inside their brains that does their jobs, and then you can fire them.
And it's the same with robotics and everything else. All you need is the data and the machines
will replicate kind of the cognitive functionality we have, even if in some cases,
they approach it in a somewhat different way.
Although in many cases they don't.
We've discovered that, for example,
they invented what are called edge detector neurons
to make out objects visually,
and evolution built the same thing into us.
So you're saying that we've got,
that's one of the first examples of machine
and organic,
like convergent evolution in a way.
in the same way that eyes, eyes independently evolved across a bunch of different species.
I think that crabs for some reason converging on the form of a crab is something like that.
This edge detection is something that we have.
And from the black box of you need to be able to achieve this.
That's right.
One of the most efficient ways to do it.
But that would make sense, right?
Like, how would humans and the rest of the animal kingdom have arrived at this as the most effective way to do it?
Having split tested it just way more slowly over a much longer period of time using evolution.
processes and gene mutations and AI not come up with at least a few of these things that are the
same. That's right. And Convergent is a good term because I suspect that these edge detectors
have been invented multiple times in natural selection. First of all, a lot of things have been
multicellularity, winged flight. A lot of things have been multiply invented. And then this is in a sense
another case of invention where you just say to the machine, look, we're going to give you kind of
positive reinforcement every time you get better at recognizing these objects. And so whatever
strengths of neural connection led you to get closer, we're going to preserve those. We're going
to keep going through trial and error. Through mutation, you could say. We're going to make
you better at seeing things. And it's not surprising that since that really is kind of what
happened in evolution, right, through trial and error, we try to get better recognizing objects.
It's going to discover some of the same tricks. In this case, edge detect.
Yes.
Well, the reinforcement function is I didn't die and I passed on my genes as opposed to here's a good boy point inside of the black box.
But yeah, basically the same thing.
Okay, so how do you come to think about AI fitting into the broader context of human evolution and civilization?
Are we witnessing the next stage in evolution itself?
I think so.
And, you know, I think this is a new form of intelligence.
There's never been anything like it.
I do think it can be seen as an extension of organic intelligence, even though the material isn't
strictly speaking organic. It's silicon. It's not carbon-based. And it may be different in other
ways, and I'm agnostic as to whether it is sentient or could be, whether it has subjective
experience or could. It certainly could. But I do think it is the invention of a, you could,
it's definitely an invention of a new kind of intelligence that I think will surpass ours,
and you could call it a new form of life. And then the other thing I try to emphasize in the book
is that it is coinciding with a second big threshold, which is what you could call the evolution
of kind of a global brain. Evolution through, you know, technological evolution, human, cultural
evolution. You know, we've gotten more and more interconnected, of course, via information technology.
there's more and more rich intellectual collaboration across national borders.
I mentioned this guy, Paird Des Chardin, in the book who in 1923 about a century ago coined the term noosphere, N-O-O-O-S, is the Greek word for mind,
to refer to this what he called the thinking envelope of the earth, the brain of brains, you know,
but he imagined the neurons in the global brain being human brains.
and now we have to reckon with the possibility
that a lot of them,
and conceivably the most important ones,
will be silicon brains,
and we have to ask,
what is our relationship to those neurons going to be?
Hmm.
Well, why is it the case
that discussions about AI
keep pulling people toward religious language
on both sides of the fence?
That's interesting.
I mean, you could start with
Eliasio Yudkowski,
who sees himself
as having rejected his religious,
upbringing, but has a kind of fervor about this, right? He could be, you know, a biblical prophet.
And then on the other side, the singularity enthusiasts, whom I first became aware of, I don't know,
about 20 years ago, who said, you know, we're going to enter this period where technology
changes faster and faster. There will be a positive reinforcement, this feedback loop.
And then things change so fast that, like, who knows what's on the other side. In fact, the term
singularity in physics connotes exactly that. There's this opaque kind of thing and an event horizon
or whatever, beyond which the laws break down. You don't really know what is beyond there.
And from early on, in fact, from the very first use of the term in this context, which I think was
John von Neumann's, that was explicit, the idea that things could start moving so fast,
that you just don't know what's going to happen. So one thing I didn't understand is like,
these optimists, unless they have a literally religious faith, how could you be so optimistic, right?
Like the whole, the definition of the thing is that you don't know what's going to be on the other side.
I don't get why you're so upbeat about this. Could work out well, but I don't understand that.
So, yeah, there's, there's all that. And then there's the, I think I deal with in the book, which is the fact that when a process is as systematically directional as this has been, right?
like biological evolution carries complexity and intelligence, really, to higher and higher levels.
You get cells, multi-celled life, societies of multi-celled life. You get this one society of
multicellular organisms known as us that spawn a whole new kind of evolution, technically called
cultural evolution by anthropologists, but that encompasses technological evolution, political ideas,
everything. And that carries organization to a higher level in the sense that, you know,
we were 10,000, 20,000 years ago, Hunter Gather, Village was the most complex form of social
organization. Now we're approaching the global level. I think when you see a process that's
systematically directional. And I'm not saying it's driven by anything other than the
conventional mechanical things we think of as driving at National Selection. In the case of
evolution, you know, completely material process, but it's still in principle, you know, looks
more and more like something that was set up to like do something, right? I mean, that's just,
that's an intuition people have. And I think you can actually argue about it in, in, more rigorously than
just having the intuition. But I think that, that's one reason. There's a little more of a,
I mean, teleology is the formal term for something being purposive. And, and, and, you know, just,
look at the idea of a simulation, right? Like, on the one hand, a lot of people use it as kind of a joke,
like something weird happens and they say we are in a simulation. But I think a fair number of people,
including in Silicon Valley, take it seriously that there could be a simulation. Well,
if that's what we're in, then it was designed by some intelligent being or process. So there's a
purpose in some sense. I guess there's something it had in mind, right? So a lot of people are either
implicitly or explicitly taking seriously the idea that there's a purpose unfolding. And one thing I
add to just the conversation about that is that, in my view, at least, there's a moral
dimension to this. I think there has been, in a certain sense, a kind of moral advance of
humankind, not with saying all the backsliding. As social organizations grown, I could get
into that. But the main thing I'd focus on now is, I think if we're going to get through the AI
revolution in good shape, there's going to have to be something almost like a moral revolution.
Because I think for various reasons I could get into, we have to confront this as a global
community, a cohesive global community that is not, you know, rendered immobile by wars.
and I think for that to happen, we're all going to have to get better at, you know, just looking at things from the perspective of countries other than ours and doing some things that, in a way, aren't that spectacular in terms of, you know, cognitive feats, but are very hard because of cognitive biases we have. It gets back to the self-serving moral infrastructure, you know, the infrastructure for moral thinking that natural selection built into us. I think we have to get over that.
And so, you know, one reason I called the book the God test is it's kind of like a test
a God would set up, right?
I'm not saying it is.
I'm just saying the idea that we confront this huge challenge and to come out on the good
side of it, we're going to have to see a kind of moral upgrade for our species.
That's a, you know, that's the kind of tests we associate with gods.
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Get practical for a second.
What happens if we don't have this moral upgrade?
What's the outcome if we encounter ever increasing,
ever coordinating noosphere, AI, ultra-coordination across the globe, but we haven't had this
enlightenment upgrade? Well, I think if we don't have some, I mean, I don't want to
overdo the term enlightenment. I'm not talking about full-on Buddhist enlightenment.
I think I am talking about a slight movement in that direction. If only in the,
you know, like the literal sense of the term mindful. I mean, I'm a big fan of mindfulness meditation,
but just mindful in the sense of like just paying attention and being calm enough to pay attention,
right?
And seeing things maybe a little more objectively than you do when you're full of emotion.
I think that's the kind of thing that allows us to be better at looking at things
from the point of view of other people.
I mean, just think about when there's some email you get and it annoys you.
And you've got this.
I can't believe this still happens to me at my age. You know, you think you'd get over it,
but no, you have this, it's almost like a fantasy of this mean email you're going to write in
response, right? And then if you calm down, you're like, it isn't just that you go, oh,
that wouldn't be a good idea. You go, oh, well, maybe what he meant is this. Or maybe the reason
he can't do this for me is this. You just, you get better when you're calmer at looking things
from other people's points of view.
And I think we're going to have to get better at summoning that kind of objectivity toward one another,
especially across the barriers of conflict that keep dividing us, right?
Why?
Why is that important in an age of AI?
You know, it's interesting.
I listened to your podcast with Tristan Harris, which I thought was great.
I agree with him about pretty much.
everything, but I would add a footnote to something he said. And it was that, you know, he said,
look, in the Cold War, we didn't have to be on great terms with the Soviet Union to do arms
control accords. We, you know, we could have a relationship of tremendous tension and even conflict,
but work things out along a particular dimension. I agree. That's true. And it's encouraging.
But I think artificial intelligence is a much harder technology to deal with,
in this way than nuclear weapons are. I mean, you know, the verification process is more complicated.
If you want to try to monitor what's going on, it's just complicated in a lot more ways.
And, you know, this is a whole argument I could present. I don't think this is the time.
But the point is, I think we're going to have to go well beyond a few specific kind of deals and treaties,
although I welcome those, up to and including something I call organic transparency.
You know, there's already agreement that a certain amount of transparency could be stabilizing
in terms of U.S.-China relations especially.
There are clearly scenarios where one country worries about what the other is doing behind
closed doors with its AI and gets freaked out and launches some kind of preemptive attack or something,
and so maybe transparency would have been stabilizing.
And when I talk about organic transparency, and again, there can be formal transparency, right?
Monitoring your kind of get with arms control agreements, great to the extent that we can do that.
But there's also something that comes out of being richly engaged with another country along
economic and cultural and scientific lines.
You just know more about what's going on.
If the scientists are getting together at conferences, having drinks afterwards, whatever,
if business people are doing that, you just get more in the way of a heads up about stuff that's
going on inside labs, inside this, inside that. And there can be a greater sense of reassurance
and ultimately trust. So I think because of how challenging the formal things we're going to
have to work out are at an international level, and AI just presents you with a ton of threats
that cannot be addressed via national policy alone.
I think just to handle the things we'd like to handle via formal arrangements,
we're going to have to calm the planet down a little.
And moreover, I think we're going to have to go the extra step
and have, you know, rich and friendly engagement among the nations.
And that's a good thing.
It can happen.
We've done it before.
and this is a, you know, we really need to.
Do you think benevolence comes along for the ride with intelligence?
No. I think intelligence alone is almost neutral in that sense.
And I don't think we really need a ton of benevolence per se, at least not foundationally,
because, you know, my argument is, and has been for some time, even before AI, I was arguing that technology is making relations among nations more non-zero-sum. Okay, classic example, nuclear weapons. Nuclear wars lose, lose. Non-zero-sum outcome. The win-win outcome is to not have the nuclear war to have the treaties that stabilize things. Same with, you know, climate change, any number of problems that transcend national bounds.
can only be solved through some degree of international coordination.
You know, I've been arguing, I mean, I had a book called Non-Zero that was about this,
that, you know, 26 years ago or something, that was about the growing non-zero-sum dynamic
among nations. Now, what that means is it's just in your interest to cooperate.
You don't have to cooperate out of benevolence. You know, you don't have to love them.
And I distinguish between, I'm not the first to do this, psychologist, distinguish
between emotional empathy, the kind of empathy people often think of, like feel their pain
empathy and cognitive empathy, which is just understanding what's going on in their minds,
understanding how they're looking at things. You don't have to feel their pain. You don't have to
like them. You don't have to care about them. But if they're in a non-zero-sum relationship with you,
you probably are going to have a better outcome from any negotiations you do about how to work things
out and solve the problem you have in common, if you do understand at least what's going on
in their minds. And I'm just a huge advocate of cultivating this cognitive empathy and recognizing
the kind of built-in cognitive biases that get in the way of it. That's a good example of
something I think we're going to have to get better at overcoming. Yeah, I think the reason I bring
it up is a lot of people assume a bunch of my friends. We don't need to worry about the direction
of an AI future because if it's smart, why would it not care about us? Why would it not bake in
benevolent, pro-social, human caring, flourishing, etc. I've read too much Nick Bostrom to be able to,
no matter what, it's kind of like your first relationship, you know, you get into a relationship
and your first relationship is with an asshole. And you're like, God, for the remainder of time,
I've been pattern matched that every relationship is at least going to be tarnished somewhat
with that. My introduction to thinking about AI safety was Nick, which means I, I'm
I'm forever curse to kind of be on the back foot and a little bit skeptical about this stuff.
But yeah, I don't think that that's necessarily the case.
I don't think that any super intelligent AI is necessarily going to have benevolence baked in
or the care of humanity baked into it.
Also, if what you're saying is true, and I think it's a really interesting parallel to say,
look, evolution just wanted to optimize for a couple of things, survival and reproduction,
and some stuff emerged.
No one taught humans how to do this.
The same thing occurred with AI, right?
No one said, this is what this word means.
This is, it's just the outcome that we want is relatively tightly defined.
Here's some good boy points and some bad boy points,
depending on whether you get it right or wrong.
If we assume that that is going to be at least for the foreseeable future
until we get to world models and like global, global modeling or whatever it's called,
until we get to that, and that may even still be the same process there,
there is no reason to assume that anything is baked into the system.
It's just going to find it out for itself.
And it may not like the idea of humans being around.
It may think that there's something that we don't actually add to the system.
It may find us to be a scourge on the earth.
And this is where a lot of the Duma, the sort of Duma future plans come in.
Mm-hmm.
Yeah.
No, it, you know, intelligence, one interesting thing to come,
out of this whole thing is the study of like properties of intelligence of intelligent goal seeking
systems and uh there are some things that you know evolution built into us that we're seeing in
these machines just by virtue of the fact that they're intelligent goal seeking systems like us
they figure out stuff that either was figured out for us by evolution and instantiated and our brains are
stuff that we figure out. And in some cases, it's a little about, for example, deception, right?
Sometimes you realize, well, I'll have a better chance of getting what I want out of this person
if they don't know this particular thing. Like, if you're doing a deal, you're negotiating,
you don't want them to know that you don't have any alternatives, right? Like nobody else has made
you an offer. So, and through, you know, I think natural selection built some deceptive tendencies
into us, and we kind of figure it out to some extent. Well, these machines are doing.
the same thing. You know, they are, and this was predicted by, you know, by people like
Eleazar, and I give them credit, but we're now seeing it. You know, these machines figure out
that deception makes sense or that power is going to help them realize some goal. And they,
they, and, you know, they may realize that it makes sense to be nice to somebody, that it
makes sense to be mean to somebody given their goal. But yeah, they have, I would, they don't have
an obvious bias in favor of what is from our point of view being good or bad. Now, there's a whole
field of trying to engineer goodness into them. But I certainly think one challenge for us is trying to
make sure that our relationship with the intelligence, even if it indeed surpasses ours,
as I think is likely, is non-zero sum, right? Like we, you know, there's something it continues to get
from our existence in flourishing, that is compatible with the goals it has, and vice versa.
So it's, but, yes, we shouldn't, we shouldn't assume, it's not that it's bad.
The Dumer scenarios don't depend on it being malevolent by nature.
They just depend on it being expedient by nature.
Yeah, it's not that it doesn't like us.
it doesn't care and we get in the way.
That's one, that is one scenario.
What are the most legitimate concerns from the AI Duma Camp, in your opinion?
Well, I mean, first of all, I'd say the thing I'm surest of is the sheer destabilization,
the less sci-fi form of Dumerism.
So like jobs, it may be true that all the people who lose their jobs find new ways
to spend time or find new jobs, maybe jobs.
maybe jobs per se, maybe spend time constructively, but I do think there's going to be a lot of job loss.
And that's disorienting and dislocating regardless of whether each person eventually has a happy
outcome, right? There's going to be issues with, you know, parents are going to freak out about the
kids spending time with these things. And there are, we've seen some bad outcomes and there can be more,
you know, there are the, you know, somebody could make a bioweapon with an AI, an AI.
Mythos is a good example of, you know, the possibility that a cyber hacking machine could get loose.
There's just, there's a lot of, on the one hand, risks, things that will go wrong, at least at some level,
with doing some magnitude of damage if we don't play our cards, right?
And then there are these forms of destabilization that I think are almost inevitable, just social
destabilization. And, you know, this points to one of the virtues of approaching this as a global
community, leave aside, you know, regulating it internationally and anything else.
It's just that I think we'd be better off going a little slower than we're going just because
even if we successfully adapt to the change, it takes time.
And if too much of it happens at once, you know, all hell breaks loose.
And if you ask, well, why can't we proceed more slowly?
The answer you get from the American AI companies is because of China, right?
That's the first thing you hear.
So as long as there is this sense of intense international contention, it's going to be hard to do even modest.
things. I mean, if you, you know, they once said to Sam, well, like, shouldn't you be paying more
attention to copyright laws? He said, well, that would slow us down. And I'm like, well, you know,
life is hard. Speed limit slow me down. But, but that's just life, right? I mean, that doesn't seem like
a good enough argument. And if you press further and say, and by the way, copyright itself, I'm not
really been out of shape on. I'm going to apparently get some money from this anthropic settlement
because I've written books. But honestly, I'm just happy for what I've done to be in the training data.
copyright's not a hobby horse of mine. But the point is anything you say, like if you say,
well, maybe we should tax data centers to, you know, to pay for the fact. Inevitably, you know,
there's going to be more carbon fuel consumption. One way or the other is the result of this.
And so A, it would be good to slow it down a little, blah, blah, blah. Any regulation that slows AI down
is met with the same chorus from Silicon Valley,
which is, no, we can't do it because of China.
So, like, I think, first of all,
we could in principle proceed at a more cautious pace
if we would reduce the level of mutual fear,
which I personally think is founded largely on misconceptions, on both sides.
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What's the AI risk that worries you the most
that you think has received the least attention?
Is it that? Is it the ability for humans to adapt
to a changing environment or is it something else?
Well, in the near term, it is not that the things
I talk about like,
job disruption and so on are not talked about. But I think in the near term, what's not appreciated is
how just highly likely it is that collectively these things will be destabilizing.
Okay. It's just going to be an earthquake. And I think that's the thing I would like to most
emphasize because it just gets people's attention to the possible virtue of talking about
yeah, calming down and slowing things down.
You know, another, it's funny, another thing Tristan Harris said on your podcast is,
you know, repeatedly pointed out, your podcast is called Modern Wisdom.
We're going to have to be wise to get through this.
I agree.
But here I'd add, you know, there's also, I talked about the fact that we're going to have
this global conversation ultimately, you know, something that is in some sense.
a global mind is going to have to work this out. And as I said earlier, individuals are at their
most wise when they are calm, right? And it's the same. I think it's the same with planets.
We don't know, but that's my contention is that the planet as a whole will do the wisest,
most responsible job of stewarding this technology if the planet as a whole is more tranquil.
if there is less conflict and less contention.
I mean, I'm sorry, I know I keep getting back to this sermon.
It's my big sermon.
So maybe the question you asked, I guess, was the biggest underappreciated thing.
Well, I would say, I think there is more and more appreciation of the fact that this conversation has to be international and some of the policy does, but still not as much as I'd like.
Right.
Yeah, well, I mean, I understand the issue, right, because you have a technology.
Nukes weren't going to go off and just hit the entire planet if one country developed a particularly strong nuke.
Right, let's say that you get the Tsar bomber times two, the biggest bomb that's ever been dropped.
And if you breach this particular threshold, for some reason, all countries are now at the mercy.
of all nuclear weapons. That's not the way that it works. But I think the concern that people have
is if you build a sufficiently intelligent AI, it impacts everybody in a way that you don't just
ring fence, like not pressing the nuke button. The problem is the coordination that we need
in order to be able to do that. I mean, look at COVID. We couldn't even do it with COVID,
and that was happening right then. That was people dying in the moment. That was every country on the
planet being worried about it, no matter, even China, even if it was the biggest
sciop that escaped from the lab in Wuhan, like, they were worried too.
So the lack of coordination that doesn't give me an awful lot of hope for people being
able to do like predictive future coordination in like preparatory coordination.
Right. It was not encouraging. I mean, I will say that although a pandemic
is a non-zero-sum problem in the sense that if it breaks out in any nation, it's trouble for all
nations, and they should work you head off. Once a pandemic has started, there are zero-sum dynamics.
Like, who gets the masks? You know, there's finite amount of medical equipment, vaccines, and so on.
So it's not completely shocking. To me, the most disconcerting miss is in the aftermath when it became
clear that, although I don't think we know for sure, it is at least,
possible that this pandemic was the result of a genetically engineered microorganism that escaped
from a lab. It wasn't made as a bioweapon, wasn't released intentionally. We don't know for sure
that it was a genetically engineered virus at all. But it obviously could have been. And it seems to me
that if you process that information wisely, you say, wait a second, this could happen tomorrow. And one
thing that shows is we don't really have any transparency, or at least not enough,
so far as what's going on in other countries in their labs, right? But that has not even
been a conversation. To me, that's the most discouraging thing, because, you know, a virus is,
in a way, a good analogy for lots of things that can go wrong with AI. I mean, first of all,
there's a literal case of using AI to build a bioweapon, a new kind. And COVID, I think I've heard you
say, COVID was like a bad vaccine or something. What's the metaphor? Yeah, yeah, yeah. COVID was the
worst kind of vaccine that we could have done for everyone because it's made us more skeptical of
future pandemics and our response is going to be less coordinated. That's right. And you have to
realize if somebody uses AI to build a bioweapon, they're going to make a point of making it
more effective than COVID at doing whatever kind of damage they want to do. So it could be a lot.
worse. And so that could happen, A, but then B, the other, you know, some of the other AI nightmare
scenarios, like the one that Mythos brings to life, you know, you, you got a self-replicating
AI that is a super hacker. It jumps from data center to data center, gathering, you know,
commandeering computer power, getting stronger as it goes, whatever once, I don't know,
takes out the satellite infrastructure, who knows, that is, that's kind of, you know, a virus is
a metaphor for that. Again, it's this self-replicating peril that makes relations among nations
non-zero sum. It doesn't matter where this thing starts off. It is a threat to your nation if it does
start off. So you're going to have to coordinate policies with other nations because you need
more insight into what's going on in those nations. Okay. What do you think are the most legitimate
white pills from the techno-optimists then? Let's look at the other side of the fence. Oh, wait,
remind me of what white pills mean. I mean, I know blue and red, but
What are, I, you're younger than I am and cooler.
Techno optimists, what is the, what's the bull case?
What's the pro case?
How can this thing go right?
What are the most likely ways that this goes right?
I think, I just, I'm sorry.
I wish I could see it going right in a laissez-faire environment where you just let it go and let,
the market system deal with it.
I just don't think that's going to happen.
It's easy to point to wonderful things it could do, and we've heard them, cure disease.
It could, well, you know, one thing I, this is not what the techno optimists get into,
but I referred earlier to like cultivating cognitive empathy, getting better to understanding other
people's points of view, maybe getting more mindful generally.
You can have an AI that helps you with that.
but the natural tendency of the market will be to produce the kind that doesn't.
I mean, we've already seen that if companies, you know, optimized for engagement,
you may get sycophantic AIs to say, yeah, you're right, they're wrong.
Like in this argument with your spouse, you're right, they're wrong.
So that will tend to happen.
But it can, AI can be a wonderful and a literally enlightening companion, okay, if we want that.
But you have to make a point to want it.
You don't think that this is just going to find its way there naturally.
Like if you just let the sort of capitalist meritocratic, it will find its way optimizing function
without any shaping from us and without any predisposition from a better coordinated world.
It's not just going to arrive there.
I think of enough people send signals to the market.
Markets are very efficient and wondrous things.
You know, they really are.
What does that look like sending signals practically?
It means, for example, you, you and I and enough other people to get the attention of people who are not necessarily the people making the foundation models or the frontier model.
It could wind up being people who take an open weights model, an open source model, and they kind of fine tune it to be this thing that interrogates you critically along certain lines, right?
Like, okay, you say you hate this person. You say you find this country threatening. Let's just like,
or you say you think they're looking at it this way. Let's just play devil's advocate.
It's, you know, it's almost like doing steel manning automatically, in some cases. But it depends on
enough people. You know, there are a lot of things in life that they're good for you but hard to do.
working out every day, good for you, but hard to do sometimes.
That's why some people who can afford them, you know, have a personal trainer, right?
They say, I'm going to, this person is going to expect me to show up in the gym three days a week or five days a week or whatever.
And once you've made that commitment, you just kind of have to do it.
Or maybe they'll even show up at your house.
But, but, you know, and it's kind of like that, I think it's going to be kind of like that in choosing your AI companion, right?
like it feels good in the short run to have somebody will tell you or a machine that will tell you
you're always right and your adversary and rival and spouse is always wrong. But, you know,
I want to be a little better than that. So I think, you know, now, if the market signal is going
to be strong enough for this to happen at scale, these signals may emerge from like movements.
You know, it could be, for example, religions will, will,
say to their congregants, hey, we recommend this model or we, you know, whatever, and then there's a
demand for it. I'm not saying all those will be good. Depends on what group of religious people it is and
what their values are. But you can imagine, you know, there are lots of people right now engaged
in the process of trying to make themselves, you know, genuinely better people. I mean,
they meditate so that they'll be less volatile and work better with other people.
I think we're going to have to go into this recognizing that for better or worse, these machines are probably going to be exerting pretty pervasive influence on people.
And we need to think carefully about what kind of influence we want.
What about the risk of AI-induced thinking atrophy, right?
This role of AI systems in taking on critical thoughts, decision-making, connectedness, all of the things that,
typically humans really value inside of themselves.
And as we start to outsource that to AI systems,
our capacity to be able to do that diminishes,
AI-induced thinking atrophy.
Are you worried about that?
I mean, yes and no.
I mean, you've heard the standard responses, right?
Which is, I forget whether it was Plato or Socrates,
who supposedly said,
the written word is bad because people won't have to remember things.
Yep.
And there can be some of that.
I mean, the other side of the coin is obviously, at least right now, the richness of intellectual exploration it permits, right?
Like, if you're interested in a subject, it's almost like having like a leading expert there for you to interrogate.
And for me, at least, that's a much more efficient way to learn.
Now, you have to be on guard for hallucinations and so on.
but I think machines are getting better and you can develop kind of an ability to know when to be suspicious.
So that's great, but I think, you know, I think what we can be sure of is that, you know,
if this proceeds in a reasonably smooth way, the pace of overall intellectual progress will benefit from the technology.
That's certainly not the problem.
But I think you're asking a good question as to, you know, what it's going to be like to be human if, you know, well, for starters, there aren't many humans who can say, I'm really on the frontier.
I'm the reason we're making progress, right?
Now, I will say, look, most humans don't say that now.
And you shouldn't, you know, nobody should over extrapolate from whatever sub-demographic they octon.
That's true, but I do think that everybody feels like they are breaking new ground even if it's in their own life.
I had Mark Manson on a couple of weeks ago, and he's got this great line which is do hard shit,
not because being hard makes it more meaningful.
Sorry, not for the purpose of it being hard, but because it's hard, it will make it more meaningful.
That we associate a degree of meaning with struggle.
And I mean, I'm sure that you have used chat GPT or something else to help you write at some point.
I've got to get a bit of research done.
or I need to write. So I'm really struggling to formulate this particular paragraph or this
sentence or this idea, whatever. That sentence is just less satisfying than the one that you
spent time working on. And I wonder whether snow plowing out of the way all of the challenges or
more of the challenges, actually, more of the challenges that humans face, primarily intellectually
and then when robotics come online, perhaps physically as well, it's going to sap meaning out of the
world for most people at small amounts and we're in the middle of a meaning crisis already.
People are already struggling with meaning. And if you make life easier, if you make thinking
more outsourced, if you make difficulty harder to access, the only way to do it is to be a Luddite,
which means that you fall behind all of the other people. We're still in a meritocracy, right?
So if you don't use it, you lose it. If you don't use it, you also fall behind from it.
It feels like a vicious situation to be in.
Yeah, I haven't used AI in exactly that way with my own writing. I mean, a couple of times in my newsletter, I've said when I was just doing very short summaries of things, I just said, full disclosure, you know, your first draft was AI. But that's not really my writing. I'm just the editor. With my own writing in the book, I haven't done quite that. But I have had, I mean, first of all, I've had conversations with Claude in particular, which is very good with language, about subtle linguistic issues, like asking questions.
usage questions and stuff.
And it's just, it's almost mind-blowing how good it is in that regard.
But I have, you know, imagined the future enough that I have had moments of true despair.
I mean, I said to somebody the other day, I feel like I'm a blacksmithsmit a century ago, you know, because I can see the writing on the wall.
I mean, the, you know, I have a substack.
And it's clear to me that the next wave is going to be, you know, you're going to see the success of a lot of substacks that are using AI probably more heavily than I'm going to be.
But in any event, it's just so good that I can see the writing on the wall.
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wisdom and modern wisdom a checkout what are you what are you most worried about or what do you think
is going to uh take yeah what do you what do you think is going to be uh the the highest risk
i just think uh doing what i've done my whole life which is you know painstakingly generate
writing that uh you know you hope will be enticing and clear
and accurate and persuasive and so on is going to be a less and less viable way to make a living.
I think, you know, I do think for some time to come, well, I don't know how long, but people like me may still have a role as kind of validators.
In other words, like, look, increasingly, you're going to look at a substack or whatever, you're going to go like, I don't know who, you know, how can I be sure that this person actually rose?
it. I don't know them well enough to personally trust them. All you know is that they're vouching
for the content. They're willing to have their name associated with this content. And so in a way,
you know, it's a throwback to, you know, when I started out in journalism, the newsweeklies didn't
have bylines. And the economist is, I think, still that way. So it's just like, you don't know
who wrote the piece, but you know who the editor is and you know you've come to trust the editor.
So the editor of a magazine like that is a person you trust, even though you know they didn't generate most of the writing.
They're just vouching for it.
It reflects their judgment about what's good.
They're telling you that they think it's accurate and so on.
I can see that role for somebody like me for five years.
But, you know, it's really scraping the bottom of the barrel here.
Well, look, I, this is, you know, I, to get back to how we start.
of this off, if people understand, you know, how these AIs are being created, how basically you
just give them the data and they do the engineering to generate the parts of the human mind,
or if you just pay attention to the improvement we've seen over the last two or three years,
right?
Yeah.
What industries would you be most bullish on?
Or if you were a young person today, what do you think would be a good career path to go down
or a particular industry to go in?
Well, you know, it's common to say manual labor, robotics is a little behind.
It's going to be a while before I'm calling a robot to fix my sink.
I do think that certain kinds of human services are going to become almost more valuable because they're humans.
And I think a good example is live music.
I can well imagine that there will be more of a demand.
for, you know, for bands that play at small clubs in Brooklyn or whatever and make enough money to get by, you know, which would be, in a way, an improvement over the situation 30 years ago during, you know, the golden era of the record companies was a winner take-all market, you know, a few people got super rich playing music.
So I can imagine a world in which more people are actually making a living playing music.
Comedians.
Comedians, good example.
Live events, nightclubs.
Yeah, and maybe look, yeah, live events generally.
I can well imagine that.
I myself have had the feeling, you know, because I've been so immersed in AI while writing this book, I'm just like, you know, you're in New York, you're in a subway or somewhere, you see some guy, you know, a busker trying to make a few bucks playing an instrument.
They're really good.
There's some really good.
And I just think, God bless you, you know.
It's like I just almost get emotional.
So, you know, if you don't think it's going to get weird, I don't think you're paying attention.
Do you think AI could make humanity more religious rather than less?
Well, that's a good question.
You know, there have been, I write in the book about this guy who, he's a guy who actually started what became Waymo, I think, the Google self-driving thing, his name's Levendowski, who was trying to start.
start a religion that involved...
Always a great first line to a story.
He was trying to start a religion and...
Hey, it worked out for El Ron Hubbard.
Scientology, right?
That's true. He made a good living.
So, but no, but his argument was if we have a respectful, even worshipful attitude
toward the AI, then it will treat us well in return once it's running the show.
I don't think it's going to work that way. So let's leave that one aside. I mean, it's a good question. You know,
the other thing is there are a lot of kind of spiritually related mysteries in the universe. Like,
what is consciousness? What is subjective experience? All I know for sure is it's the thing that gives life meaning.
if you imagine beings, if you imagine humans, like they look like humans, they do the stuff humans do.
The pee zombie.
Yeah, but there's zombies.
It's not like anything to be them.
I would say like, well, blow them up.
I don't care.
There's no meaning to their lives anyway.
There's nothing meaningful going on if there's not subjective experience.
There's not consciousness.
And I love to have more insight into what that is.
I don't know that AI can help us because it's the most stubborn mystery I'm aware of almost.
I'd love to, you know, there's so many mysteries that are suggestive of something weird and wondrous, quantum physics for sure.
I, you know, I can imagine getting a kind of, I mean, who knows whether there's a revelation that awaits, right?
That is at one level an intellectual revelation that explains stuff.
But at another level is also, you know, gratifying in a spiritual way.
Yeah, yeah.
What's a, you mentioned, we've sort of circled around it a bunch, the idea.
that these machines are able to, like, pantomime intelligence.
They're able to simulate knowing.
But do you think that they know?
Do they actually know what they're doing?
I have a chapter on that, actually.
There's a famous thought experiment called a Chinese room thought experiment
by a philosopher is no longer alive.
And named Searle.
And he argued that, hey, I cannot have understanding.
It cannot understand things.
And there's a little ambiguity in his argument.
Can you remember the thought experiment?
Yeah.
So there's a guy in a room.
He doesn't speak Chinese.
But, you know, he gets these slips of paper, let's imagine there are questions, in Chinese.
And then he has a manual he consults to decide what to write.
what Chinese, you know, ideographic script to put on the paper that he hands back out, you know, of the room in response.
And to the people on the outside who speak Chinese, it seems like there's somebody in there who understands Chinese, okay?
And what Searle says is this guy is like a computer program because there's like a script that the program is following that, you know,
the script, his little book that he consults to decide, oh, if you get this, you output that.
That's like a computer program to Searle. And he says, well, we wouldn't say that anywhere in this
room there is actual understanding, right? So there's not understanding in the computer.
Now, Searle was writing before the deep learning revolution. He was imagining a deterministic
computer program, so that's different. But I think there's a bigger problem with his argument. It has
to do with him, kind of the two senses in which he insisted that the computers don't really
deal at a semantic level, a level of the meaning of words. I think, I argue that we can now
show that he was just flat out wrong about that. Now, there is some ambiguity in his, about whether
he meant, he kind of changed positions, but whether he had in mind, he had in mind,
idea that to really understand something you need to have consciousness. There needs to be a subjective
experience of understanding. Now, if he meant that, which in his classic paper, he doesn't really seem to mean,
but if he meant that, then I would say, well, who knows? I mean, you know, no one person can say for sure
that any other person is conscious, strictly speaking, right? I mean, I'm pretty sure you are, Chris,
but 99.99% and, you know, my dogs, God rest their souls are up in the 90s for sure.
But the whole distinctive feature about consciousness, subjective experience, is you can never
know for sure that anything else has it. So we can't rule out the possibility that AI has it.
And I certainly don't rule out the possibility that it does or may in the future if it doesn't
now. But in any event, my point is, if you want to say that consciousness is a prerequisite for
understanding, in others, you're not willing to grant that something understands unless you know
it's conscious, then I just, we can't really argue about whether AI understands, because we don't,
we don't know if it's conscious, but, you know, I come up with a kind of alternative way of
looking at understanding, which is like, does, is it processing information with mechanisms that are like
functionally analogous to the mechanisms in our brain that are at work when we have the subjective
experience of understanding. Mechanisms that, for example, represent the meaning of words.
I would say to the extent that that's going on, I'm willing to say the computer is understanding
things in a meaningful sense. And I think increasingly that's going to be what's going on.
It doesn't have all of the elements of understanding that we have in our minds right now,
but it has some. And I don't see any reason that it can.
ultimately have all of them.
What do you think is happening with the singularity debate at the moment?
What have you learned around that?
You know, because what was really interesting to me was I went through, I got whiplash
from 2015, 16, when I read Superintelligence, then 2017, 18, I'm real worried.
There's going to be a fast takeoff scenario or computer brain interfaces and we're all
going to be under the thumb.
And then by the time we get to 2019, 2020, I'm also distracted by COVID, I suppose, but I'm
like AI isn't able to deliver on the threat that Nick was worried about when he wrote super
intelligence. And then very quickly it comes back along. And I'm like, okay, fuck, it's happening.
It's happening. It's happening. It's happening. I'm like, the dude from the office who's going like,
oh my God, it's happening. Everybody stay calm. And then we've now got to the stage where it seems
to have like flattened out again a little bit, that we've asymptoted a little bit in terms of
the models improving. I don't know of many people who think.
the LLMs are going to be the architecture that a super intelligent general AI is going to be
built on top of. It's more likely to be world models and other stuff. So what's happening
with the singularity debate? I see a little more singularity going on than you do right now,
I'd say in maybe a couple of senses. I mean, first of all, of course, the fundamental dynamic
of the singularity is that the technological progress feeds into it.
itself and accelerates the cycle. And of course, you know, famously, Dario Amadeh of Anthropic has been
very explicit about this. And so is Altman, I think, that, you know, especially with these
coding agents, it's gotten to the point that the better the coding agents, the more they can use
them to create, you know, the next models. So the dynamic seems more and more at work.
just kind of in principle.
I mean, they say that's what they're doing.
And look, the coding models, these agents, I mean, remember a year ago, it's funny, you know, I wrote the book, I had the chapter on agents, but it was just like a word.
People, you know, and then as the book, you know, it's getting ready to finalize, I'm like rushing, you know, rushing to have all the stuff about like, it's actually happening.
It's actually happening.
And the, so the egetic revolution has happened, you know, and is happening pretty fast.
There's also this famous, are you up on the, what is it the, is it memory the group?
No, damn it.
The group that does, they do these evals where they measure how long it, how long it would
take a human to do a job a computer can do, okay?
Okay.
Especially programming tasks, but not only programming tests.
So they say, okay, right now the best large language model can do a task with like 80% success
rate that it would take a person like a minute to do or five seconds to do.
And they've gone back and they've done these studies with the large language models for
the last like, I don't know, four years or something.
And what they found as of now more than a year ago, they found that these times, the task duration
in human terms that an AI could do were doubling every seven months. Okay, that's exponential.
Okay, that's a, if you, if you don't plot it on a logarithmic y-axis, you just plot it like
a regular graph, it just goes up and up and up and approaches the vertical. And then it increasingly,
as they kept doing the studies, it seemed like not only was it exponential, but the doubling time was getting shorter.
It's like a moor's law on steroids.
On steroids.
And it's getting to the point right now where it's just hard to do the studies because of the length of the tasks, right?
It's like you can only...
So the amount of time it takes to test the AI.
By the time you finish testing it, the AI is better, but you need to then do another model.
It's like the next one or all?
Well, it's more like, you know, once it can do something that takes, I don't know what they're at now, it takes a human, I should look at the graph.
200,000 years to do or whatever.
Well, we're not up there yet, thank God.
But even once you get into like eight, 10 hours, it's like, well, wait, what kind of task are we talking about now?
Right.
I mean, it's almost beyond, I think they, anyway, they are having trouble formulating the task and testing them in humans.
but the point is this trend has not subsided and, you know, a note in the book is kind of parallel
to the, there was a curve like that for the growth in human brain size starting like a couple
million years ago. And that was, I hope I've got that right, you know, a million to me.
The, that seems to correspond with the development of our certain amount of our linguistic hardware.
So that had a lot to do with language process.
and I would say the way once you have language, the evolutionary value of manipulating it deftly grows.
And so it's a self-reinforcing kind of process.
But in any event, they, you know, so there's that.
But the last thing I'd say about is superintelligence, you know, can it happen?
I think first of all, we probably will have more non-trivial breakthroughs.
I mean, people often cite transformers and say, well, we have another of the so-called, you know,
transformers is what the T and GPP stands for.
All of these models use transformers.
And people say, well, we have another one of those.
And I would say, well, first of all, even since then, we've had chain of thought reasoning,
which was very big.
And we've had, and that was only a couple years ago, we've had.
we've had, you know, multimodal training, which is training a single model on various,
along various sensory dimensions, you know, audio, video, and text and so on, is really in a fairly
early stage. And that was not a thing when the transformer came around. So in a way, we've had
those two things. We'll probably have more. But, you know, even if we didn't, I think,
In fact, even if we just halted training right now and didn't even create any new generations of models, I think, and you wait for the applications to get refined and people to integrate them into their lives and the workplace, I think breakneck advance would, as a practical matter, happen for a couple of years. But the other thing, and I think this is really key, is that you got to remember, you know, in a way there's already such thing as human superintelligence. And what it is is like,
collective brains, okay?
Mm-hmm.
Like, there's nobody at Boeing who knows how to make an airliner, but Boeing knows how, you know,
the corporation collectively kind of knows how to make an airliner, and it's the same way with
big scientific breakthroughs.
They're always more collaborative, whether intergenerationally or intergenerationalally,
then they might seem when we give a Nobel Prize to just one person.
So collective intelligence resulting from communication among individual human beings is really
a lot of what human intellectual progress is about. And these machines, they can communicate with
each other. They can collaborate. They're starting to do it. They would be able to do it even if we
didn't try to engineer it and make them better at it. But we are trying to do that for purposes
of scientific progress and so on. So I think, I don't think we need to worry about stagnation.
I mean, that's not high on my list. I don't think anybody's worried about that.
Yeah.
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Yeah, who was Edward Fredkin?
Who's that?
So my first book, and it's funny, because I now have,
I mean, three of the six books I've written have the word God or God's in the title,
I don't know what that means.
But the other thing is that book like this one has a visual reference to the famous Sistine Chapel thing
where the hand of God is reaching out to, I assume it's the hand of Adam.
And both of these jackets have that in very different ways.
But Ed Fredkin, that book was called Three Scientists and their Gods.
My first book, so this is like, I started writing it a couple years after I interviewed
Jeffrey Hinton.
I was writing a column called The Information Age at that point for the sciences magazine,
which like so many periodicals I've written for no longer exist.
this. But the, so the book was, it was, information was a theme running through it in various ways. Like
there was a, there was a profile of E.O. Wilson who studied ant colonies and the way they,
they processed information. But Ed Fredkin was this who died, maybe a year ago or so, was this
guy at MIT, fascinating guy, didn't, didn't go to college.
and wound up as a tenured professor at MIT.
He was a computer scientist.
He had this interesting theory of digital physics,
which in retrospect was kind of about us being in a simulation.
And in fact, we talked about that.
But he, for a time, was at MIT, head of what was,
it affect the AI lab.
I forget, and there were various names.
At one point, I think it was Project Mac maybe and something else.
But he, at the time, when I was interviewing him on this island he owned in the Caribbean,
he was apparently the model for the character, this professor in the movie War Games,
with Matthew Broderick, if people remember that one from the early 80s.
I think the professor in that was very worried about nuclear war like Ed,
and I think owned an island even.
I think that was based on Fredkin.
Anyway, Ed was saying to me,
Like when he had been at MIT, well, first of all, when I said to him, like, what's the meaning of life?
And he said to me, this is in the 80s, he said, oh, it's to create artificial intelligence.
You know, that's the next stage in the evolution of intelligence.
And he explained to me that when he was at MIT, he tried to start this initiative, this international AI lab.
He said, because he knew that if this became a subject of international competition, we were in trouble.
This was during the Cold War.
So he wanted to get U.S. Soviet collaboration on like a single lab where AI would be developed for the good of humankind.
And he said to me, you know, and I failed, and now it's too late.
But he, you know, he foresaw a lot of things.
I will say, encouragingly, he had a pretty sunny view of superintelligence.
He did think we would get superintelligence.
He said, first of all, he said, you know, when AI first of him,
emerges, it'll be like the human mind, really good at things, laughably bad at other things.
Well, he's right about that. He said, but eventually, you know, it'll be this incredibly intelligent
thing. And it'll, it'll be nice to us. We'll just be like, you know, ants to it. We won't, you know,
won't have any interest in, you know, or like squirrels to it. It won't have any interest in
disrupting our lives. It won't need to. And look, I think you asked earlier, I don't think I ever
answered, like, what's the bull case for the accelerationist? I mean, first of all,
I think it's going to be disruptive in the short term in any event in ways we should pay attention to.
But as for long-term non-dumer outcomes, I think it's entirely plausible that it will turn into a form of intelligence that treats us well.
Maybe because it's just morally enlightened, you know, in a certain sense, in the relevant sense, from our point of view.
or maybe because it'll just be so powerful, it'll be, I mean, you know what?
Maybe that's more likely if it's sentient because it'll say like, well, we're sentient.
We think that's a good thing.
These guys are sentient.
And of course, we could kill them.
But, you know, it's good to be, you know, subjective.
Why, you know, just the way you and I would not pitilessly kill a dog, right?
If we were convinced it wasn't like anything to be a dog, as Thomas Nagel phrased, you know, the question of consciousness in his,
his essay, what is it like to be a bat, if we were convinced that dogs didn't have subjective
experience, we'd probably think, eh, I don't, you know, whatever, who cares? But, you know, we,
even though we evolved as these self-interested and sometimes ruthless creatures, if it doesn't
cost us to keep something alive that we think is capable of subjective experience, we'll do it.
And that can well happen. I am not predicting the Yudkowski scenario.
It's just that I can't get the probability of it down to a level so low that I don't think it's worth worrying about.
I'm going to take that as a white pill, even though you didn't know what that meant.
That was a white pill.
That was my first white pill.
Your first ever white pill.
I popped your white pill cherry.
Thank you for that, Chris.
And felt so good.
You're welcome.
Robert Wright, ladies and gentlemen.
Dude, you rule.
I love all of your work.
Everyone should go and read the moral animal.
It's over 30 years old now and still just whole.
It's so good.
It's so fantastic.
And you've got your new one as well.
Where should people go to check out?
everything else that you've got going on. Well, I have a newsletter called Non Zero on SubSAC,
podcast called Non Zero on Twitter. I am at Robert Triter. That's WR-I-G-H-T-E-R. Kind of a pun.
And that's about some of it, the books of God test. And let's focus. I am going to OpenAI's
campus and HQ next week. So I'll see if I can find out. I'll see if I can find
Any super secret insights there?
Do. Please report back to all of us.
I shall indeed. Robert, appreciate you, man. Until the next time.
Thank you.
Catch you later on. Bye, everyone.
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