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Secure Connected & Automated Vehicles

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When choosing the NFC device for a new design, the system architect must consider many parameters. To avoid unpleasant surprises during software implementation phase, software has to be taken into account as well from the beginning. Different NFC IC categories (NFC Frontends, NFC Controller, Connected Tag) have different strengths, depending on the software environment. The way how highly integrated operating systems like Linux are structured brings both new challenges and advantages. This session examines the considerations necessary when designing in NFC in different operating systems or "bare metal" systems. It also discusses the advantages and disadvantages of the different device categories in dependence of the designated environment.
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This presentation will explore key Time-Sensitive Networking (TSN) standards and how they relate to Automotive requirements. An overview of the relevant IEEE®  802.1 TSN standards will be given with examples of how these can be applied and used in the automotive environment. By the end of this session, the attendee will understand and be able to select the features they need based on their network use cases.
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Hands-on starting with the i.MX 8M Mini EVK, we will cover the out-of-the-box enablement including software, tools, hardware design guides, and demonstration software. Attendees should leave this class with the confidence to start their own design using the i.MX 8M Mini.
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Systems are complex, and increasing complexity does not translate to product differentiation. Extracting the maximum networking performance, battery life or graphics capability requires knowledge of the underlying silicon and software. Developer resources are tight, and shifting the focus to product development above platform development maximizes return on investment. Freescale has deep enablement technology, comprehensive support and a vibrant ecosystem available to assist getting your product to market quickly. For automotive, consumer, industrial and networking applications, learn how NXP extends the broad technology and support available today with custom access to experts. A brief overview of the products and services available across NXP will be augmented with case studies and expert Q&A.
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Bluetooth speakers and headsets, printers, cameras, projectors, set-top-boxes, TVs, Wi-Fi routers and a variety of home appliances like fridges, washing machines, air purifiers, coffee machines, blenders all have one thing in common: Near Field Communication (NFC) allows new features and easier handling. Just bringing two NFC-enabled devices close together is all it takes to create a connection. Accessories and consumables can be authenticated and configured without any user interaction, and without power supply. And commissioning an IOT node into a wireless network has never been as easy as it is now with NFC. We will share the latest status of NFC support in iOS and present the brand new NFC Tandem module.
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This session will introduce the concept of firmware Over The Air (OTA) updates in the automotive market place. It will show why this feature will bring huge cost saving to OEMs and will be a must have feature in future car generations. It will discuss the challenges faced in in implementing an end to end solution and show how NXP is the leader in providing solutions to make it a reality.
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Technical presentation about hardware based secure CAN communication and the benefits for the ECU design, the system approach as well the support for IDPS.
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In designing cooking appliances, there is ample consideration given to power required from a home's wired electrical system as well as the performance needed to maintain safety and operating temperatures. NXP's solid state RF cooking team has developed a portable food heating appliance using solid state RF energy which is capable of operating on battery power. This session will cover the key challenges and approaches to delivering energy to heat food in a portable, on-the-go appliance.
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Smart Amp software enhancement integrated with smart amplifier to provide optimal end-to-end solution such as voice experience, audio capture and speech assist for mobile and IoT applications.
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Learn about NXP's secured IoT Gateway platform with sensor fusion, local and cloud analytic. IoT data aggregation, sensor fusion and analytic processes are run in VMs providing VM isolation advantage. IoT processes can also run in Virtualized Network Functions (VnF) that can run as service chains across end-to-end virtualized network equipment
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Future networks will still use CAN to a huge extend - but the variety of trends is also significantly increasing. This session shows key values, technical background and differentiators of the different CAN trends and the NXP implementation.
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This presentation will look at the lessons learned from vehicle hacks and introduce a whole vehicle multi-layered approach to automotive security. In 2015, automotive security was rarely far from the headlines of technical and public media, with a number of very public hacks of some major vehicle brands. The result was a renewed focus on vehicle security. There will be an introduction to the NXP portfolio of automotive products from microcontrollers, secure transceivers and secure elements and how they all fit together to offer a complete security solution for connected vehicles today and tomorrow.
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This session will introduce NXP mutual and best class LDMOS technology for cellular band high power applications, including full cellular portfolio RF Power products.
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This session provides an overview of how to migrate to CAN FD. After a protocol overview, MCU initializations needed beyond CAN 2.0 are discussed. Implications of upgrading OEM topologies to CAN FD are presented including concepts of FDpassive and FD Shield to help ease migration.
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Show the importance of OTA updates and the requirements for a total system solution for FOTA.
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With the trend of frequent and remote software updates on the vehicle, the need of managing this properly at the microcontroller is critical. This session will present the challenges on reprogramming edge node microcontrollers inside the vehicle and show how our S32K144 microcontroller properly addresses it safe and efficiently.  
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The hottest topic in automotive design today is the concept of the eCockpit -- where all visual functions in the car are controlled across multiple screens and fully integrated for the driver’s convenience. The key technology that enables eCockpit to run on a single processor also offers new capabilities in industrial, embedded and consumer products such as drones, manufacturing HMI interfaces and smart displays. This class will cover the fundamental technologies and architectural techniques in the i.MX 8 processor which enables rich eCockpit functionality, how NXP has implemented the world’s most significant full chip virtualization capabilities in an ARM-based processor and breaks down the eCockpit demo from the Tech Lab.
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Join this session to learn how NXP security technology should be leveraged to secure the onboarding credentials using the LPC54S0xx MCU with state of the art security technology.
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The low-power i.MX portfolio's objective is to serve as the entry level for application processors while optimizing on performance and power consumption. Join this session to learn about the latest low-power i.MX products, key differentiators and target markets/applications.
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i.MX RT has a flexible external SPI Flash interface, which supports all existing SPI protocols. However, Serial Flash products may vary in READ performance due to the number of I/O, command protocols and the maximum frequency. Serial Flash Read performance has a direct impact on the system bootup time as well as code execution efficiency. In an advanced system design where system code is shadowed from Flash to DRAM, the initial boot time depends on the data transfer time from Flash to DRAM. In a cost-efficient system design, DRAM is reduced or eliminated since the processor will be able to fetch execution instructions directly from the Flash to the internal cache. During code fetching, a fixed length of data (typically 32- or 64-Byte) is read out from the flash. Shortening the overall 32-Byte or 64-Byte Read time will greatly reduce processor’s wait cycle, leading to improvement on XiP efficiency.
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