MIT 6.S087: Foundation Models & Generative AI. PANEL
VOLLSTÄNDIGE ABSCHRIFT
um I'm going to ask you each one um kind
of a more targeted question at first and
you guys also think about what what you
want to ask our poist today so um
Professor first question to you um rard
touch on this topic and you are an
expert in computational biology probably
exposed a lot to Evolution and and
mechanics how it worked I want to um get
your opinion your perspective on the
Dilemma that exists right now um in
terms of centralization versus
decentralization in terms of alignment
versus um more risk and diversity
so let me pass this to
you in terms of perfect yeah in terms of
alignment versus more risks and
diversity specifically meaning that well
we as humans are very diverse uh we have
diverse cultures you know
um lived in in Greece and France rard
lived in Sweden I lived in Ukraine um we
are BR in different environments and the
evolution might have been pushed by our
differences um but now we have a very
defragmented um defragmented AI
defragmented organization defragmented
Society in terms of who's pushing AI
forward they are implementing their own
AI alignment systems um they're reducing
the diversity but potentially also
reducing biases and stereotypes that
have already existed in society so we
kind of have a dilemma between high
risks um but more opportunity for
Innovation or lower risks and lower
opportunity for Innovation what's your
perspective on that coming from biology
Evolution and things around that
beautiful uh fantastic question
extremely rich extremely uh deep broad
reaching Etc so um let me start with
Biology a little bit so basically uh as
you mentioned sort of humans are forced
to be diverse we don't have a choice we
basically have genetic variation that
modifies every aspects of our brain and
of our body and of our behavior and of
our inclinations and so so forth I have
three children uh you know they are
completely different from each other and
and and they were completely different
when when they first came out and
they're still completely different now
and um as much as we would love to as
parents think that nurture matters a lot
it's only about 50% and another 50% is
just like nature and and there's very
little you can do about that and um
that's I think part of the beauty of
humanity the fact that whether we like
it or not we're all programmed to
actually think differently to interpret
things differently to uh Etc and that
that's just the nurture component the
nature component Al sorry that's just
the nature component the nurture
component also gives us extraordinary
diversity in sort of where we grew up
the things that we saw as cultural
references at different points in our
lives as you mentioned different
cultures different families even in the
same sort of street block you can have
kids growing up with completely
different perspectives on life and I
think that's what makes MIT work that's
what makes any team work the fact that
we think differently and we can bounce
ideas with each other with mutual
respect but also uh completely different
perspectives and that shapes the ideas
very interestingly so I think one way to
achieve that with AI even with a single
underlying large language models is to
instill different personalities in a set
of agents that are interacting together
in the same system so that forces the
agents to actually process ideas in
different ways so if you want to have
the most Creative Solutions you don't
want a single AI That's going to give
some average you want a lot of different
AI that are going to be bouncing off
each other each with own personality and
you can encode that you can give them
personalities you can basically say you
know you are a professor who grew up in
Iran and who has you know these kinds of
backgrounds you are a waiter who grew up
in I don't know Scandinavia and has this
background Etc and then based on these
personalities you can sort of build a
life story and a set of attributes for
each of the agents and then push them
towards uh more creativity um in terms
of bias we all worry so much that AI
will be biased but I have to say that
humans are you know have a terrible
track record on bias we are horrible
when it comes to bias and icii as a hope
for being able to not just debias but
anti-bias uh our thoughts to be able to
sort of
artificially tag on different biases
with different attributes and push us
off our comfort zone in terms of
expectations and have the AI push itself
off its comfort zone so you can
basically create create again these
personalities with very different
stereotypes and with mismatch of these
stereotypes and sort of have the AI
interact with those and actually learn
how to uncouple uh those biases so
that's on the bias a little bit on the
diversity and in terms of the
centralization I you know again I think
the scenario of Skynet in Terminator is
exactly one of centralization it's
basically US versus the AI and I think
that the for of the market are such that
as centralization happens in One
Direction you will have forces pushing
against it in the other direction and
there is uh there are laws against
Monopoly there are antitrust laws that
are sort of go going to kick in if we
see that in fact centralization is
pushing too far and I think that's
healthy I think that the forces of the
market are are healthy I think that the
best way to combat the Skynet scenario
of the AI apocalypse is not to pause AI
it's to double down and to sort of you
know expand out and to democratize and
to sort of you know provide
opportunities for many others to build
on the same architectures on the same
Hardware on the same software and
sometimes even on open AI to basically
create diverse agents on top of it and
that's what we saw a few months ago with
the Chachi pts the fact that everyone
can program their own Ai and even if
there's an underlying architecture you
can still have diversity in the
utilizations and in the
outcomes okay so thank you that's very
interesting I do think that saying that
you have one single big big AI that you
incorporate different personalities into
it sounds like if you take the biology
and evolution similarity like well all
of humankind would share a single brain
you know that would be prompted
differently and that sounds like w why
don't Humanity have a single brain
because it's very fragile if it screws
up we're all screwed so I I you see I
mean I think it's and also I think if
you have that such a big thing it's
gonna even if it's just less biased it's
going to be biased systemically in
exactly the same way for all of those
users right well a human being exactly
is very biased but differently so which
is I think much more in line with nature
and evolution which I think is great
guiding Stars uh so like since you since
you work with this I feel also the last
thing you point as well that let's just
push through right but like what's and
what's the what can we learn in terms of
innovation and change from nature well
most of change is bad and how you know
we understand that is by the passing of
time like if you push things very very
quickly what systems like Evolution will
understand what's bad Innovation is
going to kill us and what's not if you
don't give it enough time to see the
effects does that make sense uh no
absolutely these are a great idea so so
basically on the first comment of the
single brand many many personalities
even if you have a
single giant llm it has 5 billion
parameters if you look at the human
brain the way that thought happens it's
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