terça-feira, 22 de setembro de 2026


RALLY DAKAR 2027


Toyota DKR GR FC Hilux Dakar 2027

At the upcoming Dakar Rally, Toyota and its racing division, Gazoo Racing, will field an unusual sports prototype—a fuel-cell vehicle currently being fine-tuned in Belgium using the chassis of a Hilux pickup.

GAZOO Racing will enter the DKR GR FC Hilux, a fuel cell electric vehicle (FCEV), in the 2027 Dakar Rally as part of its commitment to making ever-better motorsports-bred cars.

The project represents a new challenge to demonstrate hydrogen fuel cell technology in the demanding conditions of the Dakar Rally. Based on the DKR GR Hilux, which has already proven itself in Dakar’s top category, the DKR GR FC Hilux replaces its petrol engine with Toyota’s fuel cell system. It emits no CO₂ while driving, with water as its only tailpipe emission.

The hostile Dakar environment, characterised by high temperatures, rough terrain and long stages, provides an ideal proving ground for fuel cell technology. To deliver high performance safely and reliably in these conditions, the project will focus on fuel cell downsizing, optimum cooling, durability and energy management.

Lessons learned from developing and operating the DKR GR FC Hilux in one of the world’s toughest motorsport environments will contribute to the wider application of fuel cell technology in passenger cars, trucks, buses, trains, marine applications, race cars and stationary power generators. Engineers involved in the project will also develop problem-solving skills through hands-on, on-site experience in this high-pressure environment, supporting their future contributions to vehicle development.

Testing and tuning of the FCEV powertrain and its software, together with vehicle build-up, have commenced in Belgium. A test programme will be conducted progressively in the coming months.

The Dakar Rally will be held in Saudi Arabia from January 1 to January 15, 2027, with King Abdullah Economic City serving as the starting and finishing point. This gruelling course pushes both vehicles and drivers to their limits as it winds its way through sand dunes, rocky unpaved roads, and dry riverbeds.

The DKR GR FC Hilux will compete in the Dakar Future Mission 1000 category, which is dedicated to experimental vehicles and the demonstration of new technologies. The category follows a unique competitive format, with crews of drivers and navigators racing against the clock over 13 stages comprising a total of 1,000 competitive kilometres. The DKR GR FC Hilux aims to prove the performance, safety and reliability of fuel cell technology during these stages.

Participation in Dakar Future Mission 1000 represents another step in Toyota’s efforts to achieve carbon neutrality in motorsports and expand the potential of hydrogen-related technologies.

Toyota’s efforts to utilise hydrogen-related technologies in motorsports began in 2021, when Rookie Racing entered the Japanese Super Taikyu series with the hydrogen-engined ORC ROOKIE Corolla H2 Concept.

In rallying, the potential of hydrogen engines was demonstrated in 2022, when the GR Yaris H2 completed demonstration runs at the Ypres Rally in Belgium, a round of the FIA World Rally Championship. Further development was showcased through demonstration runs by the GR Yaris Rally2 H2 Concept at Rally Finland in 2025 and Rallye Monte-Carlo in 2026.

In the Dakar Rally, in 2024, HySE-X1, a hydrogen-engine buggy, completed the Dakar Future Mission 1000, followed in 2025 by the evolved HySE-X2. Both vehicles were entered by HySE (Hydrogen Small mobility & Engine technology Association), a technical research association in which Toyota Motor Corporation participates.

In circuit racing, the 2026 24 Hours of Le Mans – a round of the FIA World Endurance Championship – featured demonstration laps by the TR LH2 Racing Prototype, which is powered by a liquid hydrogen engine and based on the TR010 HYBRID race car. In addition, a hydrogen-engined GR Corolla equipped with superconducting technology became the first vehicle of its kind in the world to complete a race in the 2026 Super Taikyu series.

The 2027 Dakar Future Mission 1000 will mark the first time Toyota has combined hydrogen and fuel cell technology in its motorsport activities.

The Japanese manufacturer hopes to use the Dakar Rally to test its new powertrain system under particularly extreme conditions. The 2027 Dakar Rally will take place from January 1 to January 15 of next year in Saudi Arabia.

The prototype, named the DKR GR FC Hilux, is based on the chassis of a pickup truck that has already competed in the iconic rally. The fuel-cell system is expected to be optimized for the rally's harsh conditions—making it more compact and robust—while also improving cooling and power distribution. Engineers plan to actively apply the experience gained during preparations and the race itself to the development of commercial hydrogen vehicles.

This unusual race car will compete in a special category known as "Future Mission 1000." This category is open to experimental prototypes built using new technologies. The rally route for this class will be significantly shortened: instead of the standard 5,300-kilometer race distance, the hydrogen-powered Hilux will cover just 1,000 kilometers, split across 13 stages.

 

by Autonews


TECH


SmartBay: The robot that changes and balances tires in minutes with (almost) no human hands

Automation and artificial intelligence are being applied to an increasing number of aspects within the automotive sector, ranging from manufacturing to the vehicles themselves and their maintenance. Eventually, tire changes requiring human intervention could become a thing of the past.

The American company Automated Tire has introduced SmartBay—an AI-powered robot capable of changing car tires without removing the wheel, while also ensuring subsequent balancing. It not only requires fewer human operators (just one for every three machines) but also enhances safety by eliminating the need for humans to handle the wheels and tires, while delivering greater precision and consistency.

The tech firm states that by eliminating minor, time-consuming tasks, the workflow speeds up—reducing the process time from 45 to 30 minutes. It promises the capacity to service 24 tires per hour. According to Fox News, this solution is designed to be leased to dealerships, maintenance centers, and specialized tire shops.

Andy Chalofsky, CEO of Automated Tire, noted that the entire process requires only light supervision from an operator, while the robot handles the "heavy lifting." The robot utilizes artificial intelligence and is capable of learning, allowing it to adapt to the varying characteristics and conditions of different vehicles.

The executive describes SmartBay as "the world's first patented system that changes tires without removing the wheel from the vehicle." It simply dismounts the tire from the rim—without taking off the entire wheel—after lifting the car on a standard lift. Afterward, the entire wheel assembly is balanced using Automated Tire's own technology: Real Force Balance.

Chalofsky explained: "Anyone who has spent time in a tire shop knows how hectic a day can get: a technician takes leave, the first car of the morning takes longer than expected, and subsequent appointments throw the whole schedule off." There are pros... and cons... If adopted on a mass scale, a robot that changes tires with minimal human intervention could allow companies to serve more customers—and thus earn more money—while requiring less manpower. This could be beneficial for cutting labor costs and addressing technician shortages. However, it could also have the unintended effect of threatening to eliminate tasks currently performed by humans. For car owners getting their tires changed, there is a potential time-saving benefit.

With the SmartBay platform, automotive dealerships and tire and service centers can shift from manual, variable service processes to a technology-first system that understands, adapts and executes complex physical tasks in real time. SmartBay uses advanced robotics, computer vision, and machine learning to generate the proper execution for each vehicle with precision, rather than relying on pre-programmed routines, which require manual intervention for outliers and real-world variables. 

"While the auto industry has made great strides with advanced technologies over recent decades, automotive service bays have seen little innovation to match," said Andy Chalofsky, Chief Executive Officer, Automated Tire, Inc. "Most notably, electric vehicles wear through tires up to 30% faster. The proliferation of EVs creates significantly more tire service opportunities, but tire technician jobs are dirty, injury-prone, and difficult to fill. Our SmartBay platform gives modern shops a meaningful solution to turn a dangerous, manual chore into a high-tech, automated process that matches the sophistication of the vehicles being serviced."

The proprietary SmartBay platform:

-Enables a single technician to manage up to three service bays simultaneously, cutting the time required for a full tire service roughly in half, to as little as 30 minutes

-Works across most consumer vehicles, performing a unique execution for each vehicle, managing real-world variability without human intervention

-Minimizes material waste and delivers a superior ride quality with its precision wheel-weight tool that dispenses the exact amount of weight composite required for the industry's most accurate balance

And, fits entirely within a standard 12-foot service bay, maintaining full bay functionality and flexibility across other services when needed.

SmartBay addresses three primary concerns in the automotive service industry: an ongoing and increasing labor shortage; automation of tire changes, the most injury-prone aspect of routine automotive service; and increasing service bay throughput by significantly reducing the time required for tire changes.

According to a report from the National Automotive Dealers Association (NADA), the industry faces a shortage of at least 37,000 new technicians annually, as seasoned technicians retire and fewer young professionals enter the trade. This shortage leaves shop owners trapped in a cycle of understaffing and expensive retraining. That perpetual cycle worsens as high turnover leads to potentially inconsistent service quality and even more grueling wait times that frustrate customers and compress profit margins.

How SmartBay works...Once a vehicle is positioned, the system automatically initiates inspection, identifying tire and wheel conditions while capturing diagnostic data. The robotic system then executes the tire change and wheel balancing process, removing and reinstalling tires with consistent accuracy while simultaneously calculating and applying precise wheel weights to ensure optimal balance.

Throughout the process, SmartBay continuously collects and analyzes data, generating real-time insights and customer-facing reports while optimizing each step for efficiency. By combining automated inspection, tire handling, balancing, and data intelligence into a single seamless workflow, SmartBay reduces manual intervention, increases throughput, and delivers faster, more consistent service outcomes.


by Autonews

segunda-feira, 21 de setembro de 2026


AUTONEWS


Real-world EV data reveal how uneven cell aging shortens battery lifespan

Electric vehicles (EVs), including cars, buses and trains, could significantly reduce the substantial greenhouse gas emissions produced by the transportation sector. These vehicles' performance and reliability over time, however, depend largely on the batteries used to power them.

Most current EVs are powered by packs of lithium-ion battery cells. While battery manufacturers try to ensure that these cells are as similar as possible, they sometimes differ in capacity (i.e., how much electric charge they can hold) and resistance (i.e., the extent to which they oppose the flow of electric current).

These differences between cells in the same pack, also referred to as cell-to-cell inconsistencies, can increase as batteries are repeatedly charged and discharged. This phenomenon can gradually hinder the overall performance of batteries, reducing the distance that EVs can drive before their batteries need to be recharged.

Researchers at Chalmers University of Technology, the Chinese Academy of Sciences, the Beijing Institute of Technology and Zeekr Technology Europe recently analyzed battery data recorded from electric vehicles in real-world operating conditions to further investigate how cell-to-cell inconsistencies affect the performance of EVs over time.

Their findings, published in a paper in Nature Energy, suggest that differences between cells do impair the overall capacity and useful life of the battery packs powering both cars and buses.

"An electric vehicle battery pack contains many cells that must work together, but these cells do not remain identical as they age," Changfu Zou, co-author of the paper, told Tech Xplore. "In a series-connected pack, its performance can ultimately be limited by its weakest cell, much like a chain is limited by its weakest link. This question grew naturally from our group's long-term work on battery management and reconfigurable batteries."

Cell-to-cell inconsistencies have been widely investigated in the past, primarily in laboratory settings. Some energy engineers have also developed strategies designed to balance the performance of different cells in a pack and reconfigurable architectures that allow engineers to alter the electrical connections between cells while they are operating.

While some of these strategies have achieved promising results, the long-term impact of cell-to-cell inconsistencies on the performance of EVs has rarely been explored using data collected from actual vehicles.

"For me, knowing that the problem exists was not enough," Zou said. "We wanted to understand how much battery health, lifetime, power capability and lifetime energy utilization are actually lost over years of driving."

EV fleet data generation and preprocessing workflow. Credit: Nature Energy (2026)

Tracking EV battery data under real-world conditions...Zou and his colleagues analyzed operational data collected from two real-world EV fleets. These included 116 passenger cars powered by NMC batteries and 17 buses powered by LFP batteries.

NMC and LFP are two of the leading lithium-ion battery chemistries on the market today. NMC batteries have cathodes made from nickel, manganese and cobalt, while LFP batteries have cathodes made from lithium iron phosphate.

The operational data they analyzed were collected over more than three years of regular vehicle operation. Some of the vehicles had traveled up to 300,000 kilometers (186,000 miles).

"We selected suitable charging periods to estimate the capacity and internal resistance of individual cells," Zou said. "Capacity tells us how much energy a cell can still store, while resistance is closely related to its ability to deliver power. One of the main challenges was separating actual aging from apparent changes caused by operating conditions such as temperature, current and state of charge."

To compare the cells under the same reference conditions, the researchers also analyzed the data using machine learning models. They introduced six key measures that allowed them to quantify how cell inconsistencies affected the overall performance of a battery pack.

"What surprised me most was not that cell inconsistency matters, but how large its accumulated effect becomes over the life of a vehicle," Zou said. "Across the two fleets, it shortened battery pack lifetime by approximately 18–23% and reduced power capability by around 13–15%. By the time the packs reached retirement, around one-fifth of their potential lifetime energy resources remained unused in the passenger cars, and more than one-quarter remained unused in the buses."

The results of the team's analyses do not mean that 19% or 27% of the batteries' energy was lost on every car and bus journey, respectively. Instead, they suggest that healthier cells still have usable capacity and a substantial lifetime when the weakest cells start limiting the performance of a whole pack.

"We also found that state-of-charge imbalance generally reduced usable charge capacity by less than 2%," Zou said. "The larger problem was that cells aged at different rates. For me, the clearest message is that battery management should not only keep cells equally charged but also try to keep them aging more uniformly."

Guiding the advancement of EV batteries...The results of this study confirm that cell-to-cell inconsistencies can limit the performance and lifetime of two types of lithium-ion batteries used in current EVs. In the future, they could inspire further efforts aimed at developing more uniform and durable rechargeable batteries for EVs.

"Our findings provide quantitative support for improving manufacturing consistency, cell selection and grouping, thermal management, balancing and cell-level monitoring," Zou said. "They could also help determine when more advanced solutions, such as reconfigurable battery systems, are worth their additional cost and complexity."

The researchers hope that their efforts will inspire other research teams to assess the performance of EV batteries in real-world settings. As part of their next studies, they plan to assess the potential of various strategies for mitigating the effects of cell-to-cell inconsistencies.

"For our research group at Chalmers University of Technology, the next step will be to move from measuring the problem to actively mitigating it," Zou added. "One direction I find particularly promising is reconfigurable battery systems. These systems can adjust how individual cells or cell groups are used according to their states and predicted lifetime. We are already working along this path."

Zou and his colleagues recently published another paper in Nature Communications, in which they quantified the extent to which dynamic reconfiguration could extend the life of batteries and reduce their lifetime costs. In addition, they published a perspective article in Joule outlining how AC-native battery architectures could improve cell-level monitoring, energy routing and fault isolation.


---Written for you by our author Ingrid Fadelli, edited by Sadie Harley, and fact-checked and reviewed by Robert Egan—this article is the result of careful human work---

 

NISSAN


2027 Nissan Rogue Hybrid

The new 2027 Nissan Rogue Hybrid has debuted for the U.S. market, and it’s one of the automaker’s most important vehicles, central to its growth in America. A regular hybrid would already be a big deal, but this one is special, utilizing Nissan’s e-Power technology. That means the combustion engine under the hood never drives the wheels directly, instead being used to charge a battery that powers a pair of electric motors, one on each axle. This, says Nissan, has the benefits of quieter, smoother, more responsive driving with no need to charge the battery. Basically, it’s like driving an EV without the infrastructure constraints and inconveniences of an all-electric vehicle.

The 2027 Nissan Rogue Hybrid is exclusively availabl as a dual-motor, all-wheel-drive compact crossover, and pricing starts a $35,490 for the base SV model (excluding a destination and handling fee of $1,575). One step up is the SV AWD with SV Premium Package, starting at $37,590, followed by the SR AWD at $37,490. Then there’s the SR AWD with SR Technology Package at $41,490, with the final model in the range, the Platinum AWD, starting at $43,490. However, if you want a hybrid Nissan Rogue as soon as possible, you’ll have to opt for the SR AWD with SR Technology Package, as that is expected to be available from the fall of 2026, while all the other trims are scheduled to reach dealership floors in early 2027.

By comparison, the Toyota RAV4 Hybrid is priced at $31,900 for 2026, excluding a destination charge of $1,450. The cheaper pricing can be attributed to the simpler powertrain; the RAV4 hybrid can be had with a front-wheel-drive setup. A more direct comparison is the cheapest AWD model, the RAV4 Hybrid LE AWD, which starts at $33,300. Again, that’s still cheaper than the Rogue Hybrid, but 2027 RAV4 pricing may see an increase.

2027 Nissan Rogue Hybrid standard features impress...Under the hood of the 2027 Nissan Rogue Hybrid is a 1.5-liter turbocharged engine designed to operate as quietly and smoothly as possible, and combined with the two electric motors, total combined system output is 225 horsepower. For the record, the RAV4 Hybrid makes *one* horsepower more in FWD form, and its AWD trims make 236 ponies. More important than performance is efficiency, and Nissan estimates figures of 40/36/38 mpg on the EPA’s city/highway/combined cycles. Again, the Toyota is better, returning figures of 47/40/43 and 46/39/42 mpg for its FWD and AWD trims, respectively.

Inside, the Rogue Hybrid comes with a 12.3-inch infotainment display as standard, with a 14.3-inch setup featuring Google built-in and Google Gemini optional on the SR trim and standard on the Platinum. Happily, plenty of physical switchgear remains, albeit in a dull plastic console. Still, we’d rather have cheap plastic and physical buttons than cheap screens that attract dust and fingerprints and force one to look away from the road. Wireless device charging is standard, as is ProPILOT Assist, automatic emergency braking, lane departure warning and lane keep assist, with Auto Lane Change and Hands-Of Traffic Jam support available. Not bad for just over $35k.


Autonews


HONDA


The new Honda CB750 Hornet is now even more technologically advanced

The Honda CB750 Hornet—whose technical specifications can be found at this link—delivers over 90 hp and offers performance that is more than sufficient for the road, even allowing for a sporty riding style. Honda conceived the launch of this middleweight Hornet as a break from the segment's established norms, offering a motorcycle that was both more powerful and more accessible; its success was immediate.

The key to this success was a new-generation engine featuring advanced performance and electronics—yet simple mechanics—paired with a chassis free of excess, both in terms of architecture and components. Details such as the single-overhead-cam (SOHC) valvetrain, a tubular steel frame that uses the engine as a structural element for rigidity, and a narrow rear wheel with a 160mm tire demonstrate the effort to keep costs down without sacrificing performance or effectiveness.

The latest technological update is the electronic clutch system (E-Clutch), introduced last year on the 650 series and now extended to the CB500 and CB750 Hornets, as well as other models like the Transalp. This electronically controlled mechanism engages the clutch automatically. It allows the rider to start moving, shift gears, and even stop the motorcycle without using the clutch lever, which remains in place. Gear changes are still performed using the foot pedal.

The Hornet had already undergone some changes compared to the initial model, though these were relatively minor: a new LED headlight assembly; a left-hand handlebar switch featuring a joystick-style control to facilitate navigation of the digital display and instrument panel menus; and, finally, modifications required to meet Euro 5+ standards, primarily regarding fuel injection. In terms of electronics, it remains very well-equipped; beyond traction control, engine braking control, and wheelie control, these features can be adjusted and saved into two custom modes to suit different conditions. In the middleweight naked bike segment—where most competitors are models that have been around for years—an electronic system of this caliber is not exactly common.

The CB750 Hornet boasts a truly remarkable engine with excellent power and responsiveness, especially for its class, where bikes typically offer lower performance. However, its performance could be enhanced with shorter gearing. In sixth gear, the CB750 is capable of reaching 250 km/h. Given that its top speed in our tests was 206 km/h, adding a few teeth to the rear sprocket could improve mid-range acceleration. Fuel consumption would rise slightly, but for most riders, that is an acceptable trade-off.

The bike's chassis justifies its very attractive price point. While the frame itself draws no criticism—partly because the engine acts as a structural member—there are components, such as the suspension, that lack adjustability beyond rear preload. They perform well in daily riding, even when pushed hard, though they can feel a bit soft in certain conditions; a touch more compression damping at both ends would be welcome.

Class-leading power-to-weight ratio...The CB750 Hornet’s parallel-twin engine boosts intake efficiency, while supersport-derived cylinder technology reduces friction. Delivering 67.5 kW at 9,500 rpm and 75 Nm at 7,250 rpm, the engine pulls strongly through the mid-range with an exhilarating surge in revs. Twist the throttle for smooth take-offs, seamless low-speed operation, and uncompromising power. With so much performance packed into such a lightweight chassis, there’s only one thing to do: hold on and enjoy the ride.

Furthermore, equipping the bike with a 160mm rear tire instead of a 180mm one might reduce grip for some riders—specifically those who ride it like a superbike. However, with the Bridgestone Battlax Hypersport S23 tires, the reality is that we experienced absolutely no issues regarding grip, agility, or precision.

Ultimately, while this bike stands out in its category for its power and top-tier electronics, it does not aim to be the sportiest model in the segment, but rather the most versatile. The engine is capable of handling whatever you want to do, from relaxed city riding to long-distance trips with good range—all without annoying vibrations and at speeds that offer the wind protection typical of a naked bike (or even more, if you wish).

The riding position is quite relaxed, giving you plenty of room to move around. There are even genuine accessories available for carrying luggage. You can connect your smartphone to the instrument panel to receive messages, use GPS, or listen to music while riding. Now, with the electronic clutch system (E-Clutch), it’s even easier, as you can completely forget about using the clutch lever.

The instrument panel warns you to downshift to prevent the engine from running at too low revs, as although it will never stop, you can cause excessive wheel slip, especially if you forget to downshift to first gear when stopping. The truth is that this motorcycle competes in a very fierce market segment, with many competitors, some of them established for years, and it needs to be versatile, as they are motorcycles for daily use.

This is the great advantage of Honda: it manages to be efficient in everything thanks to its great engine, the well-known ease of riding of the brand's motorcycles and also due to the low maintenance cost, which barely exceeds 8,000 euros, with its special transmission system, a fundamental advantage in this type of motorcycle.

 

Autonews

domingo, 20 de setembro de 2026


AUTONEWS


Keyless entry? Why your car might be vulnerable to theft

An increasing number of cars are equipped with keyless technology, a feature that is becoming widespread and appearing in more affordable models. While security has improved, not all vehicles are immune to vulnerabilities.

In short, "keyless" means exactly that—no physical key is required. You do not need to insert a key, remote, or card into a lock to open the vehicle; simply having the device nearby or inside the car is sufficient. When you walk away, the car locks automatically.

There is also no traditional ignition slot; the engine typically starts with the push of a button. The technology relies on radio waves and unique codes.

Naturally, this makes such systems potentially more vulnerable to silent theft than traditional key systems. With the right equipment and proximity to the key, a thief can amplify the signal to unlock and start the vehicle—according to the ADAC, one of Europe's largest automobile clubs.

Over the past decade, the club has tested 850 cars with keyless technology. It concluded that while 70 percent offer better theft protection, many remain vulnerable to attacks.

The use of Ultra-Wideband (UWB) chips—leveraging digital radio technology—has bolstered security in various models, preventing illicit entry even when signal extenders (as tested by the ADAC) are used. However, the club notes that its tests reveal "many vehicles can still be easily opened and stolen."

The automobile club found a lack of protection against keyless system exploits across several brands—ranging from the Stellantis Group (such as Alfa Romeo, DS, Fiat, and Opel) to Tesla, as well as BYD, Alpine, and Honda. Conversely, security improvements were observed in vehicles from manufacturers like Jaguar Land Rover and the Volkswagen Group (including brands such as Audi, Seat, Skoda, and Volkswagen). One of the security measures implemented by some manufacturers is a motion sensor that allows the radio signal to be deactivated after a certain period of inactivity. However, the ADAC warns that it is still possible to intercept the signal while it is active, meaning this is not the most robust measure.

Keyless entry and ignition systems began to appear in production in the late 1990s and early 2000s, and were initially available only on luxury models and other high-end vehicles. Since then, remote/passive keyless entry (RKE/PKE) features have become standard equipment on the vast majority of vehicles sold.

The popularity and convenience of keyless entry technology are indisputable. However, like many other technology-driven advancements, RKE/PKE systems are susceptible to attacks from hackers – and in this case – car thieves. 

As car theft continues to surge, keyless entry security has become a priority for vehicle manufacturers (OEMs) and automotive cyber security experts are working to find ways to mitigate this threat. This post examines the nature and evolution of RKE/PKE attacks, why these technologies are potentially vulnerable to hackers, as well as the measures OEMs can take to mitigate RF attacks and strengthen the overall security of their vehicle fleets.

Remote Keyless Entry (RKE) Systems and Theft Vulnerabilities...Remote keyless entry refers to entering the car without using a physical key (e.g., using a door keypad or fob). The first RKE key fob used a coded pulse signal generator and a battery-powered infra-red radiation emitter. It was configured to transmit a specific signal, and the car was programmed to respond to that signal. 

The replay attack...Taking advantage of this unprotected signal, hackers devised the “classic” replay attack, which uses a device to record and transmit at the same IR frequency as the key fob. When the driver presses the unlock button, the attacker records this signal and can then replay it at a later time to unlock the doors. Note that this hack can only work if the key fob uses the same unlock signal each time the unlock button is pressed.

To prevent such an attack, a rolling code field was introduced into the message sent from the fob to the car to make sure the unlock signal does not repeat. The car and the key fob share two code sequences – one for unlock and one for lock. For example, Xn would be the nth rolling code for unlock while Yn would be the nth rolling code for lock. All sequences are defined using a Cryptographically Secure Pseudorandom Number Generator (CSPRNG). When pressing the unlock button for the nth time, the key fob transmits code Xn. The car then compares the received rolling code with the expected rolling code, unlocking or locking the car accordingly.

The next wave of RKE attacks: The roll jam attack vulnerability...This security improvement triggered a new wave of “roll jam” attacks, which were designed to bypass these rolling codes. Roll jam attacks record the rolling codes and jam the RF signal from the key fob, preventing it from reaching the car. This attack scenario consists of the following steps: 

The driver presses the unlock button, transmitting X1 which is the first code to unlock the car. The attacker jams the signal and learns the value of X1. The car doesn’t receive the signal due to the jamming and remains locked.

From a security standpoint, the main weakness in the implementation above is that the Lock and Unlock rolling codes are independent of each other. However, simply sharing the rolling code opens up new variations of the roll jam attack. The attacker can still jam consecutive messages, take the rolling code of an unlock command, and then construct a valid lock command (or the reverse scenario beginning with a jammed lock command and constructing an unlock command). Therefore, in addition to sharing the rolling code it is important to sign or encrypt the messages to make sure the attacker can’t construct messages based on the jammed rolling code. This can be done using a recognized and cryptographically secure message authentication code (MAC), such as AES-CMAC or HMAC, with a long shared secret key. 

Passive Keyless entry (PKE) systems and security vulnerabilities...Passive keyless entry (PKE) took convenience to a higher level by allowing drivers to enter and start the car without having to take the fob out of their pocket. Building on lessons learned from RKE, a basic PKE communication consists of a challenge transmitted by the car to verify the identity of the key fob and a cryptographically calculated response transmitted by the key fob. 

In most PKE implementations, the key fob and car share a long random secret key used to generate and verify the response. The key fob executes a cryptographic function on the challenge, generating the response which is subsequently verified by the car.

The relay attack...Since PKE implementations are based on proximity of the fob, they have an inherent constraint related to the distance the transmitter can reach. The infamous “relay attack” was devised to bypass this distance limitation. Consider a pair of attackers working together. One attacker is near the car and the other is in close proximity to the key fob. Each attacker uses a transceiver that operates over long distances (e.g., via 4G or WiFi) to forward the messages transmitted by the car and the fob.

As depicted below, Attacker A triggers the challenge and forwards it to Attacker B, who then transmits it to the key fob. The key fob answers the challenge and Attacker B forwards it to the Attacker A, who then retransmits it to the car.

PKES Security: Best practices for mitigating passive keyless entry vulnerabilities(below):

Mitigation #1: Set upper bound on response time...One method for mitigating relay attacks is to set an upper bound on the response time. Since waves are propagated at the speed of light, it’s possible to estimate an upper bound of the distance by measuring round trip time from the car’s challenge transmission until the response reception. Using UWB technology, a highly accurate measurement can be achieved.

Mitigation #2: Use RSSI to estimate key fob location...Another mitigation method is to estimate the key fob location using RSSI (received signal strength indicator), which identifies the distance between fob and car by signal strength. The car transmits the challenge from multiple antennas. The key fob then responds with the RSSI values of each of the antennas, and the car will use those values to estimate the location. 

However, there are still ways for hackers to “outsmart” the location estimation algorithm. Since RSSI is measured on the key fob side, a pair of attackers may try to transmit an amplified challenge signal near the key fob to enlarge the RSSI values and “trick” the car into believing the key fob is closer than it really is.

Another issue with this mitigation method is that its values are not signed or encrypted. That means a digital attacker could use a demodulator to extract the data transmitted, modify the RSSI values and then modulate the signal again. If you’re using RSSI for localization, it’s recommended to sign or encrypt these values.

Mitigation #3: Integrating motion sensor...To try to prevent relay attacks, some key fobs integrate motion sensors to detect long IDLE periods. If after a couple of seconds/minutes no motion has been detected, the key fob stops answering challenges. In other words, if your key fob is on the kitchen table all night, an attacker can’t perform a relay attack on your car.

Known challenge relay attack...Another theoretical hacking scenario is a Known Challenge Relay Attack, which exploits implementations where the challenges are predictable. For example, the next challenge is the previous challenge plus 1: 0, 1, 2, …, 0xFFFFFFFF, or challenges are generated using a random number generator function that is not cryptographically secured, such as LCG, LFSR, etc. In such a case, an attacker who knows the PRNG function or guessed it correctly could construct the full challenge sequence.

Like the classic relay attack (described above), in this scenario the key fob and the car are distant from one another, but this time there is only one attacker. He triggers the challenge from the car and then tries to predict the next challenge the car will transmit. The attacker then moves close to the key fob and transmits the predicted challenge. The key fob answers with a response. Then, the attacker goes back to the car and triggers another challenge. If the triggered challenge is what the attacker predicted, the attacker can solve it by transmitting the response recorded from the key fob to unlock and start the car.

One strategy to consider for preventing this scenario is to make sure the challenges are not predictable by using a recognized CSPRNG with high entropy seed. Another suggestion is to have the car sign all challenges. In this way, even if the attacker is able to predict the challenge, he can’t query the key fob for the response.

Keyless entry security: Secure implementation is the name of the game...Vehicle theft has been a problem ever since cars were invented. Today, the cat-and-mouse game between security professionals and thieves continues – the only difference being the sophistication of the tools being used. 

RKE and PKE create numerous security challenges for OEMs. We’ve seen that insecure RKE implementations are exposed to different variations of replay and roll jam attacks, such as the recently discovered Rollback attack. Messages should be signed or encrypted to prevent an attacker from modifying messages recorded from the key fob. 

With respect to PKE implementations, it’s important to make sure challenges are not predictable by using a high entropy seed for randomization and applying CSPRNG to generate encrypted challenges. If you’re using RSSI to estimate location, these values should also be signed or encrypted to prevent tampering.

Moreover, some faulty implementations are mitigatable by upgraded security countermeasures. In many cases, a software update for either the BCM and/or key fob may be enough to fix known vulnerabilities. For this reason, OEMs that offer an Over-The-Air update feature are best-equipped to efficiently respond to the inevitable next attack.

There is no silver bullet for preventing keyless car theft, but proper implementation of the mitigation methods and practices described above would serve as a strong baseline for averting the vast majority of keyless entry hacking attempts.

Keyless entry security requires an AI-driven proactive Approach...Traditional anti-theft systems cannot stop keyless theft techniques that exploit the connectivity, in-vehicle networks and software vulnerabilities in today’s vehicles. Mitigation of these types of theft techniques dictates the need for proactive, adaptive and intelligent systems based on cybersecurity expertise.

PlaxidityX vDome is a comprehensive, AI-powered anti-theft service designed to actively protect vehicles from modern tools for keyless theft techniques. By combining the powerful TDPX in-vehicle agent with continuous cloud-based threat intelligence (VPCC), the vDome system stops CAN injections, key fob replications and emulator attacks at the source – before the engine even starts.

 

AUTONEWS


Do driving assistance systems make drivers more distracted behind the wheel?

Driver assistance systems were designed to support humans while also making cars safer. However, they must be used properly to provide real added value.

Yet, not everyone uses this technology ideally. A study conducted in Germany by AXA Deutschland found that nearly half of young people aged 18 to 24 (48 percent) have used these systems to focus on other things while driving—particularly men (63 percent).

This behavior is more prevalent among those living in urban areas, with 22 percent of respondents engaging in such practices, compared to eight percent of those living in rural areas.

The same data indicates that about one in five male participants (19 percent) admitted to using assistance systems to divert their attention from driving (for tasks such as eating or checking their phones). Among women, only seven percent admitted to doing so.

Do these systems prevent incidents? Driver support systems aim to enhance safety. Among the respondents, 41 percent of urban residents reported that assistance systems helped prevent a potential hazard on at least one occasion (compared to 34 percent in rural areas).

While 77 percent of Germans believe these systems have a positive effect on road safety, the survey also reveals a concern: 44 percent feel that the availability of these aids leads drivers to rely too heavily on them, resulting in less attention being paid to the road and the task of driving.

Over 2,000 respondents...The study, conducted as part of AXA Switzerland’s Mobility Day, took place from July 24 to 27 via online interviews with members of the YouGov panel. A total of 2,032 people participated, representing a sample of the adult German population.

From Reuters: Driver assist systems are letting Us get distracted...Drivers are way more likely to be distracted behind the wheel, doing non-driving activities like looking at their phone or eating, when using partially automated driving systems. The problem is being made even worse by some drivers who have figured out loopholes to defeat the rules meant to limit distractions when they're behind the wheel.

This new information comes from months-long studies conducted by the Insurance Institute for Highway Safety that looked into two systems: Tesla's Autopilot and Volvo's Pilot Assist. The organization aimed to look at driver behavior when the tech was activated and how it evolved over time. 

Partial automation – a level of "advanced driver assistance systems" – uses cameras, sensors and software to regulate the speed of the car based on other vehicles on the road and keep it in the center of the lane. Some enable lane changing automatically or when prompted.

Drivers, however, are required to continuously monitor the road and be ready to take over at any time, with most systems needing them to keep their hands on the wheel.

What the IIHS found out was a bit troubling. People will do the bare minimum to keep their system from yelling at them, but they aren't exactly active monitors of what is going on around them.

"These results are a good reminder of the way people learn," said IIHS President David Harkey. "If you train them to think that paying attention means nudging the steering wheel every few seconds, then that's exactly what they'll do."

"In both these studies, drivers adapted their behavior to engage in distracting activities," Harkey said. "This demonstrates why partial automation systems need more robust safeguards to prevent misuse."

The study with Tesla's Autopilot used 14 people who drove over 12,000 miles (19,300 km) with the system, triggering 3,858 attention-related warnings. On average, drivers responded in about three seconds, usually by nudging the steering wheel, mostly preventing an escalation.

The study with Volvo's Pilot Assist had 29 volunteers who were found to be distracted for 30% of the time while using the system – "exceedingly high" according to the authors.

Listen, I really don't mind a lot of these partial self-driving systems. My real issue is that, as they're set up right now, they do just let you text and drive and be generally distracted behind the wheel. Automakers need to figure out a way to get that to stop happening because we're just creating worse drivers overall.

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