Showing posts with label Autonomous car. Show all posts
Showing posts with label Autonomous car. Show all posts
Monday, March 7, 2016
Self-Driving Cars Already Make 60-Mile Trips Look Easy
Self-driving cars are not ready to sweep the world…yet. By the most conservative estimates, it might take another decade to make autonomous-drive features standard in cars. With that out of the way, most drivers are amazed when they learn what they are capable of in 2016, especially the Tesla Autopilot system that has won over the tech community. A Model S can now make runs of 60 miles or longer without much of any driver interaction.
Daniel Sparks, a tech specialist for the investment website Motley Fool, covered 61 miles in a Model S P90D without engaging the accelerator, brake pedal, or steering wheel. Sticking exclusively to the highway setting Autopilot was made for, Sparks claimed to have only touched the wheel once — to avoid an encroaching truck — in the 81-mile journey from Monument, Col. to Colorado City.
Using the navigation technology and sensors that respond to vehicles in and around it, the system changes lanes, holds steady, and adjusts speeds as needed. According to a report in MIT Technology Review, a driver has to establish a certain driving environment (e.g., a freeway) before letting go of the wheel. But from that point on, Autopilot can take charge, which led MIT to name it one of the breakthrough technologies of 2016.
Tesla is not the only automaker working to perfect this technology. Ford, GM, and Toyota are trying to take the lead in autonomous driving as the capabilities develop. Car and Driver recently compared the semi-autonomous capabilities of the Model S against a Mercedes S65 AMG, BMW 750i, and Infiniti Q50S.
In a 50-mile test that included 60% of highway time, the Model S Autopilot came out ahead as the “clear winner” in the test. Yet even Tesla has trouble in city driving. During a 2016 test, a Motor Trend driver had to grab the wheel on one occasion when his Model S veered to the left. At another point, he remarks that he would have collided with another vehicle had he not taken the wheel.
Highway driving is more straightforward, even when the lane changes and potential exits are confusing. Mapping systems generally know which way they are going and don’t have to look at signs or worry about jockeying for lane position. On the other hand, self-driving systems handle autonomous parking in the city, a feature that appeals to car owners hoping to avoid battle scars from other vehicles on the street.
Self-driving cars can get you long distances without requiring much in the way of input. You might consider it an advanced cruise-control system that takes the sting out of highway travel. For commuters facing lengthy round trips on a daily basis, the best autonomous driving systems already deliver a winning feature of future cars.
Saturday, March 5, 2016
Autonomous cars set for 5 second override in the US
Five seconds can be a lifetime when you're heading for a crash. And that's official.
It's the timeline that's been set in the US for a driver to regain control of an autonomous car.
The benchmark time is the target for all sorts of long-range research and development work in America, including at the BMW think tank called Designworks on the outskirts of Los Angeles.
Designworks has been doing business for BMW since the 1970s and is now a fully owned subsidiary with operations in Munich, LA and Shanghai, although it has a degree of autonomy that's unique in the BMW world.
It is virtually self-funding thanks to design and development work it's done on all sorts of consumer products, from toothbrushes to railway carriages, for a huge number of companies led by the Sennheiser audio brand.
You cannot be ‘eyes off' from driving. You can be doing something else but you can't just fall asleep.
In the case of self-driving cars, Designworks is at the leading edge of development.
Designworks boss Laurenz Schaffer is among the most bullish when it comes to cars that take over the driving. "Semi-automated driving is 2020 or 2025," he forecasts. "Fully automated driving is 2025 and beyond."
He's not dipping into the arguments about giving up control of the road, or having computers make life-and-death decisions, or the number of crashes triggered in autonomous trials by cars which are far more risk-adverse than human drivers.
But Schaffer is solid on the five-second rule. "You will need to be able to take over in five seconds. But you cannot be ‘eyes off' from driving. You can be doing something else but you can't just fall asleep," he says.
Is 5 seconds long enough to regain control of a autonomous car? Tell us what you think in the comments below.
Study: 3 out of 4 people afraid to drive autonomous car
Three out of 4 U.S. drivers are afraid to ride in a self-driving car, according to a new AAA study released Tuesday.
The automobile club’s study also found that only 1 in 5 Americans say they would trust an autonomous vehicle to drive itself.
Despite their initial trepidations, the study found that gradual experience can lessen that fear. The study said drivers who own vehicles with semi-autonomous features are 75 percent more likely to trust the technology than first-time users.
“With the rapid advancement towards autonomous vehicles, American drivers may be hesitant to give up full control,” John Nielsen, AAA’s managing director of Automotive Engineering and Repair, said in a statement. “What Americans may not realize is that the building blocks towards self-driving cars are already in today’s vehicles and the technology is constantly improving and well-trusted by those who have experienced it.”
A separate study released by global consulting agency EY at the Geneva auto show found that more than 40 percent of drivers could imagine letting an autopilot steer their car, while around two-thirds of drivers were willing to let an autopilot steer their car if they had an added option of taking over the wheel in an emergency.
The studies comes a day after Google reported its driverless car was at fault when it hit a bus at 2 miles per hour while test driving on California roads. The tech company has reported all accidents involving its driverless cars, and none have resulted in injuries.
Last January, senior executives from 17 of the world’s leading automotive companies met with federal officials in Detroit to cement an agreement aimed to collaboratively enhance auto safety efforts in the United States. No definitive actions were announced but executives and federal officials categorized the agreement as “historic,” “unprecedented” and a road map for the industry and federal officials moving forward.
Already, most major automakers have implemented a number of semi-autonomous safety features like park assist, collision warning and lane-keeping assist. Nearly two-thirds (61 percent) of American drivers surveyed by AAA report wanting automatic emergency braking, adaptive cruise control, self-parking technology or lane-keeping assist in their next vehicle.
Most drivers (84 percent) who want the technology cite safety as the No. 1 reason. About 64 percent of responders want it for convenience, while 46 percent want it to reduce stress.
About 84 percent of drivers who do not want semi-autonomous features on their next vehicle say they trust their own driving skills more than the technology. About 60 percent feel it’s too new and unproven, while 57 percent just don’t want to pay more for it.
The EY study said that forward-collision warning systems and automatic braking will help reduce car crashes up to 15 percent.
Driverless cars are coming, whether consumers want them or not.
In January, Transportation Secretary Anthony Foxx announced a 10-year, $3.9 billion investment that’s part of President Barack Obama’s 2017 budget proposal to accelerate development of autonomous cars. The new policies would lay a framework for state regulatory laws and generally remove roadblocks and red tape that have stalled development in the past.
Delphi Automotive has been testing a fully autonomous Audi SQ5 for years, and showcased the vehicle at this year’s CES tech show in Las Vegas.
Kia Motors Corp. earlier this year created a sub-brand called Drive Wise for all of its autonomous vehicle research, and plans to put a fully driverless car to the market by 2030. Ford Motor Co. earlier this year tripled its autonomous vehicle test fleet, and CEO Mark Fields has said he expects someone to put a fully driverless car on the road by the end of the decade.
A January study by consulting firm McKinsey & Company said they expect by 2030, 15 percent of global auto sales will be of autonomous cars. By 2035, the EY study says 85 million autonomous-capable vehicles will be sold annually.
Thursday, February 18, 2016
Driverless Cars Are Inevitable And Necessary
Our nation’s highways are teeming with automotive gridlock. Everyday commuters are backed up bumper-to-bumper, many of whom are driving alone to and from work. Public transportation is either unavailable, inconvenient or frankly just too awful to be a viable option for many.
Traffic is a serious problem. It compromises our safety, damages an already fragile environment and hinders us economically. And continuously expanding our roadways to get another lane of traffic isn’t going to solve it.
But imagine a scenario where we are able to share cars that pick us up at our house, and whisk us off to work while we check our morning emails. Microsoft has researched predictive analytics that would ensure passengers have a seamless entry and exit to their daily commute, and that the most efficient routes were always chosen. This is the potential of the driverless automobile, the ambitious and disruptive technology that Google and many other automotive giants are pushing forward with rapid fervor.
More Than Safety
But not everyone is excited about the prospect. Like many innovations, late adopters tend to be critical of technology in the beginning and often misapply the utility rationale for the new developments. For example, much of the purported reasoning for autonomous vehicle technology is safety. Although safety is required to a new standard with autonomous vehicles for obvious reasons, this is not the only reason for the development of driverless cars and really misses the point. This premise ignores the economic, utility, and environmental factors that are pushing these advancements. Autonomous vehicles are the obvious inevitable step in the evolution of American transportation, and they solve many issues that compound our transportation problems, most notably, traffic.
Innovation is the product of necessity, and along the way there will always be resistance. The car was originally resisted because many people didn’t understand the need to move away from the horse. And beyond those who benefited from a reduction in saddle sores, the automobile catalyzed the airplane, made radio technology advance for in-dash availability as well as trucks. We can take the example all the way to satellites and rockets. My point here is that it’s impossible to foresee the spin-offs that innovations will have, and when innovation is created out of a need, it’s merely the first ripple.
It’s easy for critics to reduce this innovation to a fancy and needless development. However, driverless cars present a real and necessary step towards the solutions to many of the problems that plague our nation’s transportation infrastructure; not to mention the problem of distracted drivers in this modern age where our displays and our gadgets are competing for our attention.
It is true that if we were to become reliant on driverless autos, it might make us less experienced and perhaps more dangerous drivers in the event that we are forced to actually take the wheel ourselves. After all, Americans certainly became less adept at riding their horses after the introduction of the automobile over a century ago! But it’s quite likely that uninterested amateur motorists would simply chose to let their robot friend do the piloting, and the fact that there might occasionally be uninterested and unskilled drivers behind the wheel isn’t really a change from the current situation, is it?
Better Driving
The other consideration that driverless auto skeptics point out is that a shift to robot drivers will cause something crucial to be lost: driving is fun! And it’s certainly true that the freedom of the open road and the pleasure that comes from driving a powerful automobile across our nation’s byways is distinct slice of Americana that nobody wants to see eliminated – but there’s no reason for that to ever be eliminated. Driverless automobiles needn’t replace pleasureable joyrides, instead it will replace the drudgery of bumper to bumper commutes. This is the logic behind Volvo’s Concept 26.
In reality, it will only increase our ability to enjoy the freedom of “cruising” by diminishing the ways in which we are day-to-day slaves to our cars..
Over €3 billion needed to prepare Spanish roads for driverless cars
An engineer with German car giants Bosch says Spain needs to invest at least €3 billion in its infrastructure before introducing driverless cars.
Maria Belen Aranda Colas told a Madrid conference that huge sums are needed to update road signs so cars can anticipate diversions or closures.
Arguably, it’s worth it: “An 80% average improvement could be achieved in traffic, and drivers could recover nearly one hour which they lose each day driving their current cars,” said Colas.
The Spanish engineer said extra funds would also be needed to update and maintain the signs each year.
In November, a Citroen C4 Grand Picasso became the first driverless car tested in Spain, travelling 373 miles on motorways from Vigo to Madrid.
What happens when a self-driving car encounters snow?
Last year, in a Detroit-area parking lot, the driving seemed hopeless. Sam Abuelsamid sat in a new Kia Sedona minivan with some of the most advanced driver’s assistance features on the market, and all it would do was beep at him uselessly.
Snow was falling and the van’s rear parking assist camera was covered with ice; the ultrasonic sensors that warn of nearby objects were pinging off the snowflakes.
“We’re a lot farther from general use self-driving cars than those in Silicon Valley would like you to believe,” wrote Abuelsamid in a Facebook post at the time. “I had to turn off the parking assist because the falling snow was triggering the ultrasonic sensors causing the system to beep continuously while there was nothing around the vehicle.”
Abuelsamid knows about these things. He’s a senior automotive analyst with Navigant Research, and the Kia was a tester on loan for him to experience its features. Most of the time, he was impressed with it staying in its lane and keeping its distance from other vehicles, but when it snowed — that all became useless.
“I’m sure we’re farther ahead now, but I don’t know how much farther,” he says today. “There are always advances happening, but they’re probably closer to small steps than giant leaps.”
But yes, there are small advances for autonomous winter driving being made all the time. This year’s new Mercedes-Benz E-Class, for example, has heated radar covers that are coated with a special plastic film for protection from ice and rain. It means the radar still works in bad weather so the car can recognize guardrails and even follow other vehicles on the road through snow and storms.
This was developed after extensive winter testing in Sweden, says Michael Hafner, Mercedes’s Director of Driver Assistance Systems and Active Safety.
Normally, the car uses both its cameras and radar to follow lane markings and detect objects on the road, but “if the conditions are degrading, because of snow or rain or whatever, other objects can grow more dominant,” says Hafner. Those can be guardrails or signs or any structure, and even a changing road surface.
“We include many of these parallel structures in our (mapping) records, and the level of accuracy is high enough now that we know where the road goes, and we can keep under control on the road.”
Last month, Ford took its testing a step farther after a snowfall at the University of Michigan’s Mcity proving ground. The 13-hectare facility has a network of roads and intersections set into a fake town for safely testing vehicles.
“One of the real challenges is to understand the things that we don’t understand. Going into snow falls into that,” says Jim McBride, Ford’s Technical Leader of Autonomous Vehicles.
“We were looking for an opportunity to have snow fall on the ground and go out and drive, and say look, we don’t see the painted lines, we don’t see the crosswalks, we don’t see any of that, but we see the rest of the world around us, and that’s really what enables the vehicle to know where it’s located.
“There were no surprises whatsoever — the vehicle did exactly what it’s supposed to do.”
The Ford Fusion Hybrid was considerably more advanced than any current production vehicle, however. For one thing, it’s equipped with spinning Lidar sensors on the roof, which emit laser light for up to 65 metres that creates a highly accurate computerized 3D image from the reflections.
This light bounces off raindrops and snowflakes, but the computer is smart enough to recognize them as such and does not let them affect the image.
The test car also reads from a mapping program so detailed and accurate that it can place the vehicle within a centimetre of its location at any moment. Normal GPS is only good for a metre or two. Like a blind person walking through a familiar room, it knows exactly where everything is; should anything change, the Lidar will inform it.
Google’s driverless car operates in a similar way, and the company says it’s now testing it in “rainy and snowy conditions,” but has not reported on its progress.
McBride is optimistic these “enabling technologies” are close to production, perhaps within five years. So is Hafner, who acknowledges 2020 may be “the magic year.” Not for totally driverless cars, perhaps, but for much more autonomy than now.
Abuelsamid is not so sure. “If your Lidar sensor is covered with road salt, it doesn’t matter how good it is,” he says. “Autonomy’s not going to happen overnight — it’s going to take a while.”
The Powerful Brain Behind Driverless Fleets Is Already Being Built
That day in the future when you get inside a self-driving bus to get to work, you’ll assume that the bus is programmed to drive you there as efficiently and safely as possible. Software will have replaced the driver who does that today. Perhaps more importantly, software will have also replaced those managing scores of busses at a control centre. Robin North is building the latter technology that will control those fleets from the mothership.
North and three other engineers spun out Immense Simulations from their British-government funded research group and are selling software that can coordinate thousands of driverless vehicles at once. Such cars will be “strategically autonomous” he says, because they’ll be synched up as part of a huge network.
Immense is targeting traditional fleet operators, city authorities like Transport for London and other new technology companies keen to enter the fledgling market.
Its software (pictured below) runs on a cloud-based, simulation platform from London startup Improbable. The platform can host large-scale, detailed simulations of cities, which allows Immense to simulate how cars would react to changes in the weather, pedestrians or other cars on the road.
Immense was one of the first companies to work with Improbable last year when the latter company first introduced its Spatial OS platform to early clients, many of whom were game developers.
“We were some of the first people through the door,” says North. “We set ourselves a challenge of, ‘Ok, you can do a big, scaleable, virtual world. Can you do a real one with millions of entities? What happens if you try and simulate Manchester?’”
Friday, February 12, 2016
Autonomous Cars Change Every Industry, Even Yours
Though your company may still be adapting to social media technologies or Collaborative Economy disruptions, even more business model changes are coming. New autonomous technologies on the horizon are triggering greater acceleration of innovation programs to keep up. Google, Uber, Apple, Lyft, Tesla, BMW, Ford, Volvo, Yamaha, Mercedes, and other car manufacturers are working on producing self-driving cars, and the industry impacts will reverberate.
At Crowd Companies, we're focusing on the autonomous world as the next phase of the Collaborative Economy, and define it asfollows:
Autonomous World: A future state when intelligent technology systems, operating without human participation, enable new business models in a more efficient society.
These intelligent technology systems can take the form of many hardware and software products, including self-driving vehicles, drones, and other artificial intelligence. The Autonomous World is our futuristic vision, with society experiencing an inevitable "semi-autonomous world" with minimal human interaction before fully autonomous systems are operable and dependable.
That's right, the human drivers of taxis or Ubers will be cut out by robots who can do it better. Uber's CEO elaborates further in BusinessInsider as to why they're developing self-driving cars. Alphabet (formerly Google) is leading the way in self-driving car testing, and today it was even announced that autonomous cars could be considered"drivers." Meanwhile, GM is close behind with its recent $500 million investmentin the development of an autonomous fleet utilizing Lyft's platform exclusively.
Silicon Valley tech companies like Uber, Google, Tesla, and Apple are heavily investing in these autonomous cars, leading with a technology approach rather than with a traditional Motor City approach. Meanwhile, Detroit and other car manufacturers are opening up labs and innovation centers in Silicon Valley as they, too, strive to integrate tech.
Autonomous cars will prevent 95% of all traffic collisions
Autonomous cars engender some strongly held opinions but experts say there is one thing beyond argument - we don't have much choice in the matter, they're coming.
However, we could be waiting some time: all UK cars predicted to be 'highly autonomous' by 2040, but the nation's vehicles won't be fully driverless until 10 years later.
And when this does happen in 34 years time, 95 per cent of today's traffic collisions won't take place, the Institution of Mechanical Engineers has suggested.
IMechE said fully autonomous cars are further away than many people may have expected as part of its latest driverless vehicle report released on Thursday.
While testing is well underway in the US, Tesla has already launched a part-autonomous system and the UK Government has a dedicated fund to speed-up the development of driverless vehicles, the institute said there will be no 'Big Bang' for the technology, rather a process of increasing levels of automation over a number of years.
But in order for this to take place, IMechE warned there are societal questions that need to be addressed so that driverless cars are accepted by the public and legally able to travel on UK roads
Part of these changes include forward-thinking for how insurance will work for vehicles in the future - something that'll be discussed in March by 11 major UK insurers making up the new Automated Driving Insurer Group, created to discuss industry-related issues linked to the emergence of autonomous cars.
Philippa Oldham, head of transport at the Institution of the Mechanical Engineers and lead author of the report, said: 'We need to urgently resolve legislative, technological and insurance issues to help encourage the rollout of autonomous or driverless vehicles.
'The benefits to this sort of technology are huge, with estimates that the overall UK economic benefit could be as much as £51 billion a year due to fewer accidents, improved productivity and increased trade.
Currently 95 per cent of all crashes happen due to driver error, so it makes sense for Government, industry and academia to redouble efforts to look at how we phase out human involvement in driving vehicles.'
Earlier this month, the Government announced it is pushing ahead with 'landmark' plans to ramp up driverless car technology by pumping £20 million into eight autonomous-vehicle projects.
The sum is part of the £100 million Intelligent Mobility Fund pot, which had been setup to support a range of programmes currently working to develop driverless tech.
One of these projects includes tests of connected and highly-automated cars by Jaguar Land Rover staff on 41 miles of public roads around Coventry and Solihull.
However, Oldham has called for more Government action to speed-up an autonomous car environment in the country.
'There needs to be much more action from Government to help integrate driverless vehicles into the current UK transport network, ' she added.
'This will include updates and standardisation to road signage and road markings to enable these driverless vehicles to operate in the safest way possible.
'There is also a role for the car dealerships and vehicle manufacturers as they will need to clarify how they will provide the greater level of after-sales care, technical updates and upgrades that will be required to ensure the safe introduction of these vehicles on our roads.
'Much more work needs to be done to clarify regulation and insurance issues, such as where liability lies in case of an accident.'
IMechE's report was released a day after U.S. vehicle safety regulators said the artificial intelligence system piloting self-driving Google cars could be considered the driver under federal law, a major step toward for potential approval of autonomous vehicles on the roads across the Atlantic.
The National Highway Traffic Safety Administration told Google in a written letter that it will interpret 'driver' in the context of Google'scar design as referring to the self-driving system and not to any of the vehicle occupants.
The NHTSA's letter said: 'We agree with Google its (self-driving car) will not have a 'driver' in the traditional sense that vehicles have had drivers during the last more than one hundred years.'
Tuesday, February 9, 2016
Americans are scared of autonomous cars, and for no good reason
The self-driving car has its skeptics. New data shows that many Americans aren't yet ready to welcome autonomous vehicles to the road and their lives.
According to a study of 1,869 registered U.S. voters from the polling firm Morning Consult, 43 percent of people said they believe driverless cars are not safe, while 32 percent said they are. Most shocking of all, a whopping 51 percent of people said they wouldn't be a passenger in one.
In results that likely surprised no one, young people are more open to the idea that driverless cars are safe, and older voters are more hesitant toward the tech. The group of voters aged 18-29 was the only one with a majority who agreed driverless cars are likely safe. Additionally, women are more likely than men to doubt the safety of autonomous vehicles.
The polling shows that despite the hype in the tech community surrounding a future where cars drive themselves, average consumers aren't ready to adopt them quite yet. Fully autonomous cars aren't available for consumers, but Google and other vehicle manufacturers are testing them on roads across the U.S. already. Delphi tested a modified Audi SQ5 on a cross-country road trip last year, and Tesla recently debuted Summon, a way for drivers to have vehicles automatically pick them up and assist with parking in tight spots.
The federal government also wants to invest in the future of autonomous vehicles. At last month's North American International Auto Show in Detroit the Obama administration proposed a 10-year, $4 billion investment to "accelerate the development and adoption of safe vehicle automation through real-world pilot projects."
Despite tech and policy driving the future of autonomous transportation, consumers' skepticism shows there's still hesitation to get behind the wheel of a ton of metal that controls itself. But safety concerns, while valid reasons to doubt self-driving cars, might be allayed with data.
In a November 2015 study from the University of Michigan Transportation Research Institute, researchers discovered that while statistically driverless cars are more accident prone, all 11 accidents such vehicles got into were entirely the fault of other human drivers. And in eight cases, the cars were stopped or going less than five miles per hour. Additionally, the comparative data was based on the number of human driver car accidents actually reported; 10 million car accidents are estimated to go unreported in the U.S. each year.
Most of the people in the U.S. don't have an autonomous vehicle, or have ever been a passenger in one. Considering how far out we are from an actual self-driving car that people can purchase and ride home in, the skepticism toward the automated tech is totally understandable. But early data shows it might be unfounded—cars driven by computers might actually be safer than those driven by humans.
Monday, February 8, 2016
Us Army Self-Driving Cars
The Biggest User Of Self-Driving Cars Could Actually Turn Out To Be...The US Army?!
Yeah, this could really happen.
While driving enthusiasts are not exactly thrilled with the rise of self-driving cars and autonomous driving tech in general, it turns out another major organization is embracing it. That would be the United States Army. According to a new report coming from Automotive News, the Army is "currently testing convoys of driverless vehicles that follow a truck driven by a human." Why, exactly? Because the Army is keen to know if convoys equipped with self-driving technology can help "ease the workload of its drivers."
Apparently, this is a major priority during time of war when equipment is being transported around the clock. The testing is currently taking place in Michigan and this coming summer the Army plans to take things a step further by introducing vehicle-to-infrastructure radio links. At a cost of $5,000 each and with a range of 300 meters, these will be installed on a four-truck convoy with each truck transmitting "its speed and location to roadside units, which in turn will supply the trucks with data such as lane closures and speed limits." If the driverless convoy testing proves to be successful, the Army plans to retrofit the rest of its vehicle fleet with the technology.
UK Could Host Google Driverless Car Trials
Transport bosses are in "active discussions" with Google about trialling driverless cars in the UK.
The technology giant's cars have never been tested extensively outside of the US - but London officials are hoping to bring them to the capital.
Deputy mayor for transport Isabel Dedring said her office had spoken to Google "at least half a dozen times" over the past three years.
"It's going to have to work in big cities so why don't we start trialling it now?" she said.
"We met them a few weeks ago to see whether they would do trials here.
"It is still very early days but we would be keen for trials to happen in London whenever Google are ready to move them into other countries."
Google's prototype of a driverless car relies on sensors and software to complete journeys.
They are rounder than normal cars, enabling lasers, radars and cameras to detect objects in every direction.
The electric-powered cars have interiors that are "designed for riding, not for driving".
Trials in Mountain View, California, and Austin, Texas, are already being extended to Kirkland, Washington, to see how the vehicles perform in the wet.
The Government announced earlier this week it would invest £20m in eight driverless car projects.
The technology will "profoundly change the way we travel within years" by reducing accidents, helping traffic flow and making it easier to travel by car, according to Transport Secretary Patrick McLoughlin.
It could also reduce the budgets for major projects in London.
Ms Dedring explained: "One of the interesting benefits of driverless vehicles is we can construct a much smaller tunnel because you don't have to have the same safety requirements."
Autonomous driving levels 0 to 5: Understanding the differences
Between the buzz over self-driving cars at CES 2016 and the Obama administration's announcement to invest almost $4 billion in autonomous vehicle research over the next 10 years, the race to create the best self-driving car has never been hotter.
And, the rise of self-driving cars is going to have a major impact on businesses and professionals. Automated vehicles could replace corporate fleets for deliveries or transporting employees, for example. And workers could gain productive hours in the day by working instead of driving during daily commutes. It is also poised to completely change the car insurance industry by reducing accidents—a new report predicts that accidents will drop by 80% by 2040.
But, what does "autonomous driving" really mean? In 2013, the US Department of Transportation's National Highway Traffic Safety Administration (NHTSA) defined five different levels of autonomous driving. And on January 15, the NHTSA updated their policy to reflect that "the widespread deployment of fully-autonomous vehicles is now feasible," According to the document, the NHTSA will provide "best-practice guidance to industry on establishing principles of safe operation for fully-autonomous vehicles"—in other words, vehicles at level 4—in the next six months.
The NHTSA is "working to transform government for the 21st century, harnessing innovation and technology that will improve people's lives," according to a representative. "This is an area of rapid change, which requires the DOT and NHTSA to remain flexible and adaptable as new information and technologies emerge. Amid that rapid change, the North Star for DOT and NHTSA remains safety."
Here's what you need to know about levels 0-5.
Level 0: This one is pretty basic. The driver (human) controls it all: steering, brakes, throttle, power. It's what you've been doing all along.
Level 1: This semi-autonomous level means that most functions are still controlled by a driver, but some (like braking) can be done automatically by the car.
Level 2: In level 2, at least 2 functions are automated, like cruise control and lane-centering. It means that the "driver is disengaged from physically operating the vehicle by having his or her hands off the steering wheel AND foot off pedal at the same time." The driver must be still always be ready to take control of the vehicle, however. So, level 2 means two functions automated. Easy to remember, right?
Level 3: Drivers are still necessary in level 3 cars, but are able to completely shift "safety-critical functions" to the vehicle, under certain traffic or environmental conditions. It means that the driver is still present, but is not required to monitor the situation in the same way it does for previous levels. Jim McBride, autonomous vehicles expert at Ford, said, "the biggest demarcation is between Levels 3 and 4." He's focused on getting Ford straight to Level 4, since Level 3, which involves transferring control from car to human, can often pose difficulties. "We're not going to ask the driver to instantaneously intervene—that's not a fair proposition."
Level 4: This is what is meant by "fully autonomous." According to the DOT, level 4 vehicles are "designed to perform all safety-critical driving functions and monitor roadway conditions for an entire trip." It's what Tesla says will be available by 2018.
*Level 5: It should be noted that some organizations, like the Society of Automotive Engineers (SAE), have their own charts that refer to "Level 5" vehicles. This refers to a fully-autonomous vehicle that does not have any option for human driving—no steering wheel or controls.
Why it matters
So why are the levels important? They serve as general guidelines for how technologically advanced a vehicle is. In terms of what consumers need to know, Thilo Koslowski, Vice President and Lead Automotive Analyst at Gartner Inc., thinks that ultimately, there are three stages that will be relevant: "automated, autonomous, and driverless." It's important to distinguish between "autonomous" and "driverless," he said: "driverless is a more advanced stage of autonomous."
But while drivers themselves may be less concerned with the distinctions, they could be significant when it comes to issues like car insurance, which is expected to change radically in the era of self-driving cars.
KPMG, a consulting firm, has issued a report on how the car insurance business will be affected, since the number of accidents are predicted to go down 80% by 2040. The different levels are important because they "change the risk profile of the car," according to KPMG expert Jerry Albright. "Insurance companies need to understand how these new capabilities affect driving risk." Joe Schneider, also with KPMG, put it this way: "It's like a baby, going from crawling to walking to running."
Albright said, "The car becomes safer and safer as it moves towards fully-autonomous driving."
Monday, February 1, 2016
Marketing In The Fast Lane With Self-Driving Cars
From George Orwell predicting the overwhelming reach of television in 1984 to the video phone calls in Back to the Future, it seems that technology often imitates pop culture. Nowhere could that be truer than with the new developments in self-driving vehicles.
These self-driving vehicles won’t just change the way we look at transportation. They will shift people’s behavior in a critical way, making it a new avenue for digital marketing. When you consider how much time the average person spends in their vehicle every day — about two hours according to most studies — this type of marketing could become a new cornerstone. This new avenue could be a great new way for brands to connect with their target audience, by creating personalized, value-added services.
How self driving will become the new driving
One of the champions of self-driving cars, Elon Musk, likens them to elevators and the elevator operators of old:
“They used to have elevator operators, and then we developed some simple circuitry to have elevators just come to the floor that you’re at, you just press the button. Nobody needs to operate the elevator. The car is just going to be like that.”
As the technology improves, cars will actually be able to do the job more efficiently than humans. After all, 90 percent of motor vehicle accidents are due to human error. Once it’s evident that self-driving cars can eliminate the vast majority of accidents, they’ll become the standard for roadway use. Indeed, having a car you could actually drive would be prohibitively expensive, or even illegal. The end of the need for drivers will impact just about every industry.
Mass public transportation will become mass individual transportation
Public transport options will become less popular as self-driving vehicles become available at a moment’s notice. Governments will be able to funnel money away from expensive public transit programs and instead focus it on ways to take ridesharing to an individual level.
Airlines will feel the impact as well, as short commuter flights are abandoned for the privacy and convenience of a self-driving vehicle. After all, if the driver can sleep in their car, it’s just as convenient to drive that 8-9 hour trip rather than fly it.
Advertising that already exists in these public transportation venues is aimed at the masses. Flat-screen advertisements in subways have been around since 2005; in-flight movies and magazines have been around for much longer. These advertisements are not personalized for the individual, but instead focus on gaining as much attention from a large group of people in order to convert an extremely small percentage of them.
But when individuals are able to order up their own vehicle, these advertisements aimed at the masses will no longer be appropriate. Instead, the individual will come to expect individualized service and in that, individualized advertisements. By ensuring that in-vehicle advertising is focused, and designed to give the individual something they need, companies can connect and create brand recognition.
The interior will create the experience
Instead of staring at the road, occupants might browse the Internet, watch TV or decide on a restaurant along their route. People spend an average of two hours a day in their cars, and that time that used to be occupied by driving will be wide open for other tasks. This is where personalization will be important. Cars will not be just a mode of transportation, but an extension of the individual inside.
Things like picking up groceries or take-out for dinner have the potential to be done by the car itself. The car might receive the address from their owner, or even get a check-in from a company letting it know that an order is ready. In a way, self-driving cars could become the new delivery man.
The focus of driving itself will change. It will go from being a purpose-driven activity to an experience-driven activity. The time spent staring out the windshield at the concrete will be occupied elsewhere. Self-driving cars will be expected to know their occupants, making the impact of marketing in these places even stronger.
Marketing toward the future
Of course, when it comes to this marketing avenue, it’s not about spamming a captive audience with ads for products or services. Instead, it’s about enhancing their in-vehicle experience. If the traveler is on their way to an amusement park, the vehicle could send them information ahead of time about any special events or things to see. If they’re on the way to a grocery store, they can receive more information about products and even learn about specials that might be going on. The vehicle can become a tool for enhancing the customer’s trip and helping them plan their day.
While this seems like a distant future, it’s important to always be marketing toward the future. Things we already know about mobile marketing will work when implemented in a vehicle, as well. That’s why it’s important to focus on things that will work with technology on the move, like:
- Targeting by location. It’s important to integrate the physical and the digital for customers on the move. After all, 90 percent of customers still do their purchasing in brick-and-mortar locations.
- Personalized by user preference. The ads the passenger should be given will be targeted to their specific preferences. For example, a vegetarian won’t get ads for steakhouses along their routes, single adults might get ads for new clubs or concerts and so on.
- Happening in real time. Marketing in-vehicle will kind of be the new billboard. Smart marketers put their billboards in just the right spaces. Not so far the person forgets about it before they get to the exit, not so short that they miss it entirely. In-vehicle ads will need to recreate this experience digitally.
With apps turning vehicles into moving wearables, more opportunity grows for marketers. On average, people spend about two hours a day in their vehicles. If these people didn’t have to drive, what would they be doing? As vehicles become autonomous, drivers will become passengers. Marketers need to prepare for this by working on location-enabled, personalized messages that can happen in real time, on multiple devices.
How will driverless cars work during a snowstorm?
As cities along the East Coast finally finish digging their way out of last weekend's historic snowstorm, drivers braving the streets have to contend with icy conditions, snowbanks along the curb and other hazards they would probably rather avoid if they could help it.

Enter the self-driving car, which someday may alleviate that anxiety. But although the technology appears to work well in dry, sunny weather, those are just the best-case scenarios. The real test for autonomous vehicles will be when the roads are wet or even icy and invisible to the computerized eye. What then?
Researchers who work on driverless cars say we're still five to 10 years away from developing an all-weather self-driving capability. That's because there are a host of challenges when it comes to driving in bad weather that humans have learned to overcome - but computers have not. This issue has taken on even greater urgency given that an initial wave of high-tech cars, such as Tesla's sedans that can go on autopilot, are already on the road.
For the most part, self-driving cars being tested by Google and other carmakers are running their experiments in relatively safe environments in California and Texas, where the weather is generally fine. But last month, a company spokesman said, Google sent its self-driving cars to snowy Lake Tahoe to collect important test data. Google's car is equipped with special wiper blades that help keep the car's camera lenses clear in bad weather. And if it's in the middle of a particularly nasty storm, the vehicle can automatically pull over and wait it out, according to a recent company report.
"Our cars can determine the severity of the rain," the report reads, "and just like human drivers they drive more cautiously in wet conditions when roads are slippery and visibility is poor."
Like real people, being unable to see can be a huge problem for a machine that relies on cameras, radar and laser-based sensing systems. In addition to the risk of snow or ice building up on external sensors, even an inch of snow cover on the ground could disrupt an autonomous vehicle's sensitive systems.
In one example, Ford's test vehicle has trouble "seeing" much farther than the cloud of snowflakes in front of it. That's because the sensing systems designed to bounce signals off of distant objects are reflecting off of the snow instead, resulting in what looks like a cloud of angry bees surrounding the car.
"If we can't see the world around us really well, our ability to estimate where we are falls apart," said Edwin Olson, an associate professor of computer science at the University of Michigan who's working with Ford. "The standard approach to figuring out where you are very accurately is to look at the ground - and the ground is the first thing to go when it's snowing or raining."
The solution, Olson said, is to train the car's cameras on its surroundings - to rely on passing buildings, street poles and even trees to determine its location. From there, the car can match those reference points to the map that's stored in its brain.
But low visibility is just one aspect of the problem.
"In a snowy climate, people aren't driving in their lanes anymore. They're driving in the tire tracks of the guy in front of them," said Ryan Eustice, who directs the University of Michigan's Perceptual Robotics Lab and has also been working with Ford.
In other words, humans know that it's sometimes safer to break the rules of the road when it's snowing than it is to obey them. But how do you teach a machine to defy its own programming?
That's not all. On top of knowing the difference between bad weather and a sensor malfunction - and how to behave "improperly" - autonomous vehicles may also have to communicate with, or even fight, other safety systems in the car in order to drive the way a human would.
For example, anti-lock brakes and electronic stability control have helped human drivers avoid crashes for years. But software makers for driverless cars don't necessarily have control over those features because they are sometimes made by third-party suppliers, said Olson. The result could be that these features kick in when the computer least expects it.
"Stability control systems, those are really going on at very low levels in the vehicle, almost like a reflex," said Olson. "The autonomous vehicle is almost cognitive, at a much higher level. There's a real concern that these safety systems - which are great for human drivers - will it just confuse the autonomous control? Getting that interaction right is pretty tricky."
The fact that we're still so far from building an all-weather driverless car will probably mean that manufacturers will release their earliest autonomous vehicles only to certain cities at first, or allow drivers to turn on the robotic features under a specific set of conditions. So while driverless cars are definitely coming, don't expect them to be able to get you through a whiteout anytime soon.
A spokesperson for Tesla didn't immediately respond to a request for comment.
Self-Driving Cars Set to Hit the Streets of London This Summer
The snazzy driverless vehicles are being adapted from the ‘UltraPods’ which carry passengers around Heathrow airport.
The futuristic transporters are already being used on tracks at the airport, but will be made roadworthy before being trialled by ‘invited’ users and then opened up to the public.
Greenwich, Bristol, Coventry and Milton Keynes will first see the pods launched as part of the £8m project, which is jointly funded by government agency Innovate UK and industry.
Previous designs, including one that looked like a milk float, were rejected until designers settled on the bulbous, state-of-the-art pod style, according to project bosses.
The roadworthy pods, which are set to be trialled for three months, are being manufactured by British companies Westfield Sportscars, Heathrow Enterprise and Oxbotica.
Up to six passengers will fit in each pod, with one steward needed at all times to slam on the brakes in case of an emergency.
Prof Nick Reed, one of the project’s leaders told the BBC: “[The trials] will tell us whether people trust and accept these vehicles and how they would work as part of the urban landscape.
“This vehicle has millions of miles under its belt and now we have to take it outside of the track and modify it for use on pavements.”
Similar automated vehicles are being developed by other companies including Google, Ford and Tesla, although these pods are set to be some of the UKs first.
Meanwhile, Swiss tech experts are set to launch self-driving nine-seater busses this year whilst a cutting-edge Dutch scheme has seen driverless shuttles tested on public roads.
Fancy an Autonomous / Pod Ride? Head to Greenwich
Three British companies are collaborating to bring automated "pods" to the streets of Greenwich, England, this summer.
Westfield Sportscar, Heathrow Enterprises, and Oxbotica are participating in the GATEway (Greenwich Automated Transport Environment) driverless car project. Together, they will adapt existing Ultra PODS—the tram-like vehicles operating in Heathrow Airport's Terminal 5—to navigate city streets without dedicated tracks.
Each company brings its own expertise to the project: Westfield covers design, manufacturing, and testing of the vehicles; Heathrow Enterprises is responsible for software engineering; and Oxbotica will deploy its autonomous control software.
The current set of Ultra PODS reach a top speed of about 25 mph and can carry up to six passengers, Engadget reported.
Set for the U.K. Smart Mobility Living Lab in Greenwich, the £8 million ($11 million) program will trial a series of different use cases for automated vehicles, including driverless shuttles, autonomous valet parking, and automated urban deliveries.
"Demonstrating autonomous pods in public operation around the Greenwich peninsular will be a huge step in determining how this technology interacts with both passengers and pedestrians," Oxbotica CEO Graeme Smith said in a statement.
Greenwich is one of four cities (along with Bristol, Milton Keynes, and Coventry) that won a £19 million competition to host driverless car trials, which aim to test public acceptance.
"If the trials prove successful, we expect these iconic vehicles to become a familiar sight in many cities around the world," said Nick Reed, GATEway technical director.
Britain has been eyeing driverless cars since July 2013, but the ability to test them was limited. In February 2015, the government announced plans to test autonomous vehicles on public roads last summer.
£20m boost for driverless cars technology
The government has announced £20 million worth of funding to develop the next generation of autonomous vehicles.
Eight new projects have been awarded £20m in funding to research and develop enhanced communication between vehicles and roadside infrastructure or urban information systems, including new ‘talking car technologies’.
The projects are the first to be funded from the government’s £100m Intelligent Mobility Fund. They range from developing autonomous shuttles to carry visually-impaired passengers using advanced sensors and control systems, to new simulation trials for autonomous pods to increase uptake and improve real-world trials.
Trials to test driverless cars on the streets are currently being worked on in Bristol, Coventry and Milton Keynes, and Greenwich. Autonomous vehicles are also being used in Heathrow to shuttle passengers, although these are currently on designated tracks.
Business Secretary Sajid Javid said: “Our cars of the future will be equipped with the technologies that will make getting from A to B safer, faster, and cleaner. They will alert drivers of accidents ahead and be able to receive information from their surroundings about hazards, increasing the safety of drivers, passengers and pedestrians.
“Britain is a world-leader in research and development in such innovative technologies which improve lives and create opportunity for all. That is why this government has protected the £6 billion science budget and is providing up to £20m for these projects.
Transport Secretary Patrick McLoughlin added: “These projects will help profoundly change the way we travel within years, transforming our roads by making travel a simpler experience for drivers, reducing accidents and helping traffic flow more smoothly. They will also bring great benefits to our society and the wider economy by opening up new routes for global investment.
“This is a landmark moment and will allow Britain to lead the way in the testing of connected and autonomous vehicles.”
TRL (Transport Research Laboratory) is part of a consortium of companies that will help position the UK as a world leader in automated and self-driving cars.
Led by Bosch, the MOVE_UK project benefits from a £5.5m grant awarded by InnovateUK and will see driverless technology trialled in real world conditions on roads in Greenwich, London.
Alongside TRL, UK project partners include Bosch, Jaguar Land Rover, Direct Line Group, The Floow and the Royal Borough of Greenwich. Together, the partners will see MOVE_UK accelerate the entry of automated, driverless car technologies to the UK market. The project will increase the rate of development and testing of these technologies at a lower cost to vehicle manufacturers.
During the three-year MOVE_UK project, driverless systems will be tested in the real world, providing large amounts of data that will be used to develop and improve the technology. This data will enable the development of new and faster ways of improving and demonstrating the safety of automated driving systems.
TRL will house and process the data captured, providing essential insight for future tests and informing any regulatory changes that will need to be made.
Rob Wallis, CEO of TRL, said: “TRL is building a strong, reputable portfolio of UK based projects in vehicle automation, and this is another great example of a ground-breaking project in this area. By creating a unique evidence base for automated driving systems, we will not only help to develop and speed up validation of these systems in the UK, but also guide future thinking around the development of virtual and physical testing approaches for years to come.”
Bosch, together with Jaguar Land Rover, will provide vehicles, technology and state-of-the-art design expertise to the project.
Direct Line Group’s contribution to the project will help to bridge the gap between the automotive and insurance industries by providing crucial dialogue and reassessing the risk landscape for automated cars.
The Floow’s telematics will allow the consortium to compare the behaviour of the vehicle to that of a human driver in the same real world environment.
The Royal Borough of Greenwich is the host local authority providing a smart city trial environment for the project. The borough is home to the UK’s Smart Mobility Living Lab – an open, real world, test environment for connected and automated vehicles.
The seven other collaborative R&D projects to receive funding are:
- UK Connected Intelligent Transport Environment (UKCITE): a project to create the most advanced environment for testing connected and autonomous vehicles. It involves equipping over 40 miles of urban roads, dual-carriageways and motorways with combinations of 3 “talking car technologies” and testing for a fourth, known as LTE-V. The project will establish how this technology can improve journeys; reduce traffic congestion; and provide entertainment and safety services through better connectivity. (Total project: £5.6 million; BIS funding: £3.4 million; duration: 30 months; consortium members: Visteon Engineering Services Limited, Jaguar Land Rover Ltd, Coventry City Council, Siemens PLC, Vodafone Group Services Ltd, Huawei Technologies (UK) Co Ltd, HORIBA MIRA Ltd, Coventry University, University of Warwick (WMG), Highways England Company Ltd.)
- Insight: a project to develop driverless shuttles with advanced sensors and control systems and trial them in city pedestrian areas, with a particular focus on improving urban accessibility for disabled and visually-impaired people. (£2.2 million; £1.5 million; 36 months; Westfield Sportscars Limited, Heathrow Enterprises Ltd, Fusion Processing Ltd, Creative Example Ltd, Conigital Ltd, Birmingham City University.)
- Tools for autonomous logistics operations and management: this project is a collaboration bringing together transport modellers and the computer games industry to develop new modelling and help improve the return on investment into Connected and Autonomous Vehicle fleets significantly. (£3.2 million; £2 million; 36 months; Immense Simulations Ltd, Improbable Ltd.)
- FLOURISH: this project will help develop innovative new tools to improve the understanding of user needs and expectations of connected and autonomous vehicles. It will be based in the Bristol City Region and will test capabilities in both urban and suburban networked environments. (£5.5 million; £3.7 million; 36 months; Atkins Limited, Age UK, Airbus Group Limited, React AI Ltd (Aiseedo), AXA UK plc, Bristol City Council, Imtech Traffic & Infra UK Limited, Office for Public Management Ltd, South Gloucestershire Council, Designability, Transport Systems Catapult, TSS – Transport Simulation Systems Ltd, University of Bristol, University of the West of England, Bristol
- INnovative Testing of Autonomous Control Techniques (INTACT): this project will reduce the cost of testing and evaluating autonomous control systems in a safe, repeatable, controlled and scientifically rigorous environment. (£1 million; £850k; 24 months; Richmond Design and Marketing Ltd, University of Warwick.)
- Pathway to Autonomous Commercial Vehicles: this project will develop an innovative solution to monitor key information from the vehicle and predict safety risks based on analytics. It will build on a prototype which monitors tyre pressures and temperatures in commercial vehicles, combined with always-on network connection. (£1.2 million; £900k; 24 months; Tructyre Fleet Management Ltd, University of Portsmouth, Satellite Applications Catapult, RL Automotive.)
- i-MOTORS – Intelligent Mobility for Future Cities Transport Systems: i-MOTORS will deliver a connected Vehicle to Anything (V2X) system via a mobile platform as a proof of concept. In addition, the project will develop hardware which will receive and analyse sensory data in real-time from multiple locations via online cloud technology to raise the standard of data-processing in the connected and autonomous driving industry.
Sunday, January 24, 2016
Driverless Cars and the Future of Parking
If you drive out to visit Disney's Epcot center in Orlando, Florida, you will arrive at one of the biggest parking lots in America. With room for 12,000 cars, it sprawls out over 7 million square feet—about the size of 122 football fields. If you look at the lot on Google Maps, you realize that it's nearly the size of Epcot center itself. Disney built one Epcot to hold the visitors. Then it built another to hold the cars.
Disney isn't alone in its expansive approach to parking. Parking is, after all, what cars do most of the time: The average automobile spends 95 percent of its time sitting in place. People buy cars because they need to move around, but the amount of time they actually do move around is tiny. So the cars are parked, and in multiple spaces: A car owner needs a spot near home, but also spots near other places he or she might go—the office, a shopping mall, Epcot.
A 2011 study at the University of California-Berkeley found that the United States has somewhere close to a billion parking spots. Since there are only 253 million passenger cars and light trucks in the country, that means we have roughly four times more parking spaces than vehicles. If you totaled up all the area devoted to parking, it'd be roughly 6,500 square miles, bigger than Connecticut.
Social critics often complain that the interstate highway system deformed the United States by encouraging sprawl. But the metastasizing of parking has had equally profound effects. On an aesthetic level, it makes cities grimly ugly. Economically, it is expensive to build. A study by the Sightline Institute found that at least 15 percent of the price of rent in Seattle stemmed from developers' costs for building parking.
Those costs are passed on to tenants whether they own a car or not (on top of any per space fee the landlord charges)—padding rent by an average of $246 a month in Seattle and $225 nationwide.
And worst of all may be the emissions that parking causes. Studies have found that anywhere from about 30 to 60 percent of the cars you see driving around a downtown core are just circling, looking for an open space to claim. (An IBM survey found that worldwide, urban drivers spend an average of 20 minutes per trip looking for parking.) When Donald Shoup, an urban-planning professor at the University of California-Los Angeles, examined just one small business area near his university—Westwood Village—he found that "cruising" for parking, as he dubs it, burns 47,000 gallons of gas and generates 730 tons of carbon dioxide a year. What's more, all that asphalt traps heat and raises the temperature of cities during the summer. Environmentally, aesthetically and economically, parking is a mess.
But for the first time in history, urban experts are excited about parking—because they can see the end in sight.
We are, they say, on the cusp of a new era, when cities can begin dramatically reducing the amount of parking spaces they offer. This shift is being driven by a one-two punch of social and technological change. On the social side, people are increasingly opting to live in urban centers, where they don't need—or want—to own a car. They're ride-sharing or using public transit instead.
And technologically, we're seeing the rapid emergence of self-driving cars. Google's models have traveled more than a million miles with almost no accidents, and experts expect that fully autonomous vehicles will hit the consumer market as early as a decade from now. Indeed, car technology is advancing so rapidly that it's causing legitimate economic concerns. Already, companies like Uber and Lyft are under fire for treating drivers as independent contractors, with far fewer rights and benefits than employees (see "Road Warrior"). And that disruption is nothing compared with what will happen once cars can drive themselves; millions of taxi, delivery and long-haul trucking jobs that traditionally have gone to new immigrants and low-education workers could vanish in a few years. Labor activists and economists are understandably alarmed at the prospect.
But at the level of urban design and the environment, self-driving cars could produce huge benefits. After all, if cars can drive themselves, fleets of them could scurry around picking people up and dropping them off, working with sleek, robotic efficiency. With perfect computerized knowledge of where potential riders were, they could pick up several people heading the same way, optimizing ride-sharing on the fly. One study suggests a single self-driving car could replace up to 12 regular vehicles. Indeed, many urbanists predict that fleets of robocars could become so reliable that many, many people would choose not to own automobiles, causing the amount of parking needed to drop through the floor.
[Related: What the World Will Look Like Without Drivers]
"Parking has been this sacred cow that we couldn't touch—and now we can touch it," says Gabe Klein, who has headed the transportation departments in Chicago and Washington, D.C. He sees enormous potential—all that paved-over space suddenly freed up for houses and schools, plazas and playgrounds, or just about anything. "All that parking could go away, and then what happens?" he asks. "You unlock a tremendous amount of value."
AMERICA BEGAN ITS love affair with parking in the 1940s and '50s, when car use exploded. Panicked city leaders realized they would soon run out of curb space, but they didn't want to discourage car ownership or build enough public transit. So instead they passed minimum parking requirements: If a developer wanted to erect a new office or apartment building, it had to build parking. For residences, typically two spots per household are required. And in general, cities calculated the highest peak amount of parking a location might need and demanded that developers build it.
Way back in the 1960s, UCLA's Shoup became alarmed by the massive growth of parking. As he saw it, the problem was that in most people's minds, the spaces seemed to be "free." When developers are forced to build parking, the cost is folded into the purchase price, be it a home, an office, or a restaurant. And when people don't pay to park at the curb (only a tiny fraction of curbside spots in the United States are metered), it's the city that pays to build and maintain that spot. These costs are passed down to consumers and taxpayers, but since they're never itemized, they're easy to ignore. In my neighborhood in Brooklyn, for example, housing prices are sky-high, but the city doesn't charge me to park on the street. When I tell this to Shoup, he points out that if it did charge me, the odds are high that I'd never have bought my car. When a city provides free parking, it's also economically unfair, since it's a subsidy available only to those who are wealthy enough to own cars.
"Parking is wildly mismanaged—it's probably our most inefficient use of resources in many ways," Shoup tells me. Indeed, minimum parking requirements usually force developers to build more parking than the market actually calls for. Sightline found that in greater Seattle, 37 percent of residential lots are empty at night—precisely when you'd expect residential parking spaces to be most used.
The deep irony is that cities rarely require developers to construct enough affordable housing, but they pass strict laws making sure vehicles can be adequately housed. "We don't force [developers] to build the right number of bedrooms for people! We just force them to build the right number of bedrooms for cars," says Jeffrey Tumlin, the principal and director of strategy for Nelson Nygaard, a parking consultancy.
To be fair to politicians, there's a long history of people freaking out if parking isn't plentiful. "Thinking about parking seems to take place in the reptilian cortex, the most primitive part of the brain responsible for making snap decisions about urgent fight-or-flight choices, such as how to avoid being eaten," as Shoup dryly wrote in his 2005 book, The High Cost of Free Parking.
Ultimately, he notes, parking is a self-reinforcing problem. Cities trained people to expect that parking would be plentiful and free, which encouraged them to drive everywhere—which made them demand more parking. Decades of perverse incentives cemented the automobile as the main way people get around. As the Census Bureau reported in 2005, fully 76.4 percent of U.S. workers who lived in the same city where they worked commuted to their jobs in a car, by themselves. Only 7.8 percent of them commuted by public transit. Parking, urban reformers fretted, seemed like an intractable problem.
At least, that's how the picture looked 10 years ago. But then something strange happened to our relationship with cars.
Jeff Kenworthy is a professor of sustainability at Curtin University in Australia, and for decades he has been collecting data on how people travel in major industrialized cities around the world. He's found that the pace at which people increase their use of cars has been slowing. In the '60s, car use grew by 42 percent. In the '80s, it grew by less—only 23 percent. Then, from 1995 to 2005, it went up by only 5 percent. In some cities car use actually declined, including London (down 1.2 percent), Atlanta (10.1 percent) and Houston (15.2 percent). Kenworthy says many cities are reaching "peak car use," and it's all downhill from here.
"The dominance of the car," he says, "is on the wane in many places."
Why? It's partly the price of gas, which rose dramatically in the early 2000s and has in many parts of the world stayed high since then. (Car insurance is historically high too.) But Kenworthy suspects it is also related to a concept known as the Marchetti Wall. Back in 1994, the Italian physicist Cesare Marchetti observed that throughout history—going back to ancient Rome—the majority of people disliked commuting more than one hour to work. If you're faced with a longer commute, you hit the Wall and rearrange your life, finding a new, more local job or moving closer to the office. In the 1990s and early 2000s, not only did use of public transit grow, but Kenworthy found that cities worldwide were becoming denser, in part because millennials weren't decamping for the suburbs (like their boomer parents did), and because seniors were moving back to urban cores, to enjoy the walkable life. As a society, we slammed into the Marchetti Wall and backed away.
True, this trend isn't necessarily set in stone. While the number of vehicle miles traveled per capita in the United States began declining in 2005, it began rising again in 2014. The dip might have been a result of the Great Recession and $4-per-gallon gas, says Constantine Samaras, a civil and environmental engineer at Carnegie Mellon University. The price of gas in the United States has since gone down, and "when the price is cheap, people are going to drive more."
But many experts argue that the urbanizing trend is likely to accelerate because millennials are a Marchetti generation—they're increasingly turning against the car. Research by the Frontier Group, a think tank that often publishes work on energy and transportation, found that the average annual number of miles driven by American 16- to 34-year-olds dropped 23 percent between 2001 and 2009, a pretty stunning fall. Meanwhile, millennials took 24 percent more bike rides and used more public transit. Indeed, they're much less likely than previous generations to even be able to drive: In 1983, some 87.3 percent of 19-year-olds nationwide had a driver's license. By 2010, only 69.5 percent of them did. And while you might suspect that the recession was at play, rates of driving are down even among young adults with high-paying jobs.
When millennials are polled, they're much more likely than their elders to say they try to actively minimize driving to avoid causing environmental damage. They're buying far fewer cars than their forebears did, which worries carmakers. Toyota USA President Jim Lentz said in a speech last year, "We have to face the growing reality that today young people don't seem to be as interested in cars as previous generations."
There is one trend of mobility that young people have embraced, though: on-demand car services like Uber and Lyft.
A year ago, Uber reported that its drivers were making 1 million trips per day; this past summer, the company told prospective investors that it was growing 300 percent year over year. Fully 70 percent of Uber's customers are under the age of 34, and 56 percent of them live in cities, as a survey by the market research firm Global Web Index found. Ride-hailing has big implications for weaning cities off their addiction to parking. The millennial generation is learning that it can have a car without needing to own or ever park one.
What's more, Uber is seeing especially rapid growth in its ride-sharing offering, Uber Pool, which matches travelers heading to roughly the same destination. In exchange for sharing a ride, the fare is at least 25 percent cheaper than a regular Uber fare. The company introduced the service in San Francisco a year ago, and already nearly 50 percent of all Uber rides in the city are pooled.
This fact stuns even Uber itself. "The adoption of ride-sharing is larger than anybody anticipated. The market is massive," says David Plouffe, the former Obama campaign manager who is now Uber's chief adviser and a board member, during an interview at the company's shiny headquarters in downtown San Francisco. "I don't think anyone who was around in the beginning suggested that the market would be this big. I mean, we have a good service, but clearly this is married up with how people want to live."
Uber, he says, is now launching a service aimed at ride-sharing for daily commutes. "So, I'm getting ready to go to work. I put my coffee mug in the sink. I turn on the app. I pick up my keys. Somebody three blocks away says, 'I'm going the same way,'" he says.
Carpooling, of course, has been touted for decades as a way to use cars more efficiently. But it never took off because it suffered from an information problem: There was no way to coordinate rides on the fly, no way to know whether someone four blocks away was heading in the same direction as you, right this instant. Safer just to drive yourself, right? And this gave birth to a welter of personal choices that seemed perfectly reasonable individually, but that together created a massive environmental and urban land use problem—with many of us heading off to work in the same direction and with cars that contained, statistically, only 1.13 people each.
That information problem is now gone. The smartphone has solved it. Equipped with GPS and mobile data, the mobile phone may ruin our concentration and erode our privacy at every turn, but it's remarkably good at one task: on-the-fly coordination. If the trend toward ride-sharing keeps accelerating, how might that change traffic and parking? When a group of MIT scientists crunched data on Boston-area commuting patterns, they found that if 50 percent of drivers shifted over to ride-sharing, it would reduce traffic congestion by 37 percent and decrease the number of vehicles on the road by 19 percent.
Tumlin, the parking consultant, is struck by the shift in the zeitgeist. He's 46 and says that "my generation was the last generation to believe that owning our own car would bring us freedom, autonomy, social status, sex." For today's young people, the mobile phone is a much more potent technology of autonomy and social status—and, in a neat twist, you can't use your phone while you're driving. They are rival activities, and the phone is winning. People want access to a car, but don't feel a need to own one, just as they've increasingly adopted streaming services instead of vinyl, CDs, or even MP3s.
"This conflation of auto ownership and personal identity," Tumlin concludes, "is permanently broken."
When the Google self-driving car first pulled out into a busy intersection, with convertibles racing past us, I stole a look over at the driving wheel. It was turning by itself, as if a ghost were piloting the vehicle. It was an unnerving sight, though the Google engineers riding along with me were by now quite blasé: These cars have already driven a total of 1.2 million miles and have been in only a tiny number of accidents. The computer guidance system, said the engineer sitting in the driver's seat—his hands folded in his lap—is a very cautious driver.
"Almost like a new person who's driving for the first month or so," he added. These cars can also sense far more than humans can. Another engineer riding shotgun held a laptop showing how our car "saw" the road with its laser, radar and camera vision: The screen looked like the wireframe of a video game, with yellow boxes for pedestrians, red boxes for cyclists and purple and green ones for other vehicles. The car could see not just what was ahead of us, but far off to the sides and behind us too.
"That's what makes computers more fun, that they can detect a million things at one time, whereas your average driver is probably only focused on that one thing," the engineer said with a grin. As if to prove the point, the car abruptly slowed down: It had detected a woman to our right drifting slightly into our lane.
Ten years ago, self-driving car prototypes could barely drive 10 miles across a relatively uncluttered desert. Now they're expertly weaving through traffic in Silicon Valley, Austin, and Pittsburgh. "The rate of progress," marveled the engineer, "is mind-blowing." They dropped me off at Google's headquarters, where I wandered up to a rooftop parking lot. There, Google's latest prototype—so new that journalists aren't allowed to ride in it—was tooling around: a cute, egg-shaped little pod that was about as big as a Smart Car, except it didn't even have a steering wheel.
How will self-driving cars change the way we get around? Many urban experts think the future of those egg-shaped cars isn't in private ownership. It's in fleet deployment. Certainly, that's what Uber believes; last year it set up a research lab in Pittsburgh specifically to develop its own self-driving cars. In the not-too-far-off future, CEO Travis Kalanick predicts, you could call for an Uber car and a self-driving robocar could zip up to whisk you away.
Unlike human drivers, robot cars wouldn't need to look up the route or the location of the nearest passenger, so they wouldn't waste time dithering, as humans do. Robot cars could also drive much more closely to one another, packing far more vehicles onto a street. (Computer scientist Peter Stone even created software that would let robot cars do away with traffic lights; instead of stopping at an intersection, they would simply weave around one another, navigating street corners nearly 10 times faster than cars do today.)
What's more, they'd never need to park. At the University of Texas-Austin, Kara Kockelman—a professor of transportation engineering—modeled the impact of autonomous ride-sharing vehicles and found that each one could replace up to a dozen regular cars. The robocars could drive all day long, stopping only to refuel or for maintenance; at night, when there was less demand, they could drive out to a remote parking spot on the outskirts of town. The upshot, Kockelman figures, is that if you shifted the entire city to autonomous cars, it would need a staggering 90 percent less parking than it needs today. It'd be speedy travel: In Kockelman's model, when people called for a car, one typically came along in about 20 seconds. It'd be profitable: When she spec'd out the cost of running an Uber-like fleet of robot cars, she calculated it would cost $70,000 to buy and deploy each vehicle, but that each would earn a 19 percent profit on investment every year. And rides would only be about $1 per mile, even if just a single passenger rode at a time—half as cheap as today's typical Austin cab fare.
"You could make the fleet smaller," she says, "and you can reduce parking in downtown." The streets would still be busy—crowded, even—with vehicles whizzing to and fro. It's just that they wouldn't need to park. It would be the taxi-ization of nearly all human mobility.
A city run on shared autonomous cars would likely have a dramatically lower environmental footprint. That's partly because you'd get rid of the "circling" that plagues urban traffic. But it's also because high-tech cars would be new—and, given that they'll probably emerge en masse about 10 years from now, they'd be electric. A model of city traffic published in Nature last July by Berkeley Lab scientist Jeffrey Greenblatt deduced that emissions would be 90 percent lower if cars were all autonomous and electric. And the truth is, it's easier for a fleet of robot cars to go electric than it is for individual car owners to do so. If I owned an electric car, I'd constantly be at risk for "range anxiety": the fear that my battery might die when I'm far from a charging station. But a robot fleet could optimize repowering, sending a car to pick up a traveler only when the car had enough juice to get to the traveler's destination, and taking low-battery cars out of service to recharge as needed.
"You could conceivably imagine a world in which you don't need to pave as much of the roadway," says James Anderson, a behavioral scientist at RAND who co-authored a report on autonomous cars in 2014. "If they're driving themselves, cars could precisely put themselves on four-meter-wide bits of pavement," leaving the rest of the road to some other purpose or surface, maybe grass. "You can imagine fairly utopian, far-off visions."
We won't know what's truly possible until there are lots of autonomous vehicles on the road. For all the success that Google, Stanford and Carnegie Mellon University have had with their robot cars, they've mostly been driven in mild climates. Nobody has figured out how to tackle snow, which tends to confuse today's computer vision systems. It's probably solvable, but precisely when—or when governments will be satisfied enough of self-driving cars' safety to approve them for sale—is anybody's guess.
But you don't need fully autonomous cars to get big reductions in parking. Already some cars can parallel park themselves. Carmakers could soon produce vehicles that you drive yourself but that, once you're at a parking lot, you send off to find a space by themselves. Since nobody would need to get in or out of them after they parked, they could position themselves as snugly together as Tetris bricks, fitting far more cars into our existing parking lots and garages. Achieve even this small feat of self-driving, and it could be possible to never build another piece of parking, says Samaras, the Carnegie Mellon engineer.
Some urban thinkers told me that 15 years from now, autonomous vehicles will have erased the need for up to 90 percent of our current lots. "There is more parking today in American cities than they will ever, ever need," Tumlin says. It'll vanish as human driving vanishes.
"Who will be the last human driver?" asks Samaras. "It'll probably be our grandkids."
What would a city look like if it suddenly needed 90 percent less parking?
A few cities have experimented with reclaiming road space. One of the biggest such projects was in Seoul, South Korea, in the early 2000s, when the municipal government tore up a 3.5-mile elevated highway that had covered the Cheonggyecheon River and transformed it into a public park. The effects on the city were immediate: In addition to encouraging a surge in tourism, the park cooled the surrounding area by 9 degrees Fahrenheit during the summer.
"Now they have this incredible green corridor with tons of space and hundreds of thousands of people using it," says Kenworthy. There had been 120,000 cars a day flowing through the area, and opponents of the project had claimed that all these cars would cram onto side streets instead. But car use went down. We often believe traffic is like a liquid; prevent it from going down one road, and it'll just flow down a nearby one. But in reality, Kenworthy says, traffic is more like a gas: "A gas compresses or expands based on how much space you give it."
New York City has seen similar experiments. Ex-Mayor Mike Bloomberg closed down several blocks of Times Square, turning them into well-trafficked pedestrian hangouts. The most famous reclaimed space is Manhattan's High Line, once a dilapidated elevated railway and now a verdant park that drew 6.2 million visitors in 2014 (2 million of whom were locals) and hosts live events. "It's a park, it's a cultural institution, it's a plaza, all put together," says Robert Hammond, who spearheaded the restoration project and now runs the nonprofit that tends it. He suspects the future of public parks is these sorts of "hybrid" spaces, built on reclaimed urban space.
When land in a city suddenly becomes freed up for new uses, it's called "infill." The downside of our love affair with cars is that on average we've asphalted over 31 percent of our commercial downtown cores with parking. But the upside, Shoup tells me, is massive potential infill. If we wean ourselves off the need to store cars, spots and lots could be converted into parks, schools, hospitals, housing. Better yet, it's property that is precisely where you'd want new development: downtown, inherently walkable. "The upside of the mess we've made," Shoup says, "is that we have a lot of land."
Take New York City, where there are roughly 102,000 public parking spaces below 60th Street—taking up roughly 18.4 million square feet, a space equal to about half of Central Park.
"San Francisco is going bananas for new housing, and Manhattan is always looking for space, and here we have this sitting in front of us," Samaras says. "That's what autonomous vehicles can do."
There are some big speed bumps on the road to a low-parking future, though. That's because most of these rosy projections assume self-driving cars are likely to be deployed en masse by ride-sharing firms that would use them with deep efficiency, offering such convenience and cheapness that we'd all ditch our personal vehicles.
But there's another route the future might take. Shannon McDonald, an architect and historian of American parking, recently got a glimpse of it. She flew to Baltimore to visit her brother, who picked her up in his new car. It included several self-piloting features; he showed her how it wouldn't let him steer accidentally into a neighboring lane on the highway, and when he got home, the car parallel parked itself. Such features might make self-driving cars so alluring that everyone wants one.
"What if they're all privately owned? You've got a driverless vehicle, and maybe you don't share it," McDonald tells me. If her brother and sister-in-law had a fully self-driving car, maybe they'd decide to go to New York to see theater. It's a crazy-long five-hour drive, but who cares? They could kick back. They would "ride all the way in and sleep in it all the way back," she says. If you can read, watch TV, work and do email, or catch up on sleep while your car steers, the sting goes out of commuting.
In this version of the future, self-driving cars could smash through the Marchetti Wall. They would unlock what's known as "induced demand"—prompting commutes of such lengths that they'd have been previously unfathomable. Or we might find people deciding they never need to park their cars because, hey, cars can circle on their own.
McDonald imagines a commuter going to work in his self-driving car: "Let's say he gets to the office, he gets dropped off at the front door. And he tells the car to go find its cheapest parking." Maybe it drives out to the far suburbs, to park for free on a side street. "He says, 'Okay, just go have fun today! Go drive around! Come back and get me at 5. Why not? It's cheaper!'" The problem of cruising could morph into a Monty Pythonesque parody of modern life: a street clogged with traffic, but all the cars are empty. In economic terms, this is called a "rebound effect": If you make something suddenly more efficient to do, people will do more of it.
Urban and traffic thinkers are divided about how serious these negative impacts could be. Many suspect the Marchetti Wall will remain in place. "We're unmoved by these arguments," says Berkeley Lab's Greenblatt. "Because seriously, most people are not going to sit in a car for hours a day." Others agree, pointing out that the generational shift away from owning a personal car isn't likely to dim. Most experts I spoke to said governments should set policies that make fleet-based ride-sharing more appealing than individual car ownership. The main lever here is "congestion pricing": A city could—as London already does—require drivers to pay extra fees to travel in the congested downtown areas unless they're in ride-shared vehicles. Nearly every expert I spoke to advocated some version of congestion pricing to prevent a rebound effect.
Others pointed out that personal ownership might well blur with fleet ownership. If someone owned a self-driving car, she might opt to make money off it by having it drive off to work for a fleet when she's at the office. Cities could also offer incentives to ride-sharing services that augment public transit, feeding people to major subway and rail lines. (This is already a trend: Uber reports that in some cities, one-third of its trips begin or end at a public-transit station.)
The bottom line is, if urban officials want to make sure these technologies benefit civic life, they need to start talking about them now. "If we want it to be sustainable, the city has to get involved in these services," says Tom Radulovich, executive director of Livable City, a nonprofit transit group. Cities could deploy their own fleets of subsidized self-driving cars—the next generation of public transit—aiming them particularly at the mobility disabled and underserved and low-income areas, where residents often lack the credit cards required by ride-sharing apps. They could commission vans that could pool more people than a car, providing a nice midpoint between personal vehicle ownership and a bus.
If cities leave self-driving cars entirely to the private sector, they court risk. When the usage of public transit grows or shrinks, the city knows immediately, and can adapt to what the public is demanding. But companies like Lyft and Uber are opaque, releasing very little information about their usage. This is already making it hard for San Francisco to plan for the future: Figuring out where to develop public transit hinges on understanding how people are moving themselves around using private-sector means. "We don't have the data to understand the market size and what's happening to it," says Timothy Papandreou, the city's director of strategic planning and policy for SFMTA.
As Radulovich points out, there's historical precedent for the government getting more deeply involved in regulating private ride-sharing. After all, today's public transit started out as a hodgepodge of private systems—a bus line here, a streetcar there—that slowly merged into one large system. "Public transit went through this—it was venture funded, but then it became public." That reverse privatization is unlikely to happen again, but cities could ensure the system serves civic needs by using carrots and sticks: incentivize people to use ride-sharing but require that ride-sharing firms share their data.
Gabe Klein argues that good deals can serve both the city and the private sector. When he ran the transportation system in Washington, D.C., Klein—who'd previously worked for Zipcar—created a new policy: Zipcar would be allowed to park its cars for free in some curbside city spots. It was controversial: giving away a public resource to a private firm? But Klein argued that because a single Zipcar is used by many people and driven far more often than a regular single-owner car, each would take cars off the road. Klein also got D.C. to charge more for on-street parking, again nudging people away from owning private cars. In the ensuing years (which also saw the rise of the ride-sharing apps), D.C. saw 6 percent fewer registrations for cars, even as the population increased by 3 percent.
Obviously, cities should get cracking on their plans for the self-driving future. But are there things they can do right now to reduce the amount of parking and driving?
Shoup recommends that cities apply something like Uber's infamous surge pricing to parking: If a block tends to be full of parked cars at a particular time of day, the city should charge more, and if the demand is lower, it should charge less. The goal, Shoup says, is to price parking so that there are always one or two spots open on a block. Achieve that, and presto: A city could get rid of circling, since drivers could always quickly find a spot. Emissions and traffic would go down, while higher meter fees would encourage use of public transit.
Would dynamic pricing actually work?
In 2011, San Francisco decided to find out. In several areas of downtown, it set up new high-tech meters and sensors in the ground that told the city how busy these blocks and city parking lots were from morning to noon, from noon to 3 p.m., and from 3 p.m. to the evening. Every few months, the city examined the data and adjusted the price for each time segment of each block or lot up or down. Over the next two years, the city shifted parking costs upward on 37 percent of the time segments per blocks or lots, while at another 37 percent, the prices dropped. (The price of the others fluctuated.) It turned out that the hottest demand for parking was between noon and 3 p.m.
The new pricing scheme had precisely the effect the city hoped it would. Blocks that were previously jammed all day now typically had one spot open. Overall, driving in the pilot areas went down by about 2,400 miles per day—and circling plummeted by 50 percent. That helped reduce greenhouse gas emissions by 30 percent. (In comparison, areas in the city that weren't in this pilot study saw their emissions go down by only 6 percent.) Meanwhile, drivers reported that it took them 43 percent less time to find parking. And the program was even profitable: The city took in $3.3 million more at the meters, even as it lost $500,000 as parking citations decreased.
"Seeing the circling go down was one of the nicest findings," said Tom Maguire, director of Sustainable Streets for the city's Municipal Transportation Agency, when I visited him in his downtown office. "The circling hurts everybody: air quality, greenhouse gas, collisions, making the streets much less pleasant." He was also happy to put some meat on Shoup's arguments against free parking. "If there's one takeaway, it's that the theory is true: If you raise the price, you have a little less parking demand. Until we did something on the scale of almost the entire downtown of San Francisco plus seven other neighborhoods, I don't think it had been proven that the theory was true."
So far, alas, few cities are following San Francisco's lead. People—especially merchants—tend to holler when a city starts charging for parking. Three years ago, Ellicott City, a historic town in Maryland, installed smart meters on its main drag, only to have so many merchants complain that the city soon tore them out.
Shoup thinks cities need to be politically savvy to get citizens on board. One way, he says, is to engineer the meters to provide a hyperlocal benefit—plow some of the profits a meter generates back into sprucing up the very street on which the meter sits. Ventura County in California installed smart meters that were connected by wifi to the city, and then used those meters to broadcast free wifi to locals. It was an immediate hit.
But the central policy that can discourage the growth of parking is to eliminate minimum parking requirements. Take Los Angeles, which used to force developers to build two parking spots for every new unit of housing, hampering redevelopment in the downtown core. In 1999, the city eased the rules, and in a short time, developers started renovating the old buildings, providing an average of only 1.3 parking spots per unit. Buyers didn't care: They still bought the housing. The market, as Shoup observes, is willing to cope. Build less parking, and people will find other ways to get around.
A lower-parking future could be downright lovely, judging by a glimpse I recently got of it. I was walking through the Mission District of San Francisco when I came across a curious sight: two curbside parking spots that had been transformed into a tiny public "parklet." Built out of huge, curved pieces of wood, it looked like a ship beached on the side of the road. Two young men sat on the benches having a business meeting. Across the street was another parklet, where thick desert vegetation—some clipped to resemble a triceratops—spilled out in front of a private residence.
Founded five years ago—and since emulated by cities ranging from London to Ames, Iowa—San Francisco's parklet program allows a property owner or business to apply to transform their storefront parking spots into a wee little plaza. There are now scores of parklets throughout San Francisco, including a particularly fascinating cluster of nine between 20th and 24th streets on Valencia Street. As I toured the strip, it gave me a vision of how remarkably a city could evolve: Imagine if 90 percent of all curbside parking spots were turned into strips of public parks, filled with greenery, urban gardening, and people relaxing.
They are oddly peaceful places. A few blocks down the strip at another parklet with a rainwater catchment exhibit, I found Nicole Hubman, a 30-year-old who was sitting and reading, waiting for her yoga class across the street. It turns out that Hubman's life is a study in the massive changes already underway in our relationship to driving. She used to live in Boston, where her commute was an hour and a half each day. She hit her own Marchetti Wall, and it made her miserable. So when she moved to San Francisco, she decided to get around on public transit.
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