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The patches are based on iMX53 L2.6.35_ER1109 BSP. In default linux BSP, the followed two pathes were supported in kernel driver mxc_v4l2_capture.c: CSI->IC->MEM CSI->MEM After appied these two patches, it can support the followed path: CSI->VDI->IC->MEM In this mode, the VDI de-interlace will be handled on the fly, so the whole system bandwidth will be reduced. Limitations: 1. Since the IC can only output resolution up to 1024*1024, so this is the limation on output. 2. Only VDI motion mode 2 was supported. mxc_v4l2_tvin_vdi_ic.zip: It is the test aplication, test command: "./mxc_v4l2_tvin.out -ol 0 -ot 0 -ow 800 -oh 480 -i 2" "-i 2" means CSI->VDI->IC->MEM path.
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Some customers often use LVDS LCD with low resolution on i.MX6 platform, such as 320x240, but by defualt , linux bsp doesn't support low frequency pixel clock for LVDS module input. Question:     When we port LVDS LCD with 320x240 resolution to android4.2.2, we found pixel clock is not correct, it always output 38.9MHz, it is no probem for big resolution , for example 1024x768, but the clock we need for 320x240 LCD is 6.4MHz.     According to the quesiton, Let us check IPU & LDB clock in i.MX6 datasheet at first : From above table, if ldb clock is from IPU, we will not get 6.4MHz pixel clock, so we will have to adjust its source clock: The following steps are procedure that ports LVDS LCD with 320x240 resolution to i.MX6Q. 1. Adding LVDS LCD timing structure to ldb.c static struct fb_videomode ldb_modedb[] = { {       "LDB-XGA", 60, 320, 240, 155914,       38, 20,       15, 4,       30, 3,       0,       FB_VMODE_NONINTERLACED,       FB_MODE_IS_DETAILED, }, {      "LDB-1080P60", 60, 1920, 1080, 7692,      100, 40,      30, 3,      10, 2,      0,      FB_VMODE_NONINTERLACED,      FB_MODE_IS_DETAILED,}, }; 2.Modifying clock source of ldb module Checking /arch/arm/mach-mx6/clock.c, we can find there are 3 ldb's clock source : &pll5_video_main_clk, &pll2_pfd_352M, &pll2_pfd_400M, static int _clk_ldb_di1_set_parent(struct clk *clk, struct clk *parent) {        u32 reg, mux;        int rev = mx6q_revision();        reg = __raw_readl(MXC_CCM_CS2CDR)               & ~MXC_CCM_CS2CDR_LDB_DI1_CLK_SEL_MASK;        mux = _get_mux6(parent, &pll5_video_main_clk,               &pll2_pfd_352M, &pll2_pfd_400M,               (rev == IMX_CHIP_REVISION_1_0) ?                &pll3_pfd_540M :       /* MX6Q TO1.0 */                &mmdc_ch1_axi_clk[0],     /* MX6Q TO1.1 and MX6DL */               &pll3_usb_otg_main_clk, NULL);        reg |= (mux << MXC_CCM_CS2CDR_LDB_DI1_CLK_SEL_OFFSET);        __raw_writel(reg, MXC_CCM_CS2CDR);        return 0; } By default, pll2_pfd_352M is configured as the clock source of ldb: clk_set_parent(&ldb_di0_clk, &pll2_pfd_352M);        clk_set_parent(&ldb_di1_clk, &pll2_pfd_352M); We should change the clock source to be pll5_video_main_clk clk_set_parent(&ldb_di0_clk, &pll5_video_main_clk,);        clk_set_parent(&ldb_di1_clk, &pll5_video_main_clk,); 3. Configuring initial clock in board-mx6q_sabresd.c static struct ipuv3_fb_platform_data sabresd_fb_data[] = {        { /*fb0*/        .disp_dev = "ldb",        .interface_pix_fmt = IPU_PIX_FMT_RGB666,        .mode_str = "LDB-XGA",        .default_bpp = 16,        .int_clk = false,        .late_init = false, } int_clk=false means LDB clock is from PLL2_PFD_352 or pll5_video_main_clk; int_clk=true mean LDB clock if from IPU. OK, after doing above steps, LVDS LCD with low resolution should normally work. Freescale TICS team Weidong.sun 2015-08-18
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The attached is the document and sample code for iMX5 system 80 interface LCD driver based on IPUV3. It is based on iMX51 2.6.31_09.12 BSP (SDK 1.7), tested on iMX53 3-Stack board. 1. Description This is Smartlcd driver for Freescale MX51 SDK1.7 release. (Kernel: 2.6.31_09.12.00/01)  2. File List -- Smartlcd_giantplus_4_IMX51_Linux_2.6.31_09.12.01.patch: SmartLCD panel support patch, and unit test code. -- Sample.config: the config file for reference. -- readme.txt: this file, please refer to it before use the package. -- SmartLCD Structure.pptx: the basic structure for smartlcd on IPUv3. 3. Requirement - MX51_3DS Green board(TO2.0) - No hardware rework needed, only need plug the giantplus GMA722A0 to J10. - MX51 SDK1.7 release package - L2.6.31_09.12.00_SDK_source.tar.gz                                - redboot_200952.zip 4. How to use 4.1 How to use demo -- Program default redboot.bin to board via ATKtools -- Copy attached zImage to tftp folder (assume /tftpboot) -- extract default rootfs to NFS folder (assume /nfsroot) -- COPY attached imx51_fb_test to ~/unit_test folder. -- Power on the board -- After redboot is boot up, use following command to boot up linux kernel    load -r -b 0x100000 zImage    exec -c "noinitrd console=ttymxc0 root=/dev/nfsroot rootfstype=nfsroot nfsroot=10.192.225.221:/nfsroot/rootfs rw ip=dhcp" -- Once the linux kernel launched, run following commands to test smartlcd panel.    cd /unit_tests    ./imx51_fb_test 4.2 How to use source code -- Current release code is based on L2.6.31_09.12.00_SDK_source.tar.gz. Extract the file to your working folder. -- Entering the working folder and type "./install", select a folder to install ltib. (such as .../ltib) -- Entering ltib folder and type "./ltib" to build Linux platform.  If you are not familiar with this setp, please refer to doc "i.MX_3Stack_SDK_UserGuide.pdf" for detail. -- Entering folder ".../ltib/rpm/BUILD/linux", copy "Smartlcd_giantplus_4_IMX51_Linux_2.6.31_09.12.01.patch" from release package to current folder    Run command "patch -p1 < Smartlcd_giantplus_4_IMX51_Linux_2.6.31_09.12.01.patch" -- When complete, run command "make ARCH=arm menuconfig", and you can refer to attached sample.config for detail.    * enable    Device Drivers ----> Graphics support ----> [*]   Asynchronous Panels                                            ----> [*] GiantPlus 240x320 Panel                                             * disable    Device Drivers ----> Graphics support ----> [ ]   Synchronous Panel Framebuffer                                         ----> Multimedia support    ----> [ ]   Video For Linux                                             -- Run command "make ARCH=arm" to build kernel.  4.3 How to do SMARTLCD driver test -- After Smartlcd_giantplus_4_IMX51_Linux_2.6.31_09.12.01.patch applied, there will be an folder "IMX51_TEST" under linux. -- Go to that folder, and run "make ARCH=arm", imx51_fb_test will be created. -- Copy imx51_fb_test to rootfs/unit_test. and run. 5. History N/A 6. Known Issue -- V4L2 not working yet.
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There are several vulnerabilities been found recently as below: ZIMPERIUM’s report: http://jiveon.jivesoftware.com/mpss/c/7gA/PDcDAA/t.1p4/5z0zjG0pTd2TX1EnZDdFDQ/h3/hAMy2Th8Lsdoz-2BI-2B-2B4FlQpxshE-2Fm9XH3UWXhoYdrt6y4Crt0q1GUsW8pizm7YGWnxGc52SR4U4vCgooHeqoe1S9fu9dc4l1m2ew0Kz-2BSCbA-3D     They are reported as CVE-2015-1538, CVE-2015-1539, CVE-2015-3824, CVE-2015-3826, CVE-2015-3827, CVE-2015-3828 and CVE-2015-3829.   Trendmicro’s  report:http://blog.trendmicro.com/trendlabs-security-intelligence/trend-micro-discovers-vulnerability-that-renders-android-devices-silent/   All above vulnerabilities are related with stagefright’s stackoverflow, which exist all android version since JellyBean 4.2. The stagefright is the default Multimedia framework in Android’s AOSP source code.   To avoid attacking toward stagefright, it is recommended to have patches in this attach, which should be applied to myandroid/frameworks/av.   Reference: https://github.com/WhisperSystems/TextSecure/issues/381   This document was generated from the following discussion: Android vulnerability related with stagefright   Created by Hui Fang
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It is based on L3.0.35_GA4.1.0 BSP.   In default Linux BSP, there are 3 kinds of de-interlace mode, motion =0,1,2 mode, motion mode 0 and 1 will use three fields for de-interlace, and motion mode 2 wil use one field for de-interlace, so the whole fps is 30. In this mode, for motion mode 0 and 1, field 1,2,3 was used for first VDI output frame of display; and field 3,4,5 was used for second VDI output frame of display; field 5,6,7 was used for third VDI output frame of display. One field data (such as 2,4,6) was used only once, so there is data lost.   After applied these patches, the VDI de-interlace output will be 60fps: for motion mode 0 and 1, field 0,1,2 was used for first VDI output frame of display; and field 1,2,3 was used for second VDI output frame of display; field 2,3,4 was used for third VDI output frame of display. So all field data will be used twice, there is no video data lost, the VDI quality was improved.   Kernel patches: 0001-Add-MEM-to-VDI-to-MEM-support-for-IPU.patch 0002-Add-IPU-IC-memcpy-support.patch 0003-IPU-VDI-support-switch-odd-and-even-field-in-motion-.patch 0004-IPU-VDI-correct-vdi-top-field-setting.patch   mxc_v4l2_tvin_imx6_vdi_60fps.zip: this is the test application sample code.   Test commands, parameter "-vd" means double fps VDI: ./mxc_v4l2_tvin.out -ol 0 -ot 0 -ow 720 -oh 480 -m 0 -vd  
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The document includes the following contents: (1)document how to port ov5646 to android jb4.2.2 (2) ov5645 driver for Linux 3.0.35 (3) ov5645 schematic based on i.MX6Q/DL (4)ov5645 for android camera HAL   [Note:]      P5V29A-0JG is a camera module based on OV5645, and PAO532-0JG is based on OV5640, both manufactured by NINGBO SUNNY OPOTECH CO.LTD (China), If customer wants to use them on i.MX6 platform, can send me email to ask for datasheets of P5V29A & PAO532 , or discuss corresponding questions on porting.   Email: [email protected]
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For iMX6DQ, there are two IPUs, so they can support up to 4 cameras at the same time. But the default BSP can only support up to two cameras at the same time.     The attached patch can make the BSP support up to 4 cameras based on 3.10.53 GA 1.1.0 BSP.   The 4 cameras can be: - 1xCSI, 3xMIPI - 2xCSI, 2xMIPI - 4xMIPI   For 4xMIPI case, the four cameras should be combined on the single MIPI CSI2 interface, and each camera data should be transfered on a mipi virtual channel.   In this patch, we given the example driver for Intersil ISL79985. The input to ISL79985 is four CVBS camera. There are four patches: 0001-IPU-update-IPU-capture-driver-to-support-up-to-four-.patch      Updated IPU common code to support up to four cameras.   0002-Add-Intersil-ISL79985-MIPI-Video-Decoder-Driver-for-.patch      ISL79985 driver, which can support both 1 lanes and 2 lanes mode.   0003-Remove-the-page-size-align-requirement-for-v4l2-capt.patch      With this patch, the mxc_v4l2_tvin test application can use overlay framebuffer as V4l2 capture buffer directly.   0004-IPU-CSI-Drop-1-2-frame-on-MIPI-interface-for-interla.patch      This patch is option, it will drop one field data, so for each camera, the input will be 720*240 30 FPS.   For 720P HD solution, it is based on Maxim MAX9286: iMX6DQ MAX9286 MIPI CSI2 720P camera surround view solution for Linux BSP   How to builld the kernel with ISL79985 support:       make imx_v7_defconfig       make menuconfig (In this command, you should select the ISL79985 driver:             Device Drivers  --->                   <*> Multimedia support  --->                         [*]   V4L platform devices  --->                               <*>   MXC Video For Linux Video Capture                                       MXC Camera/V4L2 PRP Features support  --->                                           <*>Intersil ISL79985 Video Decoder support                                           <*>mxc VADC support                                           <*>Select Overlay Rounting (Queue ipu device for overlay library)                                           <*>Pre-processor Encoder library                                           <*>IPU CSI Encoder library)       make zImage       make dtbs   The built out image file:       arch/arm/boot/dts/imx6q-sabresd.dtb       arch/arm/boot/zImage   "mxc_v4l2_tvin.zip" is the test application, test command to capture the four cameras and render on 1080P HDMI display: /mxc_v4l2_tvin.out -ol 0 -ot 0 -ow 960 -oh 540 -d 1 -x 0 -g2d & /mxc_v4l2_tvin.out -ol 960 -ot 0 -ow 960 -oh 540 -d 1 -x 1 -g2d & /mxc_v4l2_tvin.out -ol 0 -ot 540 -ow 960 -oh 540 -d 1 -x 2 -g2d & /mxc_v4l2_tvin.out -ol 960 -ot 540 -ow 960 -oh 540 -d 1 -x 3 -g2d &   2015-10-10 Update: Updated the test application "mxc_v4l2_tvin_isl79985.tar.gz" to fix the Yocto build errors. Updated ISL79985 register setting "page5, isl79985_write_reg(0x07, 0x46)" in patch "0002-Add-Intersil-ISL79985-MIPI-Video-Decoder-Driver-for-.patch", which can fix the green line issue.   2016-01-25 Update: Added de-interlace support, L3.10.53_ISL79985_Surroundview_Patch_20160125.tar.gz New test capplication for de-interlance: mxc_v4l2_tvin_isl79985_vdi_20160125.tar.gz New test commands: /mxc_v4l2_tvin.out -ol 0 -ot 0 -ow 960 -oh 540 -d 1 -x 0 -g2d -m & /mxc_v4l2_tvin.out -ol 960 -ot 0 -ow 960 -oh 540 -d 1 -x 1 -g2d -m & /mxc_v4l2_tvin.out -ol 0 -ot 540 -ow 960 -oh 540 -d 1 -x 2 -g2d -m & /mxc_v4l2_tvin.out -ol 960 -ot 540 -ow 960 -oh 540 -d 1 -x 3 -g2d -m &   Note:  with the 0005-Add-interlaced-mode-capture-for-ISL79985.patch, the V4l2 capture driver will return 720x480 video size, but only odd lines have the video data, they are filled in line skip line mode.     2016-11-21 Update: Added ISL79987 support, L3.10.53_ISL7998x_Surroundview_Patch_20161121.zip New test capplication for de-interlance support: mxc_v4l2_tvin_isl7998x.tar.gz   Test commands (without de-interlace): /mxc_v4l2_tvin.out -ol 0 -ot 0 -ow 960 -oh 540 -d 1 -x 0 -g2d & /mxc_v4l2_tvin.out -ol 960 -ot 0 -ow 960 -oh 540 -d 1 -x 1 -g2d & /mxc_v4l2_tvin.out -ol 0 -ot 540 -ow 960 -oh 540 -d 1 -x 2 -g2d & /mxc_v4l2_tvin.out -ol 960 -ot 540 -ow 960 -oh 540 -d 1 -x 3 -g2d &   Test commands (with de-interlace, for ISL79987 only): /mxc_v4l2_tvin.out -ol 0 -ot 0 -ow 960 -oh 540 -d 1 -x 0 -m 1 -g2d & /mxc_v4l2_tvin.out -ol 960 -ot 0 -ow 960 -oh 540 -d 1 -x 1 -m 1 -g2d & /mxc_v4l2_tvin.out -ol 0 -ot 540 -ow 960 -oh 540 -d 1 -x 2 -m 1 -g2d & /mxc_v4l2_tvin.out -ol 960 -ot 540 -ow 960 -oh 540 -d 1 -x 3 -m 1 -g2d &     Now the same patch can support both ISL79985 and ISL79987, with NTSC CVBS camera, for ISL79985, it captures 60fps 720*240; for ISL79987, it captures 30fps 720*480.   2016-11-22 Update: Added patch for L4.1.15 BSP, it supports both ISL79985 and ISL79987, L4.1.15_ISL7998x_Surroundview_Patch_20161122.zip Test capplication mxc_v4l2_tvin_isl7998x.tar.gz is re-used.
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The document will introduce all steps for poring WM8960 audio codec to freescale android4.2.2 BSP. Attachments include : (1)Document for porting (2)Codec driver : wm8960.c (3)Machine driver: imx-wm8960.c (4)wm8960 schematic for reference (5)Android Audio HAL: config_wm8960.h (6)schematic: MX6QDL-PIANO-CNFV1.DSN (7)i.MX6DL BSP files mx6dl_piano.c mx6dl_piano.h mx6dl_piano_pmic_pfuse100.c (8)i.MX6Q BSP files mx6q_piano.c mx6q_piano.h mx6q_piano_pmic_pfuse100.c   Freescale TICS Team Weidong.sun
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There developed the controller uses i.MX53 + Linux. Has developed a solution for building distributed information and control systems. Prototmpy been in operation for over a year. Examples: - Control Electromagnetic stirring (mixer) http://ontecom.com/en/catalog/ems / Rusal, Krasnoyarsk. - Moniroring and management of pumping stations. - Monitoring and control of climate control systems. You can create a smart home systems and iot. There is experience with PLC (Power Line Communication) Qualcomm/Atheros. In my spare time I develop a budget solution for PLC (Power Line Communication) control / monitoring components smart home. Based on the standard IEC 61131-3 developed software - distributed information management system. The solution is cross-platform. In a single system may be computers of different architectures and various operating systems. Such signals are synchronized controller ARM / Linux, and x86 server (Win, Linux, VMS, ...) Uses wxWidgets. Articles on this subject is, but in Russian.
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i.MX6UL Hardware design checklist v0.1
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Uploading the i.MX 6 Linux Reference Manual here after being un-able to find it on Google or on i.MX6 product page.
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i.MX6UL OBDS test image
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INTRODUCTION REQUIREMENTS CREATE A NEW PROJECT GPU EXAMPLE GSTREAMER EXAMPLE 1. INTRODUCTION:      The below steps show how to create different application examples using Elipse IDE. 2. REQUIREMENTS:      A fully working image and meta-toolchain generated in Yocto . You can follow the  next training: Yocto Training - HOME      Install and configure the Yocto Eclipse Plug-in. For more details about this requirement please refer to Setting up the Eclipse IDE for Yocto Application Development         To demonstrate the steps, L3.14.28  BSP, fsl-image-qt5 image and i.MX6Q SABRE-SDP board were used. 3. CREATE A NEW PROJECT      Follow the section Creating a Hello World Project of this document Setting up the Eclipse IDE for Yocto Application Development 4. GPU EXAMPLE           For this project we use the source code found in the fsl-gpu-sdk that can be downloaded from:      https://www.freescale.com/webapp/Download?colCode=IMX6_GPU_SDK&location=null&Parent_nodeId=1337637154535695831062&Parent…      Follow section 3 and create a new project named gputest.      From the IMX6_GPU_SDK choose one of the examples of GLES2.0 folder. In this case the 01_SimpleTriangle is chosen.      Copy the .c and .h files to the src directory of the gputest project. The Project Explorer window should look like this:              Add the needed files and libraries to compile and link in the Makefile.am file found in the ´src´ folder. The Makefile.am file should have the below content:          bin_PROGRAMS = gputest          gputest_SOURCES = gputest.c fsl_egl.c fslutil.c          AM_CFLAGS = @gputest_CFLAGS@          AM_LDFLAGS = @gputest_LIBS@ -lstdc++ -lm -lGLESv2 -lEGL -lX11 -ldl          CLEANFILES = *~ ​    Add the PATH to CFLAGS where the compiler will look for the headers at Project->Properties->Autotools->configure:           In this project there is no need to add extra PATHs for the headers. Apply the changes by clicking on Reconfigure Project. Build the project To test the file you can send the executable to the board with:           $ scp gputest root@<board_ip>:/home/root      $./gputest      You should get the next output in the display: 5. GSTREAMER EXAMPLE      For this project we use the source code found at Basic tutorial 1: Hello world! - GStreamer SDK documentation - GStreamer SDK documentation    Follow section 3 and create a new project named Gstreamer.    Copy the code of the basic tutorial to your Gstreamer.c file.    Add the needed files and libraries to compile and link in the Makefile.am file found in the ´src´ folder. The Makefile.am file should have the below content:                           bin_PROGRAMS = Gstreamer      Gstreamer_SOURCES = Gstreamer.c      AM_CFLAGS = @Gstreamer_CFLAGS@      AM_LDFLAGS = @Gstreamer_LIBS@ -lstdc++  -lVDK -lm -lGLESv2 -lGAL -lEGL  -ldl -lgstreamer-0.10 -lgobject-2.0 -lgmodule-2.0 -lgthread-2.0 -lrt -lxml2 -lglib-2.0      CLEANFILES = *~         ​    Add the PATH to CFLAGS where the compiler will look for the headers at Project->Properties->Autotools->configure:           For this example the next lines are added             -I${Sysroot}/usr/include/gstreamer-1.0        -I${Sysroot}/usr/include/glib-2.0        -I${Sysroot}/usr/include/libxml2        -I${Sysroot}/usr/lib/glib-2.0/include      Apply the changes by clicking on Reconfigure Project. Build the project To test the file you can send the executable to the board with:           $ scp Gstreamer root@<board_ip>:/home/root To execute the application on the board:      $./Gstreamer The board should have internet access and the application should play the video found at http://docs.gstreamer.com/media/sintel_trailer-480p.webm
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Measuring only 20mm x 50mm, the DART-MX6 from Variscite is the smallest System-on-Module (SoM) supporting Freescale’s i.MX6 quad and dual core ARM Cortex-A9™ processor. The DART-MX6 offers impressive performance and scalability. Together with optimized power consumption this miniature sized SoM is ideal for portable and battery operated embedded systems. The DART-MX6 highly integrated connectivity includes dual band Wi-Fi/BT with optional MIMO, dual USB, Gigabit Ethernet, PCIe and A/V interfaces. Furthermore, the system supports industrial operating temperatures. Performing as the DART-MX6 carrier board, the VAR-DT6CustomBoard completes an attractive full reference kit, which can be used for customers’ evaluation, development and end-product mass production. Key features of the DART-MX6 include: - Miniature size: 20mm x 50mm x 4mm - Freescale i.MX6 800MHz Quad/Dual ARM Cortex-A9 - Up to 1GB LP-DDR2 and 32GB eMMC - Certified Wi-Fi 802.11 a/b/g/n 2.4/5GHz with optional 2x2 MIMO - Bluetooth 4.0/BLE - Full 1080p video encode/decode capability - Vivante GPU 2D/3D graphics accelerator - Display: 2x LVDS, HDMI1.4, MIPI DSI - 10/100/1000 Mbps Ethernet - USB 2.0: Host, OTG - PCIe - Audio In/Out - Camera inputs: MIPI CSI, parallel - Dual CAN, UART, I2C, SPI - Industrial temperature - OS: Linux Yocto, Android Availability and Pricing: The DART-MX6 SoM and development kits are available now. Email [email protected] or call +972 9 9562910 for more information About Variscite: Variscite is a leading System on Modules (SoM) and Single-Board-Computer (SBC) design and manufacture company. A trusted provider of development and production services for a variety of embedded platforms, Variscite transforms clients’ visions into successful products. Learn more about Variscite, visit www.variscite.com
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This is ov5645 driver and tested with i.MX6 L3.0.35 BSP .  It is modified based on ov5640.c. P.S. The power down function for OV5645 is different from the OV5640. So modify the function in your_board.c like this: static void mx6q_mipi_powerdown(int powerdown) {     if (!powerdown)         gpio_set_value(MIPI_PWDN, 1);     else         gpio_set_value(MIPI_PWDN, 0);     msleep(5); }
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  When considering EIM bursts (performance, burst length, etc) we should take into account, that some parameters (maximum burst length, which defines length in clocks of back-to-back EIM access) depend on master, which performs the access (EIM always service as slave). The EIM can split a master burst in order to meet own settings, but the EIM cannot join two master accesses. So, the maximum  burst length is defined by master.  Usually three options are applied for EIM burst accesses : - ARM block copy instructions (LDM / STM) ; - ARM NEON copy instructions (VLDM / VSTM) ; - i.MX SDMA.   Below are some details regarding these options.   1. ARM. ARM provide recommendations below about the fastest way to copy memory on a Cortex-A8. http://infocenter.arm.com/help/index.jsp?topic=/com.arm.doc.faqs/ka13544.html   According to section 8.1.2 (Supported AXI transfers) of ARM Cortex-A9 Technical Reference Manual, it is possible to get maximum 64 bytes (16 beats x 4 bytes) burst for read and 8 bytes burst for write. “INCR N (N:1-16) 32-bit read transfers INCR N (N:1-2) for 32-bit write transfers” http://infocenter.arm.com/help/topic/com.arm.doc.ddi0388i/DDI0388I_cortex_a9_r4p1_trm.pdf 2. SDMA.   According to section 55.4.3.1 (Burst DMA Unit) of the i.MX6 DQ RM : “Perform up to 8-beat read and write bursts to the ARM platform memory, which optimizes throughput when accessing SDRAM-type devices because of an internal, 36-byte FIFO”. This means, that burst length of the SDMA cannot be greater than 32 bytes (8 beat x 4 bytes). As for performance and implementation of SDMA approach, please look at the following : “Measure SDMA Memory To Memory Copy Performance on i.MX6Q” https://community.freescale.com/docs/DOC-103127
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Here is a BDI3000 config file I used with a SABRE SD board sometimes ago that includes DDR initialization. I had several request on this in the past so I am placing it here in case anyone needs it. Please feel free to comment or update the document according to your own experience and results. Regards Sinan Akman
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Hi All I make fsl-image-qt5 in yocto. make command: $ MACHINE=imx6slevk source fsl-setup-release.sh -b build -e fb $ bitbake fsl-image-qt5 However, I couldn't make meta-toolchin-qt5 in yocto. The error is as follows. > | WARNING: exit code 1 from a shell command. > | ERROR: Function failed: do_configure (log file is located at /opt/yocto_build/yocto_fsl-bsp-imx6slevk/fsl-release-bsp/build/tmp/work/cortexa9hf-vfp-neon-poky-linux-gnueabi/qtdeclarative/5.3.2-r0/temp/log.do_configure.3411) > ERROR: Task 771 (/opt/yocto_build/yocto_fsl-bsp-imx6slevk/fsl-release-bsp/sources/meta-qt5/recipes-qt/qt5/qtdeclarative_5.3.2.bb, do_configure) failed with exit code '1' > NOTE: Tasks Summary: Attempted 1235 tasks of which 1234 didn't need to be rerun and 1 failed. > No currently running tasks (1234 of 3376) > > Summary: 1 task failed: >   /opt/yocto_build/yocto_fsl-bsp-imx6slevk/fsl-release-bsp/sources/meta-qt5/recipes-qt/qt5/qtdeclarative_5.3.2.bb, do_configure > Summary: There was 1 ERROR message shown, returning a non-zero exit code. How do you make toolchain include Qt5?
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This is an example to show how to connect two cameras (with same I2C address) on the i.MX6Q board. In this example, the I2C switch is PCA9543A. Two cameras are OV5640 & OV5645. OV5640 is connected to CSI0, and other one OV5645 is connected to MIPI. The Linux BSP is L3.0.35. In the your_board.c file, add the following for pca954x. static struct pca954x_platform_mode pca954x_modes[] = {      {            .adap_id = 4,            .deselect_on_exit = true,      },      {            .adap_id = 5,            .deselect_on_exit = true,      }, }; static struct pca954x_platform_data pca954x_data = {      .modes = pca954x_modes,      .num_modes = ARRAY_SIZE(pca954x_modes) }; In this example, the I2C switch is connected to i.MX6Q’s I2C0. The I2C address of the PCA9543A is 0x70. static struct i2c_board_info mxc_i2c0_board_info[] __initdata = {      {            I2C_BOARD_INFO("pca9543", 0x70),            .platform_data = (void *)&pca954x_data,      }, }; The channel 0 of PCA9543A is connected to the I2C of OV5645 MIPI. static struct i2c_board_info mux_i2c4_board_info[] __initdata = {      {            I2C_BOARD_INFO("ov5645_mipi", 0x3c),            .platform_data = (void *)&mipi_csi2_data,      }, }; The channel 1 of PCA9543A is connected to the I2C of OV5640 CSI0. static struct i2c_board_info mux_i2c5_board_info[] __initdata = {      {            I2C_BOARD_INFO("ov5640", 0x3c),            .platform_data = (void *)&csi0_camera_data,      }, }; In the board_init function, register the I2C4 and I2C5. i2c_register_board_info(4, mux_i2c4_board_info,                 ARRAY_SIZE(mux_i2c4_board_info)); i2c_register_board_info(5, mux_i2c5_board_info,                 ARRAY_SIZE(mux_i2c5_board_info)); Select the PCA954x driver In kernel configuration In Kernel Configuration, go to Device Drivers --> I2C support --> I2C bus multiplexing support --> Multiplexer I2C Chip support  --> Select <*> Philips PCA954x I2C Mux/switches
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Platform: Ubuntu 12.04 Board: Freescale MCIMX6Q-SDP  and  MCIMX-LVDS1 Screen BSP: L3.0.35_4.1.0_ER_SOURCE_BSP Other device: PC , One Router, 3 Network Cable and 2 usb-otg lines The  platform is as follow: Boot form NFS is very convenient in porting and debugging, and will value us much time. If the customers have modified the kernel and rebuild the kernel to generate the uImage running on board, he can directly download the uImage to the board by TFTP network. It is fast and can avoid the normal operation ,  first customers need to copy the images to the mfgtool specified directory and download the u-boot, uImage and file sytem again to the flash device in board, and then change to boot up mode to boot up the board. If customers are doing debug this operation will waste lot of time. So use the NFS is vey convenient. Beyond this, in the target board customers can also read the files and content in host machine. In a word, use NFS it will help save much time and also convenient. So the follows is introduce and show how to set NFS and then boot up the board. 1 Preparation (1)Build the BSP Build up the L3.0.35_4.1.0_ER_SOURCE_BSP use LTIB on the Ubuntu12.04, you can refer to our user guide document here no details. The u-boot, uImage and file system are all under the directory of litb. Boot up from NFS, so when build uImage some items are needed, here you can see the build details in the section of  Setting Target Linux Image to use NFS in this articel. (2)Download the u-boot to the target board Use the mfgtool Mfgtools-Rel-4.1.0_130816_MX6Q_UPDATER to download the u-boot to the SD card of MCIMX6Q-SDP board or use dd command to write the u-boot to SD card.( By the way, writing to the EMMC is also OK) 2 Setting the NFS Environment Set host machine 1 - Install NFS Service on host typing:     $sudo apt-get install nfs-kernel-server       2 - Create symbolic link to ltib/rootfs     $sudo ln -s <ltib instalation folder>/rootfs /tftpboot/rootfs       3 - Setup exports typing:     $sudo gedit /etc/exports       and add the following line:     /tftpboot/rootfs/ *(rw,no_root_squash,no_subtree_check,async) 4 - Restart the NFS server:     $sudo /etc/init.d/nfs-kernel-server restart       Now the host is ready to use NFS Setting Target Linux Image to use NFS       1. Run LTIB configuration by typing: $cd <ltib instalation folder>       $./ltib -c       2. On first page menu, go to "Target Image Generation -> Options"       3. Select the option NFS only and exit LTIB configuration to compile with the new configuration. 4. LTIB should start new compiling and create a new Linux image on /<ltib instalation folder>/rootfs/boot/uImage      5. Copy the created image on /<ltib instalation folder>/rootfs/boot/uImage to /tftpboot/uImage 6. The system is ready to run with NFS. The root file system on target will be located on host on /<ltib instalation folder>/rootfs/ 3 Setting the u-boot command line (1)Download the u-boot to the target board fist according to the section 1 (2) Download the u-boot to the target board. Then give the power to the board, boot up board, u-boot boot up. (2)Configuration the Network Configure the Network and IP , to make the target board and the host machine IP are in the local area network of Router. (3)Set the u-boot command line As follow is my setting for you to refer to : 4 Boot up the board Running the “run bootcmd” after setting the u-boot parameters then boot up the kernel and file system. We can see that the board download the uImage by the TFTP from host machine, then boot up the kernel and finally mount the NFS in the kernel. As follows is the details: Downloading the uImage success and boot up kernel: Input root and access the system. Test: Create a new file in the host machine directory, you can see in the next picture: Then open the target board, in the terminal go to the same directory  in the unit_test we can see the same name. So as we can see in the above operation we can see it is very convenient and fast use the NFS. It will help save time and speed the development time.
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