[dramatic music]
As governments around the world,
call time on the internal
combustion engine,
many believe
that if the electric dream
is to become a reality,
we need to not only radically change
the design of our vehicles.
[dramatic music]
But also how we use them.
[dramatic music]
[doors whooshing]
[dramatic music]
And even how and where we make them.
[dramatic music]
[upbeat music]
A global technological
revolution is underway.
We think in the next 10 years,
you'll see more innovation
than we've seen in the past 50.
Driven by passionate,
dedicated individuals,
intent on shaping a new world.
I wanna create something new.
I want to create something
that gives me the sense
of creating new life.
This is why I'm here.
A greener world.
This is the last call to action
that we have to develop the solutions
that are protecting our planet.
A better world.
I have a family
and when I think about
the life I want them to have
and their children to have,
I want them to experience
the world where they can travel
and live without worry
and that gets me up and going every day.
Together, they are pushing engineering
to its limits.
Human creativity is the
most tremendous power
and if you set a target,
things that you never thought
possible, become possible.
Creating extraordinary machines
that can help the planet
and humankind in the future.
[dramatic music]
If we are to stand a chance in our struggle
to limit global warming,
a change in the way we
travel will be essential.
Transportation accounts for
and in the US, that figure is 29%.
The vast majority of it
comes from what we drive
on the road.
Our relationship with the automobile
has been a defining feature of modern life,
but as we make the
transition to electric power,
many experts believe that
the nature of this relationship
is about to undergo a revolution.
[dramatic music]
Without doubt, this presents a challenge,
but it also presents the opportunity
to redefine the way we travel.
No stranger to thinking differently
about how we use vehicles is Robin Chase,
co-founder of Zipcar,
one of the world's leading
car share companies
and Veniam, a data network company
that is helping to support
what's known as the internet
of moving things.
She's worked with
institutions and authorities
around the world,
developing innovative transport strategies.
I think of transportation as
our gateway to opportunity,
whether you wanna be
educated, see friends, have a job,
be healthy, go shopping,
everything resides upon, can you get there?
How much time, how much
effort, how much money?
It is the glue that makes
our entire lives possible,
so the idea that there's
one type of vehicle
or one type of mobility solution
that will service all of
our needs is craziness
and that was what
happened in the last century.
[dramatic music]
When people buy a car,
what happens is they think
about their largest use case.
They think, oh, I need to have it,
so in August I can take
my family on some big trip
with everything in back, but in reality,
and 50% of our trips
are less than three miles
or five kilometers.
So the reality is, it's us
moving alone by ourselves
for the vast majority
of our trips and cars,
whether they're electric or not,
are vastly oversized for
what we're actually doing.
[wind whooshing]
[dramatic music]
This is the Aptera,
soon to be the most aerodynamic
production car in history.
With a potential range over a 1,000 miles
from a single charge, it's
convinced over 15,000 customers
to place an order
before a single vehicle has
rolled off the production line,
but this is not the product
of an automotive giant.
This is what happens when
some engineers from San Diego,
take an uncompromising
approach to efficiency.
[dramatic music]
[seagulls cawing]
The Aptera story started over a decade ago,
when Electrical Engineer, Steve Fambro,
sitting in traffic during his daily commute
became convinced that there
had to be a better alternative
to existing cars, something more efficient
and certainly something more sustainable.
So I started building
this car just as a hobby
and at some point, the
light went on where I thought,
if I could get paid to do
this, I would do this all day.
So I started thinking about, well,
what would that look like?
What is that?
Well, it's a startup car company,
to sell the most efficient
vehicle in the world.
And then, Steve met Chris Anthony,
an entrepreneur who was
building composite wake boats,
who not only shared his passion,
but was also prepared to think differently.
And it was off to the races.
It was really bizarre how
quickly it all happened.
Well, when I first met Steve
and he explained the math equation
for why typical vehicles
use so much energy,
the first thing that he brought up
was a typical Toyota Camry type vehicle.
We use 60% of its fuel just
pushing air out of the way
and it instantly struck a chord with me
because I was a hydrodynamicist
and I'd done lots of simulation work
and worked on how fluids
work and I said, yeah, I get it,
that's a problem and he said,
"I think that we can build a vehicle
that takes that aerodynamic
drag almost down to zero".
Perfect, sign me up,
let's build that vehicle
and we didn't start with a
marketing study or a focus group,
we started with the engineering problem
of how do you make
transportation more efficient?
And then we just ticked through the boxes
on what would make the
most efficient vehicle platform
and what you end up with,
is something that looks
like what I have behind me.
When I first started
looking at low drag shapes,
I thought, well, let's look
at the streamliner hot rods
from the 1950s and 60s.
You had a lot of veterans
who returned after World w*r II
and were taking aircraft
parts and drop tanks
and turning them into hot rods
and then taking 'em to the salt flats
and seeing how fast they could go
and for the amount of horsepower
and the size that they were,
my back of the napkin calculations
said that they should have
been able to achieve much higher
top speeds because of the streamline shape.
What I didn't realize
and I guess maybe what
they didn't realize at the time,
is that a perfectly
symmetrical streamline shape
has very low drag in the
free stream, up high in the air,
but when you bring it close to the ground,
it has a completely different effect.
In ground effect, it becomes
a much higher drag shape
and so to make a streamlined shape,
but that's also low drag and ground effect,
it looks different and as it
turns out, lots of creatures,
fish, catfish, sharks, et cetera,
that swim in the free stream,
when they get down near the surface,
they will change their
body to lower their drag
and the reason they lower their drag
is because nature hates inefficiency,
nature doesn't do anything inefficient.
It's all about saving energy.
So sharks really taught us
a lot about how things work
in ground effect,
so that's why the Aptera
looks a lot like a fish or a shark
swimming close to the sea
floor with a hump in its back.
[upbeat music]
Before we went out fundraising,
we said, we need to have
some third party seal of approval.
Who could we get to
also examine this shape,
maybe put it in their wind
tunnel, give us a thumbs up
that it is low drag
and so we hired NASA,
Langley Low Speed Wind Tunnel
and we had a conference call with 'em
and you could hear all the
scientists on the conference
going like, "This is the
lowest drag road vehicle
we've ever seen.
Like what are you guys doing?
How does this work?"
And we said, we hired
you to tell us how it works,
your NASA.
[guitar music]
What has enabled the team
to fine tune their design
in a way that would've been
impossible a decade ago?
Are the advances in
computational fluid dynamics.
This is a computer tool
that can accurately analyze
complicated aerodynamics
and airflows.
We bought a lot of servers,
this is after we got our funding
and we ran CFD, 24 hours a
day for virtually every shape
that touches the wind in the vehicle.
The processing power
that you can put to these
problems now is just immense.
We can load a full vehicle
model into our simulation deck
and run it on a web server
and have results in four hours now.
Incredibly, the entire Aptera car
has less aerodynamic drag,
than just one side view mirror
that you'd find on an average
American pickup truck.
One aspect of the vehicle's design
that often draws attention
is the fact that it only has three wheels.
We determined that if we
got rid of the rear wheel, one,
we don't really give up any
performance characteristics,
but we gain in aerodynamics,
we lose some weight
from having the structure
to hold that extra wheel
and we have less rolling resistance.
So you have a certain amount of weight
that's deforming the tire constantly
on every revolution that you ever drive,
so if you can decrease
the amount of traction patch
on the road, you get
better overall efficiency.
Our vehicle can go around the track
as comfortably and as securely
as any comparable four wheel vehicle.
And one thing crucial to its stability,
is its center of gravity,
which is greatly helped
by the choice of powertrain.
How we power the vehicles,
actually through the wheels,
the motors are designed into the wheels.
It takes the weight
and puts it out at the
corner of the vehicle,
so you have a better center of gravity,
which gives you more torque,
so you get better zero
to 60, time acceleration
and it gives you more regen capabilities,
so it saves your brakes
and gives you better overall performance.
Weight is crucially
important to our efficiency,
so the more we can
reduce weight, the better.
And one of the heaviest parts
of an electric vehicle is the battery.
Well, batteries are the most expensive part
of the electric vehicle
and so if we can fundamentally
reduce the number
of batteries necessary to
go from point A to point B,
compared to any other electric vehicle,
then we're able to offer
something that costs less
to make and costs less to sell.
The combination of less weight,
reduced rolling resistance
and world leading aerodynamics,
means you need less energy to power it.
With a 100-watt hours
per mile energy usage,
you can do things like charge
with a regular extension cord
from your garage.
The same cable that you
charge your cell phone with,
is a cable that you can
charge the Aptera with,
up to 200 miles overnight.
Also, if you're on a trip
and you go to one of the roadside chargers,
you're charging four or five times faster
than any EV around you.
But the Aptera has one
more energy saving trick
up its sleeve, it's solar
powered charging capability.
All the more pertinent
given the US Department
of Energy's predictions,
that electricity consumption
is set to increase
by as much as 38% by 2050,
in large part, because
of electric vehicles.
We have a 700-watt solar panel on our roof
and that can produce over
four kilowatt hours of power
per day in sunnier places.
That's 40 miles of free driving per day,
just because you parked it out in the sun.
But for most Americans
that drive less than 40 miles
a day, 60 kilometers or so,
you wouldn't have to plug it in
and the reason why it's even feasible,
is because the vehicle is so efficient.
So if you were a big
electric truck manufacturer
or sedan with lots of batteries,
you could cover the whole thing in solar
and you might get five or
whereas if you can account
for the most of the daily miles
from the sun without
taxing the grid at all,
then it makes it much easier
to deploy electric vehicles
across a wide area.
It really is just striving to
build the best production
vehicle we can for the
people that have reservations
out there.
[dramatic music]
Possibly the biggest changes
this automotive revolution
will have on our way of life,
will be felt in our cities.
Michael Hurwitz, understands
the task ahead more than most.
He worked for the British government,
where he was the most senior
official responsible for energy
and transport.
He then spent five years
as Director of Innovation
at Transport for London,
one of the largest transport
authorities in the world,
responsible for managing
the city's public transport
network, which includes 9,300 buses,
an underground system
handling 5 million journeys per day
and main roads with over
He now works for Arrival,
one of the new generation
of automotive companies
that are bringing a fresh perspective
to introducing electric vehicles
into our towns and cities.
It is now absolutely certain
that around the worlds,
cities, regulators, national governments
are going to require an
increasingly rapid shift
to zero emission, mostly electric,
some people an open
mind to things like hydrogen,
but it is happening
and it's happening at an increasing pace.
There's an interesting point
about whether the incumbent industry,
the traditional automakers
can transition fast enough.
Some people aren't as ready,
but we feel that we're kind
of ahead of the curve there.
[dramatic music]
When Denis Sverdlov
decided to found Arrival,
it was because he felt it was
not just the type of vehicles
that needed changing,
but the entire auto manufacturing model.
That is not enough,
because we still get vehicles
which are expensive and
that are not sustainable.
You don't need to have a
compromise between being green
or being efficient and
that's why we started Arrival
in January, 2015,
with idea to reinvent the
way vehicles are made.
But where to start?
Well, for Dennis and his team,
one particular sector above all stood out,
commercial vehicles.
[dramatic music]
The vehicles that are
being driven eight, 10 hours,
day after day after day, if
there are any vehicles in a city
that you'd wanna replace
with zero emission vehicles,
it would be these commercial vehicles.
[dramatic music]
One of the aims of Arrival,
is to be able to work with companies
and create a bespoke vehicle
specifically targeted to their needs,
which is exactly what
they've been doing with UPS,
with whom they have jointly been developing
a new delivery van.
[dramatic music]
But how will this new startup
company compete on price
with established automotive
giants who spent over a century,
mastering the production
line and economies of scale?
[dramatic music]
I think the real
opportunity with a startup,
with a new company,
is you don't have any
of those existing assets.
You can set off in a
completely new direction.
The approach that Arrival has taken,
can in many ways be encapsulated
by the words of the influential
Ernst Friedrich Schumacher.
He wrote something along
the lines of any intelligent fool
can make things bigger
and more complicated,
but it takes a lot of courage
to move in the opposite direction.
I love this quote.
It really captures our
DNA, what we do here,
how we develop things.
[bright piano music]
Large automobile factories
can take years to build
and have a price tag
of over a billion dollars.
Arrival, believe that for just 50 million,
they can take over an existing warehouse
and within six months,
be able to produce 10,000 vehicles a year.
[bright piano music]
[machines whirring]
Able to be built all over the world
in locations where the vehicles are needed,
they will employ local
people, pay local taxes,
require less infrastructure
and be able to provide specific
models suitable to location.
They call it a microfactory,
which instead of housing a
conventional production line,
uses a collection of robotic cells.
And we have a whole array of these cells
that do different operations,
but the key to it is how
we link them together.
We link them together
through mobile robotics.
So literally a little wheeled
robot that carries parts
and vehicles from cell to cell.
[dramatic music]
I've been building robots
since I was a kid.
Right from toys, I was
fascinated with robots.
I was fascinated with spacecraft,
so all my studies over
the years were focused
on this space inspiration, robotics and AI.
I met Denis after having
worked on a space mission
for European Space Agency.
We discussed about how to use technology
to have a positive impact on
people and we liked each other
and I jumped on board.
I left the space program
and I joined Arrival.
Where once in the
traditional automotive industry,
it was tool makers who were
crucial for the implementation
of mass production.
Today, a different type of engineer
is at the heart of this new
way of building vehicles.
More than half of our people
are software engineers.
We are strongly software people.
What this means is that
we spread intelligence
in every robotic asset that
we have on the shop floor.
These robots sense and
perceive the environment.
They gather the data,
they process it in real-time
and they use this data to
execute operations in real-time.
If something changes in
the environment, they react
and then we have an
operation control system.
You may think about it
as the overload of the factory, right?
The AI that runs it
and this system gathers
continuously information
from all the children,
from all the robotic assets
on the shop floor.
We have done a lot of
work on computer vision
and we've developed something quite unique
and our systems are
capable of understanding
the position of an object,
classifying that object,
understanding the position
in six degrees of freedom.
So in space, in any location,
a sub millimeter accuracy.
These are robots that
can navigate autonomously
in the environment, can avoid obstacles,
can detect any anomalies in the environment
and can react dynamically
and also work together.
These robots can connect to each other
to create a larger platform
that can transfer bigger
and larger pilots.
But as clever and sophisticated
as the system is, if the
microfactory concept
is going to work, it'll
need the right materials
to work with.
I'm gonna be a bit biased here.
[Rob giggles]
I think materials are like
foundational to a lot of this.
If you are gonna make manufacture something
anywhere in the world, then
you can go one of two routes.
You can either source in
one place and transport it
or you source close to where you're making
and our strategy is very
much to try and source
as close as we can to the factories,
to support local
communities, local economies
and to build relationships in those areas.
So if we wanna be able to
build a microfactory anywhere,
on a high street, in a warehouse,
you have to start asking questions
about the kind of materials
that are gonna go into the factories.
They also have to be recyclable,
'cause you need to be
able to reprocess them
wherever you are.
If a Van's built in one part of the world,
it should be recycled wherever it ends up
and that drives a certain
type up of materials logic.
In order to meet all these criteria,
it was decided to use an aluminum chassis
onto which would be put a body
made from thermoplastic composites.
Able to be molded into shapes when heated,
thermoplastic composites differ
to many other forms of composites,
because it's a process that can be reversed
and repeated many times,
making it perfect for recycling
and giving the product an
almost indefinite shelf life.
[dramatic music]
It's where there is a
huge amount of innovation
in the industry and we can
process that by 3D printing,
so we can make prototypes,
we can turn it into injection
molded components,
we can process it into
compression molded or extruded
or you can make garments
from thermoplastic materials.
Like the amount of
opportunity of thermoplastics
is just immense.
The company have developed
their own composites,
tailor made for their requirements.
Those destined for body
panels arrive at the factory
in the form of roles of fabric.
These are cut to size, layered and molded
into a variety of different shapes
and all done autonomously,
using far less machinery and energy
than a conventional automotive plant
and once more, waste is eliminated
because the properties of
the material allow any off cuts
to be recycled and made
into other components.
Like that's so fundamentally different
from the conventional way of working.
I mean, when people join the company
and they often are like
it's quite mind blowing.
We are weaving fabrics and
knitting and there is no paint.
The color is throughout the panel
and you can recycle the
whole panel at the end it's life.
Panels are also able to withstand impacts
in a way that no steel
equivalent ever could,
all of which is of considerable appeal
to commercial fleet operators.
Their vehicles are their brand
that's rolling around in those
communities day after day.
So they always want their
vehicles to look their best.
They spend an enormous
amount of money every year
per vehicle to keep their
vehicles looking so good.
This combination of versatile materials
and a highly agile production process
is also changing the way the
company approaches its research
and development.
So in regular RND, I'm
used to working on projects
that are two to four years long
and here we are expected to
turn around proof of concepts
in a matter of weeks, so if
it takes longer than a month,
then it gives us pause for thought.
The point is to prove your
idea as quickly as you can
and that means that you
can cycle through ideas
much quicker.
So the other core concept for us
is that failure is not a bad thing.
We encourage my team
to fail as often as they can,
because it's only when you fail
that you either discard an idea or move on
or you keep learning.
This ability to utilize the AI software
to transpose concepts into production,
has enabled the team, not
only to develop commercial vans,
but also buses and rideshare vehicles.
With a growing list of customers,
Arrival has already set up
one microfactory in the UK
and others in the US, with
more planned for other countries
in the pipeline.
In hindsight, some of the
most revolutionary ideas
seem obvious
and I wonder if people
will talk about microfactories
that way in a few years, for instance.
I can't explain exactly why
nobody's thought of it before,
but it is clear that bringing
together the right group
of people on the right mission,
with the right set of objectives
was an important part
of developing this very different approach.
[dramatic music]
There are still many challenges
that need to be overcome to
successfully make the transition
to full use of electric vehicles.
Today, over half the world's
population live in urban areas.
In Europe, it's almost three
quarters and in North America,
it's higher still, at 82%
and these figures are only set to increase.
Many towns and cities have road layouts
that are hundreds of years
old, meaning space for charging
is at a premium.
It's sobering to consider
that 40% of Americans
do not live in a home where
they can use a personal charger,
so whilst some have been tackling the issue
of electric vehicles themselves,
others have been wrestling with the problem
of how to charge them.
[dramatic music]
Back in 2012, the founders of Electreon,
a Tel Aviv-based company,
decided to investigate the possibility
of creating a viable wireless system
known as induction charging.
So we have one coil that
we put under the asphalt,
and we have another coil
that we install at the
bottom of the vehicle
and actually we have a transformer.
This is something that was
found by Tesla, 100 years ago
and we are using this phenomena.
To fully understand how the system works,
one needs to travel even further back
to Michael Faraday's
work on electromotive force.
He discovered
that in the presence of an
alternating magnetic field,
an electromotive force could be produced
across an electric conductor.
Nikola Tesla, took this a stage further.
He deduced that if an alternating current
was passed through a coil,
it would generate an
alternating magnetic field.
If a receiver coil was then placed nearby,
this alternating magnetic field
would induce an electrical
current in the receiver coil
and if you have an electric current,
it can be used to charge a battery.
It was a brilliant concept,
but sadly at the time,
there were no commercial applications.
It would take another century
for the principle to be
adopted by charging devices
in our homes, but for
the system to be viable
for large scale vehicle use,
it would need to be
made much more efficient.
When they started,
it was estimated that
almost half the electricity
would be lost during the wireless transfer,
but the team were confident
that by fine tuning all
the various components,
as well as the power levels
and oscillation frequency,
this could be dramatically improved.
So first, when we establish the company,
we focus on dynamic wireless charging
or electric road system.
It means that we electrify the road
and we charge the vehicle
while the vehicle is in motion.
So this device is part of the RND work.
You can see here that
this simulates actual vehicle
driving on the road and
being a charge while driving.
So, those are the coils
that are under the asphalt
and this is the receiver
that is our under the vehicle.
Those coils are deployed under the asphalt,
about eight to 10 centimeters.
The coils emit energy to those receivers
only when there's an authorized receiver
that communicates with a coil
and then the energy is being delivered,
otherwise those coils are totally passive.
So as a general world,
our wireless charging technology
charges at approximately the same speed
as any standard
conductive charging solution
that you can buy and use at home.
Having developed the theory,
they built a 300-meter test track,
where they spent three years
testing a variety of vehicles
and perfecting the system
to a point where it achieves
an energy transfer efficiency
of up to 91% in test conditions.
They also perfected the
system to charge static
and parked vehicles.
It can be installed in
locations where conductive
or plugin charging cannot be.
So locations like bus stations and garages,
inside city centers,
underneath taxi cues or stands,
directly under the loading
docks at commercial facilities
and of course, roads and
street parking, for example,
because there's no
interference with the pavement
or with the road, everything
can be underground.
With the ability to charge both moving
and stationary vehicles,
the next step was to put it
into practice in the real world.
In Tel Aviv and in Calshot, in Germany,
we have a public pilot on the roads there
with the public bus operator in the city
and in both instances, we are demonstrating
that with a combination
of stationary charging
at the terminal or at the
bus station for a few minutes,
while the vehicle is parked,
plus some small stretch of
dynamic wireless charging
along the route of the bus, is
enough to power the vehicles
so that they can run 24/7
and we can simultaneously
reduce the size of the battery
or the capacity of the batteries.
And it's this ability
to reduce battery size,
that could be hugely significant
as the number of electric
vehicles on our roads increases.
[dramatic music]
There are about 1.4 billion
vehicles on our roads today,
globally, we just haven't
found all of the resources
that we require in order
to shift to electric mobility
on a global scale.
There are issues around
destroying habitats, for example,
from mining, for cobalt or for lithium ion
and so anything that we could
do to minimize the impacts
and to minimize the size of the batteries
is probably going to be a good thing.
In theory, we can reduce
battery capacity by up to 90%,
as long as we have this
wireless charging in convenient
and accessible locations.
In Gotland, Sweden,
they're already successfully operating
the world's longest
continuous electric road system,
stretching over 1.6 kilometers.
It charges not only a
public bus at the moment,
but also a 40-ton truck.
What's so significant about this trial,
is that it demonstrates the ability
to simultaneously charge
different size vehicles
with different energy requirements.
The system is totally automatic.
So the driver actually
doesn't need to do anything,
you just need to drive.
We have a metering
device inside the vehicles,
so this is how we know
exactly how much energy
every vehicle consumes.
Each 100-meter section
contains 60 charging units,
each able to charge an individual vehicle,
meaning that volume of
traffic will not be an issue.
It is hoped that in Europe alone,
there could be at least
by 2030,
but what sort of disruption
would installing such a network cause?
Of course, we're not suggesting
that we would come into any
city and tear up all the roads
in the city.
We're looking at
finding strategic locations
where it makes sense to deploy
because you have enough heavy traffic.
So if you looked at a
city grid, for example,
you'd be looking at deploying
somewhere between 15 to 30%
of the main roads.
If deployed at scale,
the team estimate the
costs to be around $650,000
per kilometer.
When we established the company,
we had a mission to deploy
one kilometer within one day
and actually, it was a joke nine years ago,
but today, we can
show that we did it twice,
in Tel Aviv and in Sweden.
Our goal is to pave a
whole city in few weeks
and we are talking about a
huge infrastructure project
and to do it in few weeks,
it's a huge challenge,
but I believe that we will reach that goal.
[dramatic music]
I think everyone has to
accept a bit of change.
It's a deep seated connection
to a personal vehicle
that many people have.
Many of us are gonna have to let that go.
Without question, our
relationship with the car
and car ownership is about to change,
but will it necessarily be a bad thing?
In the United States,
the country most synonymous with a car,
over 10 million households
already don't have access to one
and when combustion
engines are finally phased out,
will there be enough used
electric vehicles available
at a price people can afford?
Who is buying new cars?
Who can afford new cars?
Around the world, the
average age of the car
has been going up.
It used to be around nine
years and now, it crept to 10, 11,
now it's up to 12.
The average age of new
car owner is 52 to 54 years old
around the world.
Also, the economic
burden on us is phenomenal.
On average and I was
looking at these numbers
in countries around the world,
on average, is about 15%
of a household's budget
is spent on their car
and that means when you go to work,
the first hour and a half
of your work is paying off
how you get to and from work.
Poorest 20% of us, it's 33%
of their household budgets
go to their car and I was
just seeing a study of the US
that had counties highlighted
and there were some counties
in which 80% of a person's
income paid for their car.
It's mind boggling.
So when I was at Transport for London,
you get to see day to day,
what was required to keep a city moving
and that's from the
coordination of traffic, buses,
the underground, ticketing, the cycle hire,
overground rails, but one of
the most fundamental questions
is how do you make what you
provide work for everybody?
Many believe that by engineering our cities
to work differently, we can
create a sustainable, flexible,
affordable and convenient
way to move about.
It's called a multimodal model,
which includes improving public transport,
creating a safe environment
in which to walk and cycle
and where the new electric micro vehicles
can fulfill those short solar journeys
we now make in our cars.
[dramatic music]
How do you want your city to feel?
How do you want it to look?
How do you want it to sound?
And from that, derive how
you should behave in a city.
In many European
cities today and in the US,
increasingly, there's been
this idea of the 15-minute city,
which means that in my
daily life, I will be able to walk
or bike or go by subway in 15 minutes
to get everything I need in my daily life.
But what about those times
when only a car will do?
We do need cars sometimes.
I am not anti-car.
I have my 96-year-old mother.
I have been carrying lumber around.
I have places to go that are far away,
but it's not the thing that I wanna own
and use for every trip.
The economic efficiency
of not owning your own car
is profound.
[dramatic music]
[cars whooshing]
With concerns being raised
about the embodied energy
and the carbon footprint
of electric vehicle production,
particularly with regards
to a certain giga-scale
battery manufacturing,
could shared ownership
be part of the solution?
The notion of car
share is well established,
but how do you persuade
people who are weded
to the convenience of having
their own car to use them?
Could autonomous cars that
deliver themselves to your door,
be the answer?
And just how good would
the technology need to be?
Not content with reinventing the factory,
Arrival are also pushing
AI technology in cars
to a whole new level.
[dramatic music]
Hi, my name is Max Kumskoy,
I'm a product lead of
autonomous driving team at Arrival.
Max and his team
are developing what
is known as a full-stack
autonomous driving system.
A system which can operate
without the need for maps
or GPS tracking.
A system that will rely on
what it sees and senses.
[dramatic music]
Autonomous vehicles typically
rely on a range of sensors,
including radar, LiDAR,
which is similar to radar,
but instead of radio waves
detects reflected light,
ultrasound and cameras
to be able to see things like road signs.
From all this information,
onboard computers are
able to generate a 3D model
of the vehicle's environment
and all of this has to happen
and be processed in real-time.
You think, all right, you are good,
but how do you know that you are good?
You need to test yourself
against somebody who is already recognized
as a top performer.
Roborace was a championship
started by Arrival's
founder, Denis Sverdlov,
which allows AI teams from around the world
to compete against each
other to achieve the fastest lap.
[car engine whirs]
But for Max and his colleagues,
this just wasn't challenging enough.
[upbeat music]
In Rome, in 2016, the Arrival team
took on the American
professional dr*fter, Ryan Tuerck.
[upbeat music]
[tires screeching]
[car whooshing]
[upbeat music]
[upbeat music]
[car engine whirs]
[upbeat music]
[computer chimes]
I saw the time and it was just a disaster.
The gap was just unbelievable.
We were like, we can do better,
'cause actually computer
has a lot of advantages
over human and we were
like, why are we not using it?
[dramatic music]
What was just a fun bet,
now it turned into a massive development
of vehicle stabilization
algorithms for autonomous cars.
[car whooshing]
[dramatic music]
They developed a series of algorithms
to perform different roles.
One, to perceive the
surrounding environment,
including other potential road users.
Another to determine
which route or path to take.
One for what speed to go
and one to actually control the car.
But that's not it.
So you start driving, you
are in motion, you're driving
and then life happens.
There can be a sharp corner,
so your car can get out control.
So you need to have another algorithm
that will actually detect
that you are about to crash
or about to do something
dangerous and prevent
or save the car from the situation.
When it came to testing
their improved AI system,
they decided to take
things to a whole new level.
[dramatic music]
Lucas di Grassi has been
racing since he was 10 years old.
Having graduated from Formula One,
he went on to become one of
the co-founders of Formula E
and is now the most successful
driver on the Formula E grid.
[dramatic music]
I think the year the team has a big chance
of performing really well.
I hope I can still beat it,
but like deeply I want the
team to be very, very fast.
[dramatic music]
[car engine whirs]
[computer chimes]
The car was doing its best,
but it wasn't changing its
performance from lap to lap
and we saw that the gap with
Lucas, with Ryan was huge
and we thought, all right, what
is he doing that we are not?
And we realized that
he's actually learning.
He's learning and adjusting from lap to lap
and that's when we implemented
like an additional algorithm
that was learning
and that's when the
car started to be faster
from lap to lap.
So it was taking into
account everything it knew
about the track from lap one to lap two,
where can it go faster?
Where can it go slower?
That was like a major point
in our like racing career.
The car started to learn
and it was getting closer
and closer to human driver.
[upbeat music]
By analyzing all the performance data,
the AI system can work
out what it does differently
each time and if it makes it go faster.
It then changes its driving behavior
to reflect what it believes
is the most efficient method
and over time, it's able to perfect this.
[dramatic music]
By mid 2020, there was a palpable sense
within the motor racing world,
that racing drivers were
about to suffer the same fate
as chess grandmasters.
[dramatic music]
First of all, I have 25 years of experience
while the AI have only
like two or three years,
so that's a bit unfair, but we
are both controlling the car
in the same fashion, so you
have only access to steering,
throttle, brake and you have
to combine these three inputs
to create the best lap
time around the track.
It was time to test the
new learning algorithm.
Would it provide the extra edge
needed to outperform Lucas?
[dramatic music]
[tires screeching]
[dramatic music]
[dramatic music]
[car engine whirs]
But just when it looked like
a breakthrough was possible,
mother nature intervened.
[dramatic music]
[car engine whirs]
[computer chimes]
So I had a lot of fun out there.
The problem is that there
are patches of dry and wet,
so some corners, the optimal line
is where it's a little bit more dry.
Launching in three, two, one.
[dramatic music]
The conditions haven't improved
and the autonomous car's
new systems will be tested
to the limit.
[dramatic music]
Whoa!
[dramatic music]
And now it starts the rain again,
so it's very hard to compare now.
[dramatic music]
[car engine whirs]
Yes, great effort.
That was amazing.
[dramatic music]
I've never seen it
correct like that before.
The autonomous car is definitely improving,
but has it done enough to beat Lucas?
[computer chimes]
Who knows whether the car
could have won without the rain?
But the team believe
it's just a matter of time.
[upbeat music]
The ultimate challenge for Arrival
and for their Roborace team,
is to make the autonomous
car smarter than a human.
You can spend a lot of
time to teach how one human
how to drive fast and safe.
You can spend a lot of money
on his entire racing career,
that would be one guy.
How do you copy that
knowledge to the rest of us?
You can't, right?
But the computer application is different,
you take all the bits, all the
knowledge from those guys,
you put it to the code and
then you copy this code
to all the cars.
That's essentially what we are doing.
We're learning from
them, putting into the code,
put the code to car and copy.
This is so important.
This is so breakthrough from
Arrival and from Roborace.
In a couple of years,
the world will look back
at what we are doing today,
as something that pushes technology
that eventually change a
little bit the world for a better,
safer place in the future.
[dramatic music]
Autonomous vehicles
are currently being trialed
all over the world.
Companies such as Zoox,
have created rideshare versions,
taxis and buses are also
being intensively tested
and in certain cities,
they're even being integrated
into the public transport network.
Looking into the future,
some envisage AI technology
being used on a grand scale
to coordinate citywide traffic flow
with technology optimizing speeds
and the changing of traffic signals.
Done well?
I think autonomous vehicles
are a spectacular addition
to a multimodal lifestyle,
but we have to make sure that
we do not own those vehicles.
The concerns over privately owned vehicles
is centered around their potential
to actually make congestion worse.
With an autonomous
vehicle, I don't need to park.
Please, let me out, you just keep circling.
I don't care what you do, doesn't bother me
'cause it's gonna cost me nothing.
I'll have my tea.
I'll chat with my friend for an extra hour
and you come back when I call you.
So that's hell, heaven.
So this transition to autonomous vehicles
also comes with fitting
into our multimodal lifestyle
where I can now have shared cars
everywhere, even for
people who live in rural places.
[dramatic music]
And then there's the issue of how us humans
will react to seeing empty vehicles
driving along on their
way to pick up passengers.
Will normal driving
courtesy still be observed?
Yeah, that's a really big,
so far unanswered question, right?
And are people gonna be kind to them?
I think there's gonna have
to be a lot of work done
to make people
comfortable with the concept.
[dramatic music]
Our roadmap for
achieving the electric dream
may not yet be fully formed,
but it is without question,
a journey full of opportunities,
provided we have the courage to grasp them.
So when I was in central government,
we were really challenging
the industry to transform,
to reduce emissions levels
actually across Europe
and there was a lot of
pushback from the auto industry
and a wise old civil servant actually,
who I was taking over from in that role,
took me to one side and says,
"Don't worry, because
engineers are brilliant
and human ingenuity and human creativity
is the most tremendous
power and if you set a target
and a goal, things that
you never thought possible,
become possible"
and it's great now to be
involved in an environment
where there's all of those
brilliant engineering types
and we're gonna see how
far we can push it together.
Like no other are time in history
have we been at a moment
where we can make such a clean
and delightful break from
poor choices of the past
and I think we have to
focus on that and say,
I'm willing to make the shift
and if we don't address climate change,
we know what our destiny is.
This one earth that we have is it.
This is it.
[upbeat music]
[dramatic music]
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02x03 - Electric Cars
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An engineering revolution is underway. Driven by dedicated individuals who are building extraordinary machines that will change our lives.
An engineering revolution is underway. Driven by dedicated individuals who are building extraordinary machines that will change our lives.