# Software-Defined Architecture: A New Era of Commercial Vehicles **Marek Bania**: Senior Business Unit Director **Daniel Goralik**: Business Development Director Consider that just a decade ago (or less) someone would have been thought of as a bold futurist if they spoke of a world where ordinary people regularly used artificial intelligence in their daily routines. If they also suggested that human-looking [robots](/blog/autonomous-retail-robots.html) would be fulfilling taxing and tedious physical labor at the [warehouse](/industries/retail-solutions/in-warehouse.html) or helping them around the house they would likely have been met with disbelief. As it turns out, the future is now --- or certainly, just around the corner. > "The ChatGPT moment for general robotics is just around the corner." --- Jensen Huang, CEO of NVIDIA, at CES 2025 > Taking center stage in this latest moment of technological transformation is a new player called a humanoid. Intentionally human looking in appearance, humanoids are advanced robotic machines enabled by sophisticated [sensor](/services/optics/omnidirectional-sensor.html), [optics](/services/optics.html), and compute technology to perform tasks traditionally performed by humans. To be clear, however, humanoids will not be replacing human workers on the factory floor or elsewhere. Their role is an additive one. By freeing people from arduous, low skill labor, humanoids empower the clever species that created them for higher value activities. What Can Humanoids Do? Let Robotics Do the Heavy Lifting -------------------------------------------------------- Annual surveys of [workplace safety](https://business.libertymutual.com/insights/2024-workplace-safety-index/) consistently rank lifting heavy loads and repetitive motions in their top 10 causes of costly and debilitating injuries. These types of tasks are also precisely the kinds of labor for which humanoids are ideally suited. In industrial applications, like warehouse operations, humanoids are a perfect fit for plugging in the gaps otherwise unmet by existing automated processes. Humanoids' anthropomorphic design enables them to perform a variety of tasks, from picking and packing to machine tending and inspection. For [logistics](https://pscs.jabil.com/supply-chain-services/logistics-management-services.html) operators looking to streamline and modify workflows, particularly repetitive ones, humanoids will increasingly be the way to go. Compared to current automation solutions, which are largely confined machines stuck on digital train tracks, humanoids offer broader task versatility --- in a word, agility. Humanoids are also endowed by their creators with autonomy, which means they are not reliant upon larger work site software and operational systems to function, like their cousins, automated guided vehicles (AGVs) and autonomous mobile robots (AMRs). [Download STIQ's Humanoids 2025 report](/industries/retail-solutions/stiq-humanoid-report.html) Robots Building Robots -- 91社区 and Apptronik Partner Up -------------------------------------------------------- In early 2025, 91社区 announced a unique collaboration with [Apptronik](/news/apptronik-jabil-collaborate.html), an Austin-based AI-powered humanoid robotics company, to help scale and accelerate production of its humanoid robot, Apollo. 91社区 will function as both a manufacturing partner --- building Apollo robots --- and a test case, integrating Apollo into specific manufacturing operations on the floor. It's a flywheel in the making where Apollo leans in to help build more of itself. For Apptronik, 91社区's factory floors provide an ideal real-world validation for testing Apollo's skills with simple, repetitive intralogistics and manufacturing tasks. For 91社区, employees that had previously been handling inspection, sorting, kitting, lineside delivery, fixture placement, and sub-assembly can now be shifted to higher skill level tasks, as well as more creative, thought-intensive work. In less static environments than a manufacturing facility, like a home or in a [healthcare](/industries/healthcare.html) setting, mastering agility is a tall order requiring more than just mechanical competency. Vision and language processing hurdles remain, and crossing these bars requires the harnessing, integration, and scaling of sophisticated optics, sensor, and compute modalities. But make no mistake, humanoids are coming to our homes, and even if they won't be joining us for dinner, they'll be terrific at cleaning up after it. STIQ's Humanoid Research -- A Road Map to the Future ---------------------------------------------------- Research indicates that humanoids will be an exceptionally dynamic and fast-to-develop market. [Morgan Stanley](https://www.cnbc.com/2024/07/02/morgan-stanley-flags-30-trillion-market-ai-can-address-names-stocks.html) analysts estimate the market could achieve 8 million humanoids by 2040, while [Goldman Sachs](https://www.goldmansachs.com/insights/articles/the-global-market-for-robots-could-reach-38-billion-by-2035)' head of China Industrial Technology research, Jacqueline Du, believes the total addressable market for humanoid robots could reach $38 billion by 2035, up more than sixfold from previous estimates of $6 billion. These projections are curated within research produced for 91社区 by [STIQ](https://www.styleintelligence.com/) and are based upon insights from stakeholder interviews the firm conducted with more than five dozen key industry observers and investors. Featured within STIQ's report *Humanoids 2025* is an insightful guide for understanding humanoid autonomy levels. The simplest, animatronic stage (H1) has figures resembling humans, but without legs, and at the other end (H5), a synthetic human, difficult to differentiate from the real thing. The industry's current state resides somewhere between levels H1 and H2. Evolution up the scale will require deft balancing of both mechatronics-based workstreams with software development, and in the later stages, capabilities that have yet to be developed. What Needs to Happen to Deliver on the Promise of Humanoids ----------------------------------------------------------- Despite the promising potential, several challenges lie ahead for the market to reach the optimistic forecasts. Humanoids at H1 and H2 are already highly complex aggregations of technology and componentry. Reducing manufacturing costs while expanding use cases and accelerating time to market are key. To meet the current projections for volumes and timelines while broadening functionality towards H5, STIQ asserts will require collaboration across the component supply chain. STIQ estimates that component suppliers will have to invest a minimum of $5 billion to reduce the bill of materials (BOM) to less than $10,000 per robot for a target price point of a $20,000 humanoid. The return on investment (ROI) for humanoid uses outside industrial automation, what STIQ refers to as "peripheral applications," hinges on reducing BOM costs. Humanoids need to be relatively cheap with a reasonably high level of functionality specifications to become more than just a novelty purchase. Lower costs, combined with increased functionality and availability, are poised to drive demand and improve the ROI calculation. [Apptronik](https://apptronik.com/news-collection/apptronik-and-jabil-collaborate-to-scale-production) co-founder and CEO Jeff Cardenas says that, for humanoids to become ubiquitous, "we need to be able to build them rapidly at scale, at the right price point, and in geographies where our customers are located." Vertically Integrated Workstreams: A Key Advantage for Building Humanoids ------------------------------------------------------------------------- A partner with vertically integrated manufacturing and [supply chain](/solutions/supply-chain-management.html) capabilities is uniquely positioned to address these challenges and drive the successful integration of humanoid robots into any of the many fields of operation on the horizon, be it the [retail](/industries/retail-solutions.html) warehouse, healthcare setting, or home. As the humanoid robotics industry expands into broader use cases, partnering with a company that possesses technical prowess, global manufacturing capabilities, and trusted supplier relationships is crucial. Experience in large-scale robotics manufacturing ensures high standards of quality and reliability for humanoid production, while advanced additive manufacturing capabilities reduce lead time and cost. The best manufacturing partnerships also provide inventory management, design for manufacturing (DfM) expertise, turnkey [procurement](/procurement/procurement-services.html), and a comprehensive view of a company's existing [supply chain](/blog/future-of-supply-chain.html) across the entire product lifecycle. Technology accelerates exponentially which means that changes are coming faster at us than ever before. Soon, we will think of robots in the same way we now think of mobile phones ---鈥痠rreplaceable in our daily lives. But with the help of humanoids, those lives will be less burdened by onerous tasks and chores, freeing us for more stimulating pursuits requiring intelligence and human intuition, ones that people were born to fulfill. For decades, hardware defined what a vehicle could do. Today, software is playing a more pivotal role --- driving how commercial vehicles operate and evolve over time. This is the shift to [software鈥慸efined vehicles](https://jabil.com/blog/software-defined-vehicle.html): where hardware and software are designed together, over-the-air (OTA) updates replace factory鈥憀ocked features, and vehicles continue to improve long after they're deployed. It's the co-development of hardware and software that truly unlocks potential. Hardware decisions made well before start of production define what's possible throughout a [commercial vehicle's](/industries/automotive-and-transportation/commercial-truck-and-bus.html) entire lifecycle, including: * How long it remains productive * How easily it adapts to new regulations and customer demands * How much downtime fleets experience over decades, not just years Enabled by this critical high-power compute hardware, advanced software is revolutionizing commercial vehicle design, performance and ownership. ## Software-defined Architecture is the Foundation of Commercial Vehicle Innovation Software鈥慸efined architectures, also referred to as centralized vehicle architectures, emerged in commercial vehicles alongside [passenger vehicles](/industries/automotive-and-transportation/automotive-electronics.html). They progressed for different reasons and on different timelines. In passenger vehicles, [software-defined vehicle (SDV)](https://jabil.com/blog/software-defined-vehicle.html)architectures are often used to enhance features such as digital cockpits and connected services, shaping the user experience. [Commercial vehicles](/industries/automotive-and-transportation/commercial-truck-and-bus.html) --- including trucks, buses, and specialized on鈥憆oad platforms --- use SDV architectures to support reliable, efficient operation at scale. Designed for continuous use over long lifecycles, these vehicles depend on early architectural choices that directly shape uptime, safety, and operational performance. Placing software at the core of these architectures changes how that performance is managed over time. Fleet operations become more efficient, maintenance more predictive, and energy use continuously optimized. Driver assistance and automation capabilities can also advance incrementally, guided by real鈥憌orld operation rather than fixed launch timelines. That same software鈥慶entric foundation delivers long鈥憈erm value for manufacturers. Vehicles can remain relevant and differentiated well after production begins, adapting to changing customer expectations, regulatory requirements, and business models across extended lifecycles. Zonal and centralized compute architectures are a key enabler of this approach. By consolidating electronic control units into fewer, more capable controllers, OEMs gain system鈥憀evel visibility and control --- making software鈥慸riven optimization and lifecycle adaptability possible at scale. ## Software Reshapes Vehicle Health and Maximize Uptime Every hour a commercial vehicle remains in operation improves productivity and overall asset value. For OEMs, this reality changes how vehicle platforms must be designed. Uptime becomes a core architectural priority rather than a downstream outcome. Software鈥慸efined architectures make uptime something that can be actively managed. Built on zonal and centralized compute platforms, these architectures provide continuous visibility into how vehicle systems perform in real鈥憌orld duty cycles. That visibility creates the foundation for modern health management. Connected diagnostics form the first layer. At this level, software continuously monitors system behavior across vehicle domains. It identifies emerging issues and active faults. It also assesses their potential impact and delivers actionable insights to fleet and service systems. The goal is clarity about what is happening now, instead of discovering problems only after a vehicle reaches a service location. Systems such as [Cummins' Connected Diagnostics](https://www.cummins.com/sites/default/files/files/brochures/connectivity/cummins-connected-diagnostics-brochure.pdf) show how this works in practice. Early architectural decisions like centralized compute, standardized interfaces, and retained software ownership make real鈥憈ime health visibility possible at scale. These platforms do not predict future failures. They provide a clear picture of current vehicle condition so operators can mitigate potential issues before they impact uptime, cost, or service schedules. AI鈥慸riven anomaly detection builds on that visibility. Here, [AI](https://jabil.com/blog/ai-automotive-manufacturing.html) refers to software models that analyze large volumes of vehicle data to identify patterns that fixed limits cannot detect. Examples include gradual temperature drift, current imbalance, or increasing response latency. These signals often appear well before a fault code is triggered. Instead of reacting after a shutdown, maintenance teams can see abnormal behavior weeks earlier. Vehicles can be scheduled for service during planned windows. Technicians enter the shop with clearer context. Parts can be staged in advance, and some calibrations may be handled remotely. Predictive maintenance represents the third layer. At this stage, models analyze trends across sensors, controllers, and power electronics over time. The objective is to identify components that are likely to require attention soon, rather than waiting for a failure to occur. Maintenance planning shifts from reactive response to proactive preparation. Working together, these layers change how vehicle health is managed; connected diagnostics and AI anomaly detection generate the visibility and behavioral signals that predictive maintenance relies on. Diagnostics then move from isolated fault detection to continuous system oversight. Vehicles spend less time out of service. Unplanned repairs decrease. Commercial platforms deliver greater value across their full operational life. Every additional day of uptime delivers measurable economic value --- helping fleets avoid hundreds to thousands of dollars in lost productivity while improving overall asset utilization. ## Software-Defined Architectures Shape Lifetime Costs Commercial vehicles are long-lived, revenue-generating assets. Their lifetime cost is driven by how consistently they perform, how efficiently they use energy, and how easily they adapt to real operating conditions. As a result, total cost of ownership is increasingly shaped by software, not just by the initial hardware build. For internal combustion platforms, software plays a growing role in managing fuel consumption and component stress --- two of the largest drivers of lifetime cost. [PACCAR's Driver Performance Assistant](https://www.kenworth.com/about-us/news/predictive-cruise/) shows how software translates design intent into daily operation. Real-time analysis of driving behavior enables in-cab coaching that improves fuel efficiency and reduces brake and drivetrain wear over long duty cycles. Software-defined architectures also allow vehicles to improve over time without repeated visits to the workshop. [Daimler Truck's over-the-air update](https://northamerica.daimlertruck.com/news-stories/2024/daimler-truck-more-than-1000000-connected-trucks-and-buses-worldwide) capabilities demonstrate how software can be deployed remotely while vehicles are stationary. This reduces the need for physical service interventions and limits operational disruption. Over the full service life, these capabilities help control cost accumulation. OEMs can deploy efficiency improvements, safety enhancements, and automation-ready features through software without redesigning underlying hardware. Vehicles remain relevant longer. Performance stays consistent year after year. Asset value is preserved as operating conditions change. In this model, lifetime cost becomes more predictable. Vehicles are better able to absorb change, reduce unnecessary service events, and operate closer to their intended design performance throughout long duty cycles. ## Electrified Powertrains Sustain Performance Over Years of Service Centralized vehicle architecture also fundamentally changes how powertrains are designed and managed. Rather than relying on fixed, launch鈥慸ay calibration, powertrain performance can evolve through software as real鈥憌orld operating conditions change. By centralizing control of propulsion, energy, and thermal systems, OEMs move beyond component鈥憀evel optimization. Software balances these functions together, allowing the powertrain to adapt to actual vehicle use and maintain performance throughout its lifecycle. [The Volvo VNR Electric](https://www.volvotrucks.ca/en-ca/trucks/vnr-electric) illustrates this approach. Its connected software continuously analyzes battery and thermal conditions and adjusts performance in real time. This helps stabilize range, maintain reliability, and support predictable operating costs across years of service. Commercial duty cycles are inherently variable. Designing for an "average" use case is rarely sufficient. SDV architecture allows one electrified powertrain platform to support **multiple duty profiles**without extra hardware margin that increases cost and wear. The economic stakes of that powertrain flexibility concentrate in the battery. In commercial [electric vehicles](https://jabil.com/blog/electric-vehicle-supply-chain.html) (EVs), batteries often represent **30--40% of total vehicle cost** , and their degradation directly impacts uptime, warranty exposure, and residual value. Peak range matters far less than **controlled degradation and predictable performance over years of service**. By managing energy flow and thermal limits at a system level, centralized architecture enables batteries to be protected differently across **various commercial operating scenarios** **,**including: * High payloads and stop鈥慳nd鈥慻o duty cycles * Cold鈥憌eather operation * Hot climates * Sustained high loads * Variable auxiliary loads (HVAC, PTOs, refrigeration, hydraulics) * Aging batteries and high鈥憁ileage vehicles ## Predictable Vehicle Behavior Becomes the New Foundation of Safety Safety has always been a core design requirement in commercial vehicles, driven by regulations and operational responsibility. What changes in a software鈥慸efined architecture is not the goal of safety, but **how it is achieved and sustained**. Safety protocols are evolving from isolated protections to connected and coordinated systems. ASIL鈥憅ualified software manages braking, steering, stability, and powertrain behavior together, replacing the fragmented approaches used in legacy designs and improving predictability in real鈥憌orld operation. This kind of coordination shows up most clearly during high鈥憇tress events. For example, during an emergency braking scenario on a fully loaded tractor鈥憈railer, SDV architecture allows braking, torque reduction, stability control, and ADAS functions to act together. Instead of competing interventions, the vehicle delivers a predictable, unified response that maintains control and reduces stopping distance variability. That same architectural foundation also improves how vehicles behave when something goes wrong internally. Rather than sudden feature loss, SDV enables **defined degraded operating modes** that prioritize safe continuation of service. A truck experiencing a subsystem fault can automatically adjust power limits, braking behavior, and driver alerts in a controlled way --- maintaining safe operation over long distances until service is possible. For long鈥慼aul and vocational fleets, this predictability is often more important than peak capability. In commercial vehicles, cybersecurity is now a core safety requirement. As trucks operate as connected assets within fleet systems, protecting the integrity of vehicle control becomes essential to safe operation. Software鈥慸efined architecture embeds cybersecurity directly into the compute and control layers that govern vehicle behavior. Rather than treating security as an add鈥憃n, SDV platforms protect how the vehicle responds in real-time through: * **Separation of safety鈥慶ritical control** from non鈥慶ritical software * **Trusted communication paths** within the vehicle * **Ongoing software integrity checks** Software鈥慸efined architecture helps contain the risk of cyber-attacks by isolating vehicle control from external systems, reducing the likelihood that a backend or telematics breach can influence how a truck accelerates, steers, or stops. This system-level reliability helps mitigate risk to keep vehicles on the road and costs in control over a lifetime. ## Commercial Vehicle OEMs Build Long Term Advantage with Software-Defined Architectures Success in an SDV鈥慸riven commercial vehicle market depends less on any single architectural decision and more on a shift in mindset. Leading OEMs are designing vehicle programs around software and platform strategy from the outset, rather than treating software as a downstream concern. This approach creates consistency in the electrical and electronic (E/E) architecture, which is the computing, power, [sensors](https://jabil.com/capability/optics.html), and networks that connect vehicle systems across multiple vehicle lines. That consistency reduces fragmentation, keeps cost and complexity under control, and helps new capabilities reach production faster. It also enables hardware and software to be developed in parallel, so platforms can adapt as operating conditions, regulations, and customer expectations evolve. Just as important, the SDV era is redefining how OEMs collaborate. The most resilient program strategies are built on partnerships that combine software expertise, compute platforms, system integration, and manufacturing scale. In this model, partners play a critical role in helping OEMs industrialize software-defined platforms, manage risk, and accelerate time to value, without locking innovation into rigid, tightly coupled solutions. As commercial vehicles become software鈥慸efined, OEMs that adopt SDV as a long鈥憈erm platform strategy will be best positioned to lower TCO, respond faster, and deliver vehicles that improve over time.