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DES-N1850 Porting 32-bit Linux to ARM®v8 This presentation describes how to modify an Aarch64 (64-bit) uboot to make it loading an Aarch32 (32-bit) Linux, and how to modify an Aarch64 based Linux to run at Aarch32 mode. The target processor is the QorIQ LS1043A SoC. Watch Video Presentation This presentation describes how to modify an Aarch64 (64-bit) uboot to make it loading an Aarch32 (32-bit) Linux, and how to modify an Aarch64 based Linux to run at Aarch32 mode. The target processor is the QorIQ LS1043A SoC. Watch Video Presentation Design | Software & Services
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LPCXpresso IDE Demo This demonstration provides an overview of developing with the various components of the LPCXpresso Ecosystem, showing the main features of the LPCXpresso IDE tools, from project import/creation to multi-core debug, trace and power measurement. A variety of LPCXpresso development boards with their built in LPC-Link2 debug probes will be shown off in conjunction with the LPCXpresso IDE.  The LPCOpen peripheral drivers and examples will be used, demonstrating features of several of NXP's low power and flexible LPC MCU families     For more information : LPCXpresso IDE http://www.nxp.com/pages/:LPCXPRESSO LPCXpresso Boards http://www.nxp.com/pages/:LPCXPRESSO-BOARDS http://www.nxp.com/pages/:LPCXPRESSO-BOARDS  LPC Low Power 32-bit Microcontrollers http://www.nxp.com/pages/:LPC-ARM-CORTEX-M-MCUS     Video Link Communications Infrastructure Re: LPCXpresso IDE Dear Hiroshi Noma, the videos have been edited to fix the audio issue. Re: LPCXpresso IDE Dear Hiroshi Noma, Thanks for this feedback. We will fix the video and update it as soon as possible. Re: LPCXpresso IDE Hello. Left and Right balance of the audio of the video in the community page below is offset, which causes dizziness. There are several others with the same symptom. (I will attach ones that I had identified) Would it be possible to fix it? Best Regards, Hiroshi Noma 野間 比呂志 Senior Engineer Security & Connectivity Application Engineering Department Customer Application Engineering Division NXP Semiconductors Japan Ltd Yebisu Garden Place Tower 24F 4-20-3 Ebisu, Shibuya-ku, Tokyo 150-6024 JAPAN TEL: +81-3-6732-7867, FAX: +81-3-6732-7947 E-mail: [email protected] URL: www.nxp.com<>;
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AMF-AUT-T2343 - S32K and MagniV Overview Overview of NXP’s General Purpose and Integrated Solutions (GPIS) Portfolio with focus on the S32K and S32M (MagniV) products.   Overview of NXP’s General Purpose and Integrated Solutions (GPIS) Portfolio with focus on the S32K and S32M (MagniV) products.  
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Flomio EASyPOS... No checkout needed! Flomio was able to take our SLN-POS-RDR and develop their first EASyPOS prototype in 2 short months! What is an EASyPOS? EASyPOS is an item level point of sale. A light weight terminal that connects wirelessly to the payment network to securely process transactions and unlock from products for consumers to take. EASyPOS is the first of it’s kind and though placing a POS on every item may seem impractical, it offers several advantages. For one the device is able to monitor it’s location with a high degree of accuracy, guiding shoppers directly to the products they seek and consistently delivering positive purchase experiences. Also, inventory accuracy is all but guaranteed so omnichannel commerce and other popular retail trends are supported. Finally, EASyPOS has lights and sound alerts to enable smart filtering and encourage impulse buys.     How do I use it? Using the EASyPOS is —in fact— “easy”. Follow these steps to complete your purchase: - Grab the product you want to purchase.  - Place your Contactless Payment credential on the surface of the contactless payment logo and wait for 4 LEDs to blink green. EASyPOS is now disarmed. - Slide apart the magnetic halves and remove your from your purchase.     How is it built? The EASyPOS was built by Flomio, an expert in mobile NFC device design. It operates at very low power while actively monitoring for payment engagements, remote notifications, tamper attacks, and location changes throughout the retail environment. Smaller than a deck of cards, the EASyPOS is a payments certifiable device leverages the hardened security and miniaturization advances of NXP Semiconductors. It’s split in two assemblies, the top hosting active components like the freakishly loud 90dB speaker and the bottom containing the wireless recharging power system.   Short Video: https://www.youtube.com/watch?v=FQrnTWPpRHE About Flomio, Inc. Disney’s Magic Band™ technology revolutionized their theme park business. Companies eager to “Disney-fy” their businesses without their own team of imagineers and billions to invest turn to Flomio, imagineers for the rest of us. Flomio creates proximity ID solutions that help enterprise clients and developers cross the chasm to the next web, the Internet of Things (IoT). Funded by TechStars, Flomio is fundamentally changing the way people engage with the spaces around them by making proximity ID simple to integrate, easy to deploy, and fun to use. Soon, 50 billion devices will regularly connect to the internet. Flomio’s platform empowers enterprise customers and developers to create applications that communicate with these devices. The future is ubiquitous connectivity. Flomio makes sure businesses take advantage of it. Mobile
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セキュアなワイヤレス接続ソリューション <meta http-equiv="Content-Type" content="text/html; charset=utf-8" /> <meta http-equiv="Content-Type" content="text/html; charset=utf-8" />
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NET-N1861 NXP Commercial Networking Acceleration Solutions NXP offers commercial grade acceleration solutions for common networking applications in non-virtualized and virtualized environments. This session covers NXP’s acceleration solutions landscape on Layerscape and iNIC platforms. Layerscape provides acceleration solutions for Network and Security Applications, Switch Supplementary Applications and OpenFlow Based Applications leveraging LayerScape Accelerated Input Output Processor (LS AIOP).VortiQa-IAAS (Intelligent Application Acceleration Software) offers autonomous SSL processing (SSL termination) and SSL proxy capabilities and VortiQa-IVAS (Intelligent Virtualization Acceleration Software) offers an accelerated infrastructure for NFV (Network Functions Virtualization) to deploy and manage virtual networks and services in VNFs (Virtualized Network Function) on the QorIQ T2 based iNIC. VMM Offload is a NFV solution leveraging LS AIOP. NXP offers commercial grade acceleration solutions for common networking applications in non-virtualized and virtualized environments. This session covers NXP’s acceleration solutions landscape on Layerscape and iNIC platforms. Layerscape provides acceleration solutions for Network and Security Applications, Switch Supplementary Applications and OpenFlow Based Applications leveraging LayerScape Accelerated Input Output Processor (LS AIOP).VortiQa-IAAS (Intelligent Application Acceleration Software) offers autonomous SSL processing (SSL termination) and SSL proxy capabilities and VortiQa-IVAS (Intelligent Virtualization Acceleration Software) offers an accelerated infrastructure for NFV (Network Functions Virtualization) to deploy and manage virtual networks and services in VNFs (Virtualized Network Function) on the QorIQ T2 based iNIC. VMM Offload is a NFV solution leveraging LS AIOP. Smart Networks
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INS-N2022 新しいNXPによるサプライチェーン機能の拡大と供給継続性 <meta http-equiv="Content-Type" content="text/html; charset=utf-8" /> NXPのサプライチェーン・チームは、新しいNXPのグローバル製造フットプリントの概要と、供給保証と危機管理のための統合戦略を紹介します。現在のサプライチェーンシステム統合活動の概要と、今後の顧客注文管理戦略について説明します。NXPのお客様に影響を与える変更を強調することに特に重点が置かれます。 ビデオプレゼンテーションを見る <meta http-equiv="Content-Type" content="text/html; charset=utf-8" /> NXPのサプライチェーン・チームは、新しいNXPのグローバル製造フットプリントの概要と、供給保証と危機管理のための統合戦略を紹介します。現在のサプライチェーンシステム統合活動の概要と、今後の顧客注文管理戦略について説明します。NXPのお客様に影響を与える変更を強調することに特に重点が置かれます。 ビデオプレゼンテーションを見る インサイト&イノベーション
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AUT-N1944 Design the Car of the Future i.MX 8 Virtualization and Media Capabilities for Next Gen eCockpits 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.  Watch Video Presentation 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.  Watch Video Presentation Secure Connected & Automated Vehicles
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NFC & BLE for Hospitality Demo These state-of-the-art devices are single-chip solutions for contact, contactless, and NFC operation, and can be loaded with fully-custom applications. Optimized antenna operation and low-power modes enable best-in-class performance. This NFC & BLE hospitality demo showcases a physical access scenario in hospitality with ultimate contactless connectivity through NXP NFC and BLE solutions and superior security with MIFARE DESFire on cards, mobile and wearables Product Features • Total interoperability with smart devices – NFC/BLE • Ultimate contactless connectivity through NXP NFC and BLE solutions • Superior contactless experience and security with MIFARE DESFire on cards, mobile and wearables NXP Recommends PN746X_736X_SERIES|NXP  Ultra low power Bluetooth LE system-on-chip solutio|NXP  Mobile
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Example MPC5748G-FlexCAN_with_interrupts S32DS_1.0 ******************************************************************************** * Detailed Description: * This example shows, how to initialize FlexCAN modules for simple transmission * and reception using RX interrupt. Both modules are configured for 100kbit/s * bit rate. CAN_0 module transmits message using MB0. CAN_1 module receives * message using interrupt via MB0. * * * ------------------------------------------------------------------------------ * Test HW:         MPC5748G-324DS, MPC574XG - Motherboard * MCU:             PPC5748GMMN6A 1N81M * Fsys:            PLL0 160MHz * Debugger:        Lauterbach Trace32 *                  PeMicro USB-ML-PPCNEXUS * Target:          internal_FLASH (debug mode, release mode) * EVB connection:  Connect jumpers J15 and J16 on motherboard *                    Connect P14 H to P15 H *                    Connect P14 L to P15 L * ******************************************************************************** ******************************************************************************** * Detailed Description: * This example shows, how to initialize FlexCAN modules for simple transmission * and reception using RX interrupt. Both modules are configured for 100kbit/s * bit rate. CAN_0 module transmits message using MB0. CAN_1 module receives * message using interrupt via MB0. * * * ------------------------------------------------------------------------------ * Test HW:         MPC5748G-324DS, MPC574XG - Motherboard * MCU:             PPC5748GMMN6A 1N81M * Fsys:            PLL0 160MHz * Debugger:        Lauterbach Trace32 *                  PeMicro USB-ML-PPCNEXUS * Target:          internal_FLASH (debug mode, release mode) * EVB connection:  Connect jumpers J15 and J16 on motherboard *                    Connect P14 H to P15 H *                    Connect P14 L to P15 L * ******************************************************************************** General Re: Example MPC5748G-FlexCAN_with_interrupts S32DS_1.0 Thank you, It works Best regards Re: Example MPC5748G-FlexCAN_with_interrupts S32DS_1.0 Hello, if you want FlexCAN example based on SDK, this is directly included in S32 Design Studio. If you want to use this one. you can simply create new project and manually migrate source codes or you can try to use following tutorial https://community.nxp.com/docs/DOC-335361  Regards, Martin Re: Example MPC5748G-FlexCAN_with_interrupts S32DS_1.0 Hello martinkovar, Do you have any updated version of this example to work with the SDK or new version of compiler? If not, could you please tell me what should I do to get this example to work on R1.2017? Thank you so much Re: Example MPC5748G-FlexCAN_with_interrupts S32DS_1.0 Hello, Do you have the example with DMA enabled on FlexCAN? Thanks, Xiaofeng Re: Example MPC5748G-FlexCAN_with_interrupts S32DS_1.0 Hello, which version of S32DS you use? If you recompiled this in S32DS v1.2 or R1.2017, it would not work correct, because there are some significant changes in compiler. Regards, Martin Re: Example MPC5748G-FlexCAN_with_interrupts S32DS_1.0 Hi,I download your code,it can run,but i have some problems when debug it. when i debug it ,it would go to dummy interruption function。like below picture, then,i press the F5(step into),it will enter main() function.like below; I'm confused, why it's not the first to go into main () function. Thank you . Regards, YSl
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NXP Technology Days - 杭州 - 2016年8月11日 <meta http-equiv="Content-Type" content="text/html; charset=utf-8" /> デザイン、ソフトウェア、サービス APF-DES-T2274 - KinetisのKWおよびスレッド  APF-DES-T2229 - Kinetis 新製品、KE+、K8x &KL8xの  APF-DES-T2226 - コネクティビティの RF 性能を改善  セキュアなコネクテッド&自動運転車 APF-AUT-T2295 - ハンズオンワークショップ:新しいPMSMをステップバイステップでチューニングする方法  セキュアなモバイル、ヘルスケア、ウェアラブル APF-MHW-T2232 - ウェアラブル用LPC541xx  スマートマシナリー&インダストリアルオートメーション APF-SMI-T2225 - 産業用および医療用モーションセンサー
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Adding the debug message between SD/eMMC device and host in u-boot. Sometimes you encoutner thisSD/eMMC issue ,"Card did notrespond to voltage select! ". You could add debug message to see the communication between SD/eMMC and host. #define  DEBUG #define CONFIG_MMC_TRACE  & add debug message in mmc.c (driver/mmc) int mmc_send_cmd(struct mmc *mmc, struct mmc_cmd *cmd, struct mmc_data *data) { .. printf("CMD_SEND:%d\n",cmd->cmdidx); printf("\t\tARG\t\t\t0x%08X\n", cmd->cmdarg); .. } => mmcinfo CMD_SEND:0                ARG                     0x00000000             MMC_RSP_NONE CMD_SEND:8 ARG                     0x000001AA           MMC_RSP_R1,5,6,7        0x00000001 CMD_SEND:55 ARG                     0x00000000 MMC_RSP_R1,5,6,7         0x00000001 CMD_SEND:0 ARG                     0x00000000 MMC_RSP_NONE
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NXP Technology Days - 広州 - 2016年9月22日 <meta http-equiv="Content-Type" content="text/html; charset=utf-8" /> デザイン、ソフトウェア、サービス APF-DES-T2274 - KinetisのKWおよびスレッド  APF-DES-T2229 - Kinetis 新製品、KE+、K8x &KL8xの  APF-DES-T2226 - コネクティビティの RF 性能を改善  セキュアなモバイル、ヘルスケア、ウェアラブル APF-MHW-T2232 - ウェアラブル用LPC541xx  スマートマシナリー&インダストリアルオートメーション APF-SMI-T2225 - 産業用および医療用モーションセンサー
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AMF-DES-T2412 - Cog Systems: Introducing D4 Secure SDK - Leverage Virtualization to Build Your Secure Connected Devices At Cog Systems, our sole objective is to both build and enable the world’s most secure connected devices. We provide the right foundations for you to build products that provide inherent security, performance, enable reuse, and flexibility needed to support next gen apps while also reducing build cost. We'll look at our system’s toolkit known as D4 Secure SDK. D4 provides key capabilities such as a type-1 hypervisor, various OS, RTOS support, secure boot frameworks, virtual drivers, and packages components such as VPN and secure storage so that you can quickly enhance or build new secure connected device products. Apply this toolkit to an NXP i.MX 6 applications processor based platform for constructing an auto domain/gateway controller and an infotainment system that combines multiple OS and real-time elements with a strong security posture. At Cog Systems, our sole objective is to both build and enable the world’s most secure connected devices. We provide the right foundations for you to build products that provide inherent security, performance, enable reuse, and flexibility needed to support next gen apps while also reducing build cost. We'll look at our system’s toolkit known as D4 Secure SDK. D4 provides key capabilities such as a type-1 hypervisor, various OS, RTOS support, secure boot frameworks, virtual drivers, and packages components such as VPN and secure storage so that you can quickly enhance or build new secure connected device products. Apply this toolkit to an NXP i.MX 6 applications processor based platform for constructing an auto domain/gateway controller and an infotainment system that combines multiple OS and real-time elements with a strong security posture.
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FRDMKL25-P3115 - Example project in KDS 3.0.2 using KSDK 2.0 Hi Everyone, In this document I would like to present a simple example code I created for the FRDMKL25-P3115 kit using the KDS 3.0.2 and KSDK 2.0. I will not cover the Sensor Toolbox – CE and Intelligent Sensing Framework (ISF) which primarily support this kit. The FreeMASTER tool is used to visualize both the pressure/altitude and temperature data that are read from the MPL3115A2 using an interrupt technique through the I 2 C interface. This example illustrates: 1. Initialization of the MKL25Z128 MCU (mainly PORT and I 2 C modules). 2. I 2 C data write and read operations. 3. Initialization of the MPL3115A2. 4. Output data reading using an interrupt technique. 5. Conversion of the output values from registers 0x01 – 0x05 to real values in Pascals/meters and °C 6. Visualization of the calculated values in the FreeMASTER tool. 1. As you can see in the FRDMSTBC-P3115 schematic and the image below, with jumpers J7 and J8 in their default position (2-3), the I 2 C signals are routed to the I2C1 module (PTC1 and PTC2 pins) of the KL25Z MCU. The INT1 output is connected to the PTA5 pin and configured as push-pull active-low output, so the corresponding PTA5 pin configuration is GPIO with an interrupt on falling edge. The configuration is done in the BOARD_InitPins() function. void BOARD_InitPins(void) {     CLOCK_EnableClock(kCLOCK_PortC);                                            /* Port C Clock Gate Control: Clock enabled */     CLOCK_EnableClock(kCLOCK_I2c1);                                             /* I2C1 Clock Gate Control: Clock enabled */     PORT_SetPinMux(PORTC, PIN1_IDX, kPORT_MuxAlt2);                             /* PORTC1 (pin 56) is configured as I2C1_SCL */     PORT_SetPinMux(PORTC, PIN2_IDX, kPORT_MuxAlt2);                             /* PORTC2 (pin 57) is configured as I2C1_SDA */     CLOCK_EnableClock(kCLOCK_PortA);                                            /* Port A Clock Gate Control: Clock enabled */     PORT_SetPinMux(PORTA, PIN5_IDX, kPORT_MuxAsGpio);                           /* PORTA5 (pin 31) is configured as PTA5 */     PORT_SetPinInterruptConfig(PORTA, PIN5_IDX, kPORT_InterruptFallingEdge);    /* PTA5 is configured for falling edge interrupts */     NVIC_EnableIRQ(PORTA_IRQn);                                                 /* Enable PORTA interrupt on NVIC */ } 2. The 7-bit I 2 C address of the MPL3115A2 is a fixed value 0x60 (defined in the MPL3115A2.h file) which translates to 0xC0 for a write and 0xC1 for a read. As mentioned before, the SCL line is connected to the PTC1 pin and SDA line to the PTC2 pin. The I 2 C clock frequency is 100 kHz. The I2C_Init() function is used to enable and configure the I2C1 module. void I2C_Init(void) {     i2c_master_config_t config = {     .enableMaster = true,     .enableStopHold = false,     .enableHighDrive = false,     .baudRate_Bps = 100000,     .glitchFilterWidth = 0      };     I2C_MasterInit(I2C1, &config, 24000000U);     I2C_MasterTransferCreateHandle(I2C1, &p_handle, i2c_master_callback, NULL); } The screenshot below shows the write operation which writes the value 0x39 to the CTRL_REG1 register (0x26). Here is a burst read of 5 bytes from registers 0x01 to 0x05. It also shows how the INT1 pin is automatically deasserted by reading the output registers. 3. At the beginning of the initialization, all MPL3115A2 registers are reset to their default values by setting the RST bit of the CTRL_REG1 register. The DRDY interrupt is enabled and routed to the INT1 pin that is configured to be a push-pull, active-low output. Further, the OSR ratio of 128 is selected and finally the part goes into Active barometer (eventually altimeter) mode. void MPL3115A2_Init (void) {     I2C_WriteRegister(I2C1, MPL3115A2_I2C_ADDRESS, CTRL_REG1, 0x04);               /* Reset all registers to POR values */     Pause(0xC62);          // ~1ms delay     I2C_WriteRegister(I2C1, MPL3115A2_I2C_ADDRESS, PT_DATA_CFG_REG, 0x07);         /* Enable data flags */     I2C_WriteRegister(I2C1, MPL3115A2_I2C_ADDRESS, CTRL_REG3, 0x00);               /* Push-pull, active low interrupt */     I2C_WriteRegister(I2C1, MPL3115A2_I2C_ADDRESS, CTRL_REG4, 0x80);               /* Enable DRDY interrupt */     I2C_WriteRegister(I2C1, MPL3115A2_I2C_ADDRESS, CTRL_REG5, 0x80);               /* DRDY interrupt routed to INT1 - PTA13 */     I2C_WriteRegister(I2C1, MPL3115A2_I2C_ADDRESS, CTRL_REG1, 0x39);               /* Active barometer mode, OSR = 128 */     //I2C_WriteRegister(I2C1, MPL3115A2_I2C_ADDRESS, CTRL_REG1, 0xB9);             /* Active altimeter mode, OSR = 128 */ } 4. In the ISR, only the interrupt flag is cleared and the DataReady variable is set to indicate the arrival of new data. void PORTA_IRQHandler(void) {     PORT_ClearPinsInterruptFlags(PORTA, 1<<5);                /* Clear the interrupt flag */     DataReady = 1; } 5. In the main loop, the DataReady variable is periodically checked and if it is set, both pressure (eventually altitude) and temperature data are read and then calculated. if (DataReady)                  /* Is a new set of data ready? */ {     DataReady = 0;     I2C_ReadMultiRegisters(I2C1, MPL3115A2_I2C_ADDRESS, OUT_P_MSB_REG, RawData, 5);                      /* Read data output registers 0x01-0x05 */     /* Get pressure, the 20-bit measurement in Pascals is comprised of an unsigned integer component and a fractional component.     The unsigned 18-bit integer component is located in OUT_P_MSB, OUT_P_CSB and bits 7-6 of OUT_P_LSB.     The fractional component is located in bits 5-4 of OUT_P_LSB. Bits 3-0 of OUT_P_LSB are not used. */     Pressure = (float) (((RawData[0] << 16) | (RawData[1] << 😎 | (RawData[2] & 0xC0)) >> 6) + (float) ((RawData[2] & 0x30) >> 4) * 0.25;     /* Get temperature, the 12-bit temperature measurement in °C is comprised of a signed integer component and a fractional component.     The signed 8-bit integer component is located in OUT_T_MSB. The fractional component is located in bits 7-4 of OUT_T_LSB.     Bits 3-0 of OUT_T_LSB are not used. */     Temperature = (float) ((short)((RawData[3] << 😎 | (RawData[4] & 0xF0)) >> 4) * 0.0625;     /* Get altitude, the 20-bit measurement in meters is comprised of a signed integer component and a fractional component.     The signed 16-bit integer component is located in OUT_P_MSB and OUT_P_CSB.     The fraction component is located in bits 7-4 of OUT_P_LSB. Bits 3-0 of OUT_P_LSB are not used */     //Altitude = (float) ((short) ((RawData[0] << 😎 | RawData[1])) + (float) (RawData[2] >> 4) * 0.0625; } 6.  The calculated values can be watched in the Debug perspective or in the FreeMASTER application. To open and run the FreeMASTER project, install the FreeMASTER 2.0 application and FreeMASTER Communication Driver. Attached you can find the complete source code written in the KDS 3.0.2 including the FreeMASTER project. If there are any questions regarding this simple application, do not hesitate to ask below. Your feedback or suggestions are also welcome. Best regards, Tomas Pressure Sensors
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Automotive Magnetic Sensors Demo The Automotive Magnetic Sensors demo will showcase the use of Rotational Wheel Speed Sensors for car ABS and Angular Sensors for Electric Throttle Control (ETC) as well as for Steering Angle measurement.     Features: NXP supplies magnetic sensors for rotational wheel speed and true angular measurement systems: ABS speed sensors with simple ferrites instead of expensive rare earth magnets, and with best in class jitter performance required for iTPMS, Angular sensors with outstanding accuracy of ±1˚ over full temp range and lifetime while operating in a wide temperature range up to 160 °C/320 °F. _______________________________________________________________________________________________________     Featured NXP Products: Sensors for Automotive|NXP _______________________________________________________________________________________________________     S01 Automotive
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Datapath Software Acceleration using DPAA 2.0 This demo shows AIOP based data path offload for some of the popular Network Functions: IP Forward, IPSec, Netflow and Open Flow     Features: The Data path offload software is 'C' program running in the AIOP and provides control interface at the GPP for integrating with the GPP based control stack. The demonstration shows functionality of the above mentioned popular network applications live in the pedestal. Performance demonstration of the above mentioned popular network applications using remote setup. This implementation uses AIOP hardware accelerators – Table Lookup Unit, Statistics Engine,Timer Manager, Security Engine, Parser, CDMA/FDMA.   _______________________________________________________________________________________________________   Featured NXP Products: QorIQ Processors Based on ARM Technology|NXP QorIQ LS2085A Communication Processors|NXP _______________________________________________________________________________________________________     N09 Communications Infrastructure
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使用 CodeWarrior for ARMv8 调试 U-boot 和 Linux 内核并启动裸板 <meta http-equiv="Content-Type" content="text/html; charset=utf-8" /> 本文档以LS1043ARDB为例介绍如何使用CodeWarrior for ARMv8连接裸板进行flash编程,以及如何在QorIQ LS ARM 64位目标板上使用attaching方式调试u-boot和Linux Kernel。 文档中用到了CodeWarrior for ARMv8的一些新特性,因此需要下载最新的CodeWarrior Networked Application Suite v2016.01并安装CodeWarrior for ARMv8。   1. CodeWarrior 连接到裸板进行 Flash 编程   2. 使用 CodeWarrior 为 ARMv8 调试 u-boot   3. 通过连接运行的 U-boot 来调试 Linux 内核 概述 回复:使用 CodeWarrior for ARMv8 调试 U-boot 和 Linux 内核并启动裸板 <meta http-equiv="Content-Type" content="text/html; charset=utf-8" /> 显然,当我之前尝试这样做时,我并没有想清楚。.bin文件不是ELF格式,当然无法识别。构建输出不提供带有 .elf 的文件扩展名;然而,u-boot 文件(没有扩展名)是 ELF 格式,并且被识别为 u-boot 文件。 现在,如果我能弄清楚为什么在尝试调试 U-Boot 时与 CW TAP 的连接失败(我的裸机程序没有任何问题......
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AMF-AUT-T1813 - Trends in Vehicle Architectures With the very public hacks of some major vehicle brands in 2015, there is a renewed focus on vehicle security. There is a large range of vehicle electrical architectures, with significant regional variations, but there is an acceleration towards a domain orientated secure network. This presentation will look at the growing importance of the central gateway in a world of increased connectivity and security. As Ethernet becomes more prevalent, the topic of IP routing & firewall will be introduced and its role in adding another security layer. Finally, the role of the central gateway in enabling OTA software updated beyond the telematics unit, to the entire network will be presented.   With the very public hacks of some major vehicle brands in 2015, there is a renewed focus on vehicle security. There is a large range of vehicle electrical architectures, with significant regional variations, but there is an acceleration towards a domain orientated secure network. This presentation will look at the growing importance of the central gateway in a world of increased connectivity and security. As Ethernet becomes more prevalent, the topic of IP routing & firewall will be introduced and its role in adding another security layer. Finally, the role of the central gateway in enabling OTA software updated beyond the telematics unit, to the entire network will be presented.  
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NXP - i.MX 最新 NPI 紹介_非 NDA .pdf <meta http-equiv="Content-Type" content="text/html; charset=utf-8" /> <meta http-equiv="Content-Type" content="text/html; charset=utf-8" />
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