There are relatively few startups in the autonomous driving industry right now. The big players are really bigâââTesla, Google, Uber, Ford, Continental Automotive, and the list goes on.
One notable startup, however, is Quanergy, a mapping and navigation company that specializes in LiDar.
âYou cannot build autonomous cars without LiDar, and anyone who thinks differently, please challenge me.â
This statement about laser radar systems was made by Louay Eldada, CEO of Quanergy, to a crowd at the Connected Car Expo in Los Angeles, Calif., but it seemed directed to Tesla CEO Elon Musk or anyone who may have listened to his press conference in October when he announced the availability of AutoSteer.
Microsoft just announced that it will be partnering with Volvo to develop automotive technology. At best, this marks the entrance of one of the worldâs great technology companies into the self-driving car market.
The text of the announcement, though, seems far more prosaic.
The stated plan is for Volvo to use Microsoftâs virtual reality technology to transform the car buying process:
Imagine enhancing your car buying experience at the dealership by viewing the complete inside of the vehicle you are interested in. With the power of holograms, we have the ability to open the car up completely, take a closer look at the engine, inspect the chassis or watch the drivetrain and transmission in action. Imagine viewing and customizing the car of your personal choosing, and viewing it at scale. You could have access to the full array of options, features and possibilities associated with every car make and model. Imagine then seeing the car youâve configured, at full scale, as a high-definition hologram projected into your garage, long before the car has even been manufactured.
Perhaps this is a first foray into the automotive industry, a precursor of bigger things to come.
By itself, though, itâs pretty small. Transforming the auto buying process may not be a big deal if people stop buying cars altogether.
In a short and disjointed piece, Mike Montgomery at Forbes labels Apple, Google, Tesla, and Uber as the new Big Four of automotive technology.
This is not itself outlandish, but its worth considering that these four companies are doing 3 different things.
Tesla, and reportedly Apple, are manufacturing autonomous vehicles.
Google is creating autonomous vehicle software.
Uber is creating a transportation network.
All four of these companies touch each other, sometimes in multiple ways.
And maybe over time their goals will converge, or maybe not.
Of course, they can still be the Big Four dominant companies in the autonomous vehicle market, even if theyâre doing different things. But when we think of the Big Three automakers, or the Big Four accounting firms, or the Big Ten athletic conference, we tend to think of directly competitive organizations.
KPMG just published a study about automotive innovation, which predicts that âpersonal miles traveledâ which increase by 1 trillion miles between now and 2050. Half of that increase is due to population growth, but the other half is due to innovation and improvement in the automotive industry.
The increase due to innovation is projected to be ~10% of total PMT in 2050. In turn, the increase from 2015 total PMT to 2050 total PMT is projected to be ~50%.
I canât comment on the specific numbers, but surely massive improvements in transportation automation will encourage people to travel more.
And that will affect resource development.
Traveling requires energy, and historically that energy has come primarily from fossil fuels.
While there is some hope that automation can help us become more efficient travelers, it seems likely we will need massive increases in fuel supply.
Even setting aside global warming concerns, itâs worth considering where we will find all of that fuel.
Oil prices are at decade-lows, so maybe now is a good time to go long oil.
On the other hand, Tesla is poised to revolutionize the battery industry, so maybe there.
Ford is testing its autonomous vehicles in a simulated city in Michigan, named âMcityâ.
âEvery mile driven there can represent 10, 100 or 1,000 miles of on-road driving in terms of our ability to pack in the occurrences of difficult events.â
Of course, note that this is similar to the difference between testing in a test harness, and testing in the real world, where users and the environment crazy things that the test designers never imagined.
Nonetheless, itâs an advantage that Michigan has over Silicon Valley when it comes to developing products for the non-digital world. Mcity is 32 acres dedicated to autonomous vehicle testing, and that kind of acreage is hard to come by in Silicon Valley.
Why? Because Tesla is moving in and apartment owners anticipate an increase in demand.
This is ironic, since the long-run effect of self-driving cars will be to greatly expand feasible commuting distances and thus lower demand in most (all?) locations.
With more states embracing autonomous cars and the hype surrounding next-stage vehicles increasing exponentially, Nevada wants to protect its lead on autonomous testing.
âThe worst thing would be for California, sort of the birth state of this technology, to accidentally sort of shut things down,â Sarah Hunter, public policy director at the experimental lab Google spun off to focus on ambitious projects such as self-driving cars and Internet-beaming balloons, said at a public presentation in September.
Texas:
Over the summer, Google expanded its road testing from Silicon Valley to Texas, where state law would not prohibit cars without pedals and a wheel. Some within Californiaâs DMV wondered whether Googleâs move was motivated by frustration with its home state.
One of the dreams of autonomous vehicles is the possibility of inter-vehicular communication, well beyond what is currently possible.
For example, when a stoplight turns green, all of the cars waiting in line could accelerate at the same time, having communicated that it is safe to do so. Contrast this with human drivers, each of whom must watch for the acceleration of the next driver, before accelerating their own vehicles.
However, there is some level of human-to-human driver interaction, and autonomous vehicles are potentially having trouble coping with this.
Think, for example, of arriving at a four-way stop, simultaneous to another car.
Theoretically, when cars arrive simultaneously, the left-most car has the right-of-way.
Practically, however, cars never arrive exactly simultaneously, and nobody pays attention to the left-hand rule anyway. Usually, one driver takes the initiative, or perhaps one driver waves another driver forward, ceding the right-of-way.
Intersections present a particular challenge, said Melissa Cefkin, who is based at Nissanâs Silicon Valley research centre.
âSometimes drivers communicate between themselves and with pedestrians or cyclists directly, by swapping looks, with a hand gesture, or even verbally,â she said.
âSometimes itâs interpretative: we look for signals while judging the vehicleâs speed and movements.â
The tiny pointers that motorists pick up from one another are not yet within the reach of the technology.
âCurrently, the machine isnât capable of grasping all the subtlety of these clues,â Cefkin said.
Increasingly, it looks like one of the sticking points for driverless cars will be the situations in which driverless cars have to interact with human drivers.
This isnât that surprising. Studies show that drivers are safer violating the speed limit and keeping up with traffic, rather than adhering to the speed limit and going at a different speed than everyone else.
The interactions between human and computer drivers seems like a variation on that.
A number of stories have recently surfaced, positing that Tesla will have to burn a lot of cash to stay in the auto manufacturing business:
Tesla Motors Inc. will continue to burn through large amounts of cash in its quest to become a bigger car maker, and Wall Street may be underestimating how much spending is still to come, analysts at Barclays said in a note Friday.
Tesla TSLA, -2.70% doesnât have a good track record in spending efficiently, and its business strategy will keep it a capital-intensive company, the analysts said. They estimated Tesla, which has consistently lost money, will go through $11 billion in capital spending over the next five years.
This, of course, contrasts with Googleâs business model, which is to focus on software and leave the manufacturing to others.
Iâve always wondered why the price of (standard, human-driven) cars hasnât fallen further. What are the costs of making a car? This Quora answer is short, so Iâll post it in its entirety:
OEMs (e.g. Ford, GM, VW etc) do not make car parts. What they do is the final assembly at their JIT [DS: I assume this stands for Just-In-Time] plants.
So the basic costs associated making a vehicle are:
-payments to auto parts suppliers (overhead console, flooring, door panels, electric wires-pretty much everything đ )
-payments to auto part makers investment (mould and stamping machines etc)
-logistic costs
-SG&A of an OEM
Diving in a little further, Fordâs most recent Form 10-K shows that ~88% of their costs fall under âAutomotive cost of salesâ, which is accounting-speak for the costs of producing cars. Actually, that probably understates the case a bit, because Ford also has a small financial arm, and some of the remaining costs are attributable to that.
Of course, âAutomotive cost of salesâ encompasses the first three bullet points above, and the 10-K doesnât have enough information (at least upon a quick scan) to break down the costs further.
It would be interesting to know more about where Tesla has the opportunity to wring costs out of the system.