Why is LiDAR considered a key enabler for safe autonomy?
LiDAR is a key enabler for safe autonomy because it provides high-resolution, long-range, and reliable perception data that allows autonomous systems to navigate and react safely to their environment. It fills the performance gaps left by cameras (which struggle in poor lighting) and radar (which lacks resolution at range), making it the only deterministic sensor that provides absolute certainty about objects in a vehicle's path. This enables path-planning systems to make the safest driving decisions. Source
At which levels of vehicle autonomy is LiDAR considered necessary?
LiDAR is considered critical for unlocking safe Level 3+ autonomy and is an essential component of many safety-oriented L2+ ADAS features. It is always additive, as it is the only sensor able to provide accurate 3D depth measurement, resulting in better outcomes for autonomous vehicles. Source
What problem can LiDAR solve for L2+ that a low-cost radar or camera cannot?
LiDAR is a deterministic sensor that works in all lighting conditions and provides resolution at range. It can solve corner cases that radar struggles with, such as determining a small object's height in the road to decide whether to drive over or maneuver around it. Cameras cannot reliably determine distance or size of objects in challenging lighting, while LiDAR can. Source
What is the current cost-performance status of LiDAR for automotive applications?
LiDAR has seen a significant price drop in the past three years. As the automotive market ramps up production volume, costs are dropping to 0-00 for ADAS deployments, making LiDAR cost-effective for mass-market vehicles. Source
What are the immediate opportunities for LiDAR deployment?
Immediate opportunities for LiDAR deployment include higher levels of autonomy in automotive applications, especially ADAS features like Highway Pilot. LiDAR is also expanding into markets such as off-highway vehicles, intelligent transportation systems (ITS), aerospace, and rail. Source
What is a 'game-changing' L2+/2++ application for LiDAR?
"Highway Pilot" is considered a game-changing L2+/2++ application for LiDAR. AEye sensors' ability to detect small objects at range and high speed makes them ideal for this feature, which is highly desirable for automakers and consumers. Source
How does AEye's LiDAR technology contribute to enabling safe autonomy in vehicles?
AEye's iDAR™ platform is a high-performance, AI-driven system that provides faster, more accurate, and reliable perception for vehicle autonomy, ADAS, and robotic vision. It uses software configurability for dynamic scan patterns, deterministic edge processing, and can be cued by other sensors. The platform also uses a 1550nm laser emitter for better performance and safety. Source
What are the advantages of using a 1550nm laser emitter in LiDAR systems?
The 1550nm laser emitter offers lower cost per photon, better penetration through obscurants, superior beam quality, and a 100x higher eye safety threshold compared to 905nm. It also allows for simpler, more robust manufacturing and fundamentally safe agile scanning. Source
How does AEye's LiDAR handle sensor placement and protection?
AEye's software-configurable scan patterns allow for flexible sensor placement in the grill, headlight, windshield, or roof mount. Sensors can be protected by robust sealed enclosures or by being placed behind surfaces like the windshield, which also allows for easier cleaning and maintenance. Source
What partnerships does AEye have for LiDAR sensor deployment?
AEye has co-development and industrialization partnerships with leading Tier 1 suppliers such as Continental, Hella, and Aisin. Continental is integrating AEye sensors into vehicles in volume starting in 2024 for OEMs globally. Source
How does AEye's LiDAR integrate with other sensors in a vehicle?
AEye's LiDAR can utilize deterministic edge processing and cueing from other sensors such as cameras and radars to increase the accuracy and saliency of data. It can also provide pre-classification information, such as radial and lateral velocity of objects. Source
What is AEye's approach to software-defined LiDAR?
AEye's LiDAR is software-configurable, allowing dynamic generation of high-resolution scan patterns tailored to customer use cases. This enables customization and adaptability without hardware changes, supporting a wide range of applications. Source
How does AEye ensure sensor reliability and longevity?
AEye ensures sensor reliability and longevity by using robust sealed enclosures or placing sensors behind protective surfaces like windshields. This protects against moisture, corrosion, and environmental damage, and allows for easier cleaning to maintain optimal performance. Source
What is the difference between 1550nm and 905nm laser emitters in LiDAR?
1550nm laser emitters offer lower cost per photon, better penetration through obscurants, superior beam quality, and a much higher eye safety threshold (100x that of 905nm). 1550nm also allows for simpler, more robust manufacturing compared to the multi-transmitter designs required for 905nm. Source
Has AEye considered using 905nm wavelength for shorter range, lower cost sensors?
AEye's design concept is wavelength independent, but after evaluation, the company rejected 905nm for the reasons mentioned above. The short-range sensor space is inherently crowded and low-margin. Source
What is AEye's iDAR™ platform?
AEye's iDAR™ (Intelligent Detection and Ranging) platform is a smart, software-configurable system that combines solid-state, active LiDAR, an optionally fused low-light HD camera, and integrated deterministic artificial intelligence. It enables faster, more accurate, and more reliable perception for vehicle autonomy, ADAS, and robotic vision applications. Source
How does AEye's modular architecture support vehicle coverage?
AEye's modular architecture enables seamless, cost-effective 360° coverage around the vehicle, supporting flexible sensor placement and robust protection for long-term reliability. Source
Features & Capabilities
What features does AEye's LiDAR offer for automotive and autonomous applications?
AEye's LiDAR offers dynamic scan patterns, ultra-long-range detection (up to one kilometer with Apollo), high resolution, adaptability to challenging environments (rain, darkness, fog), over-the-air updates, and flexible placement options. These features enhance safety, efficiency, and adaptability for autonomous vehicles and smart infrastructure. Source
How does AEye's LiDAR adapt to challenging environments?
AEye's LiDAR systems perform reliably in adverse conditions such as rain, darkness, and fog, ensuring consistent performance and operational reliability for safety-critical applications. Source
What is the Apollo LiDAR system and what are its capabilities?
The Apollo LiDAR system is AEye's flagship product, featuring a small form factor and the ability to detect objects at distances up to one kilometer. It is ideal for highway autopilot and high-speed driving scenarios. Source
What is the OPTIS™ solution from AEye?
OPTIS™ is a full-stack solution from AEye that captures high-resolution 3D images, interprets them, and provides direction to act upon what it sees in real-time. It is designed for applications requiring real-time perception and action. Source
What is the 4Sight Intelligent Sensing Platform?
The 4Sight Intelligent Sensing Platform delivers precise measurement imaging for applications like autonomous vehicles, smart infrastructure, and logistics. It is designed to enhance safety, efficiency, and adaptability. Source
What technical documentation is available for AEye's products?
AEye provides specification sheets, white papers, case studies, and technology insights. For example, the Apollo solution spec sheet, white papers on LiDAR technology, and real-world case studies are available on the resources page.
What integrations does AEye support?
AEye's Apollo sensor is fully integrated with the NVIDIA DRIVE AGX Platform, including NVIDIA AGX DRIVE Thor™, and supports OEM integration options behind the windshield, on the roof, or in the grille. Source
Use Cases & Benefits
Who can benefit from AEye's LiDAR technology?
Industries that benefit from AEye's LiDAR include automotive, trucking, smart infrastructure, aviation, defense, rail, and logistics. The technology enhances safety, operational efficiency, and adaptability in these sectors. Source
What are some real-world case studies demonstrating AEye's LiDAR technology?
How does AEye's LiDAR improve safety in autonomous vehicles?
AEye's LiDAR enables early detection, better perception, and faster reaction times, which are critical for preventing accidents and enhancing safety in autonomous vehicles. Source
How does AEye's LiDAR support customization and scalability?
AEye's software-defined LiDAR solutions can be tailored to meet unique specifications, adapting to specific environments and applications without hardware changes. Source
How does AEye's LiDAR adapt to new challenges and scenarios?
AEye's LiDAR systems offer over-the-air upgrades, allowing them to adapt to new challenges and scenarios through software updates, ensuring long-term relevance. Source
What industries are represented in AEye's case studies?
Industries include automotive, trucking, smart infrastructure, aviation, defense, rail, and logistics, demonstrating the versatility of AEye's LiDAR technology. Source
Competition & Comparison
How does AEye's LiDAR compare to Velodyne?
Velodyne offers traditional LiDAR systems with fixed scan patterns and focuses on high-resolution imaging but lacks software-defined architecture. AEye's LiDAR adjusts scan patterns in real-time, offers software-defined customization, and supports over-the-air updates for future-proofing. Source
How does AEye's LiDAR compare to Luminar?
Luminar focuses on long-range LiDAR for autonomous vehicles with a primarily hardware-focused approach. AEye's LiDAR offers dynamic scan patterns, adaptability to challenging environments, and flexible placement options, providing greater customization and reliability. Source
How does AEye's LiDAR compare to Innoviz?
Innoviz offers solid-state LiDAR with a focus on automotive applications but has limited software-defined customization. AEye's LiDAR is customizable without hardware changes, offers over-the-air updates, and provides ultra-long-range detection and high resolution. Source
What are the main differentiators of AEye's LiDAR compared to competitors?
AEye's main differentiators include dynamic scan patterns, software-defined architecture, future-proof design with over-the-air updates, high performance (ultra-long-range and high resolution), and flexible placement options. Source
Implementation & Support
How easy is it to implement AEye's LiDAR solutions?
AEye's products are designed for ease of integration with existing systems, supported by comprehensive technical support, validation testing tools, and user education resources. This ensures a smooth and efficient onboarding process. Source
What support does AEye provide during implementation?
AEye provides direct technical support, extensive training resources, and validation testing tools to help customers quickly and confidently adopt its products. Source
What feedback have customers given about the ease of use of AEye's products?
Customers benefit from ease of integration, comprehensive technical support, user education, and validation testing tools, making the onboarding process smooth and efficient. Source
Resources & Further Learning
Where can I find AEye's blog posts?
You can explore AEye's blog posts on our blog page for insights into LiDAR technology, autonomy, and industry trends.
What type of content is available on AEye's blog?
The blog features articles and discussions on LiDAR technology, autonomous vehicles, and MEMS. Examples include 'Not all MEMS are Created Equal', 'Elon Musk Is Right: LiDAR Is a Crutch', and 'Odyssey of FMCW'. Source
Where can I find technical resources and case studies about AEye's LiDAR?
Technical resources, including white papers, specification sheets, and case studies, are available on the AEye resources page.
Is there a webinar available about LiDAR's role in enabling safe autonomy?
AEye Reports Fourth Quarter and Full-Year 2025 Results; Strengthened Foundation for Commercial Growth
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AEye Reports Fourth Quarter and Full-Year 2025 Results; Strengthened Foundation for Commercial Growth
Read more
AEye Joining NVIDIA Halos AI Systems Inspection Lab to Advance Safety-Certified Physical AI Solutions
Read more
Connect with our team to discuss your use case and explore how AEye’s adaptive LiDAR can meet your system needs.
AEye’s modular architecture enables seamless, cost-effective 360° coverage around the vehicle.
LiDAR: Key Enabler for Safe Autonomy
Reuters Events’ Car of the Future 2021 Webinar, Q&A
Recently, AEye Co-Founder, GM of ADAS and VP of Corporate Development, Jordan Greene, Continental’s VP and Head of LiDAR, Dr. Gunnar Juergens, and former General Motors CTO and GM Ventures President, Jon Lauckner, took part in a Reuters Events’ Car of the Future webinar to discuss LiDAR as the key enabler for safe autonomy. The panel looked at economic drivers for Level 2+ to Level 5 autonomy, use cases for automotive LiDAR, as well as implementation strategies and requirements, with a focus on software-driven LiDAR.
The 45-minute panel generated so much interest and discussion, the allotted time didn’t allow for AEye to answer all of the audience questions. Therefore, we’ve taken the liberty of packaging the questions into a few categories, and answering them here.
If you have any further questions, please feel free to reach out to [email protected].
Q: Why LiDAR, now? Where are the immediate opportunities?
A: Automakers are ready to deploy higher levels of autonomy (i.e., ADAS features), and to do so safely requires LiDAR. Cameras have great resolution and color information, but are limited in certain lighting conditions, as well as with the approximation of range. Meanwhile, radar has good performance in poor weather conditions, but doesn’t provide sufficient resolution at range, nor deal well with the certainty of objects’ locations due to multi-path. LiDAR fills in these performance gaps, and is the only deterministic sensor that can provide absolute certainty that an object is in your way, so that the car’s path-planning system can make the safest driving decision.
Q: Have we reached the right blend of cost-performance?
A: LiDAR has seen a massive price drop in the past three years, and as we see the automotive market ramp up production volume, we’ll continue to see cost-downs and economies of scale that will parallel that of radar. So, yes, we think we’ve reached the right level of cost-performance, as we see the technology improving and costs dropping to $100-$1000 for ADAS deployments.
Q: At what level of autonomy is LiDAR needed?
A: LiDAR is always additive because it’s the only sensor able to provide accurate 3D depth measurement, and it will always result in better outcomes. Currently, almost the entire automotive industry sees LiDAR as critical to unlocking safe Level 3+ autonomy — and an essential component of many safety-oriented L2+ ADAS features.
Q: Is there a “game-changing” L2+/2++ application?
A: We believe applications like “Highway Pilot” will be very desirable for automakers and consumers. In fact, in a recent LinkedIn Poll, AEye asked followers which ADAS feature they would most like to have in their next car, and the overwhelming majority — 53% — chose Highway Pilot. The AEye sensor’s ability to detect small objects at range and at high speed makes our technology a great fit for this “game-changing” application.
Q: Where is the opportunity outside of passenger cars?
A: Although automotive and trucking are front-runners, we believe LiDAR will be in everything that moves. Expect to see it play an integral role in markets such as off-highway, ITS, aerospace, and rail — and AEye will be powering many of those solutions.
Q: What problem can LiDAR solve for L2+ that a low cost radar or camera can not?
A: LiDAR is a deterministic sensor that works in all lighting conditions with resolution at range capabilities. Therefore, it can solve corner cases that radar struggles with, such as determining a small object’s height in the road to determine the vehicle’s best course of action (i.e., drive over or maneuver safely around). Cameras are also great sensors, but are unable to see in conditions such as bright, direct sunlight or dim sunlight. They also cannot determine distance or size of an object with the same reliability of LiDAR.
Q: AEye’s approach to controllable sensors is an excellent vision for intelligent coordination, and even sensor-queuing. When might the automotive industry first demonstrate or deploy this (beyond the mode changes of today’s radars)?
A: AEye has multiple co-development and industrialization partnerships with automotive Tier 1s, such as Continental, who are integrating these sensors into vehicles in volume starting in 2024 for OEMs globally. Industrial markets will see deployments earlier than this.
Q: Is there a level of perception and/or decision making that will be done with the point cloud in the LiDAR sensor unit vs the rest of the vehicle? In other words, how much intelligence is expected to be included in the LiDAR sensor when added to the vehicle? Is there a limit?
A: AEye’s LiDAR unit uses software configurability to dynamically generate a high resolution scan pattern that addresses customer use cases.
In addition to custom stored scan patterns, AEye’s LiDAR can utilize deterministic edge processing as well as cueing from other sensors such as cameras and radars to increase the accuracy and saliency of data.
And finally, AEye’s LiDAR can provide pre-classification information, such as, but not limited to, radial and lateral velocity of objects.
Q: Could you comment on the 1550nm laser emitter solution vs the 905nm emitter solution in terms of cost, range, eye safety, manufacturing and sensor compatibility?
A: Cost/complexity per transmitted photon is lower for 1550nm (detector responsivity is higher), and because of transmitter amplifiability, 1550nm detectors can be made much simpler and more robustly. With 1550nm fiber lasers, you get better beam quality and less susceptibility to solar background. 1550nm also penetrates through obscurants better than 905nm due to it being a longer wavelength (1550nm has about a 60% larger amplitude than 900nm), and having a much higher eye safety threshold. The 1550nm eye safety threshold for Maximum Permissible Exposure (MPE) is 100x that of 905nm. Accordingly, agile scanning with the 905nm wavelength is virtually impossible, whereas it is fundamentally safe with 1550nm.
From a manufacturing standpoint, 1550nm leads to simpler single transmitter systems, while 905nm leads to multi-transmitter (scanners and lasers) designs, where alignment of multiple scanners and laser diodes is very difficult to achieve.
Q: Has AEye looked at using the 905nm wavelength for shorter range to enable lower cost, particularly for the sensors (silicon) and lasers used?
A: While AEye’s design concept is wavelength independent, we’ve evaluated and rejected it due to the points mentioned above. We are always evaluating new technology. The short range sensor space is inherently a crowded, low-margin space.
Q: What are the options for LiDAR sensor placement?
A: AEye’s software-configurable scan patterns allow for flexible placement options in the grill, headlight, windshield and roof mount of the vehicle.
AEye’s modular architecture enables seamless, cost-effective 360° coverage around the vehicle.
Q: How do you protect sensors from moisture/water and potential corrosion while maintaining the desired performance? What role/need do you see for sensor cleaning to enable LiDAR-based vision systems and ensure safe and optimal operation?
A: There are many ways to protect the sensor, from building a robust sealed enclosure to building the unit behind a protective surface such as a windshield. There will always be some level of degradation of any sensor over its lifetime, whether that’s from environmental damage (moisture, scratches, fogging, etc.) or from general wear and thermal cycling of the components. Automakers, for example, like to look at performance at the end of the lifetime of any component and make sure it meets their specifications — all the more reason to have a robust sensor that far exceeds OEM requirements when new.
Cleaning will always be a necessary tool for automotive (and other) applications. Whether it’s dirt or bugs, anything that blocks the optical path will attenuate the sensor’s signal, which is, again, a good reason to place sensors behind a windshield, where the windshield wipers are already cleaning the external surface.
AEye is the premier provider of high-performance, AI-driven LiDAR systems for vehicle autonomy, advanced driver-assistance systems (ADAS), and robotic vision applications. AEye’s smart, software-configurable iDAR™ (Intelligent Detection and Ranging) platform combines solid-state, active LiDAR, an optionally fused low-light HD camera, and integrated deterministic artificial intelligence to capture more intelligent information with less data, enabling faster, more accurate, and more reliable perception. AEye has partnered with leading Tier 1s — such as Continental, Hella, and Aisin — and system integrators to configure and manufacture the sensor at scale to meet the diverse performance and functional requirements of autonomous and partially automated applications.
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