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This document describes the Persistent Data Manager (PDM) module which handles the storage of stack context data and application data in Non-Volatile Memory (NVM). For the KW41Z devices, this memory is internal Flash and this document will therefore refer to Flash. Tip: In this document, a cold start refers to either a first-time start or a re-start without memory (RAM) held. A warm start refers to a re-start with memory held (for example following sleep with memory held). 1.    Overview If the data needed for the operation of a network node is stored only in on-chip RAM, this data is maintained in memory only while the node is powered and will be lost during an interruption to the power supply (e.g. power failure or battery replacement). This data includes context data for the network stack and application data. In order for the node to recover from a power interruption with continuity of service, provision must be made for storing essential operational data in Non-Volatile Memory (NVM), such as Flash. This data can then be recovered during a re-boot following power loss, allowing the node to resume its role in the network. The storage and recovery of operational data in KW41Z Flash can be handled using the Persistent Data Manager (PDM) module, as described in the rest of this document, which covers the following topics: Initializing the PDM module - see Section 2 Managing data in Flash - see Section 3 PDM features like record searching by record ID – see Section 4 The PDM can be used with ZigBee PRO and IEEE802.15.4 wireless networking protocols. 2.    Initializing the PDM and Building a File System Using the Kinetis NVM framework requires that the user must register the necessary data sets for NVM writing. This is done by calling function NVM_RegisterDataSet(). This function registers the given data set to be written in the NVM_TABLE section from Flash. The PDM module must be initialized by the application following a cold or warm start, irrespective of the PDM functionality used (e.g. context data storage or counter implementation). PDM initialization is performed using the function PDM_eInitialise(). This function requires the following information to be specified: The number of Flash sectors to be used by PDM (a zero value means use all segments) Once the PDM_eInitialise() function has been called, the PDM module builds a file system in RAM containing information about the sectors that it manages in Flash. The PDM reads the header data from each Flash sector and builds the file system. Application records are grouped and initialized in function InitAplRecords(), while network stack records are grouped and initialized in function InitNwkRecords(). For ZigBee PRO, the PDM is used in its most general form, as described above. 3.    Managing Data in Flash This section describes use of the PDM module to persist data in Flash in order to provide continuity of service when the KW41Z device resumes operation after a cold start or a warm start without memory held. Data is stored in Flash in terms of ‘records’. A record occupies at least one Flash sector but may be larger than a sector and occupy multiple sectors. Any number of records of different lengths can be created, provided that they do not exceed the Flash capacity. The records are created automatically for stack context data and by the application (as indicated in Section 3.1) for application data. Each record is identified by a unique 16-bit value which is assigned when the record is created - for application data, this identifier is user-defined. The stack context data which is stored in Flash includes the following: Application layer data: AIB members, such as the EPID and ZDO state Group Address table Binding table Application key-pair descriptor Trust Centre device table Network layer data: NIB members, such as PAN ID and radio channel Neighbor table Network keys Address Map table On performing a KW41Z cold start or warm start without RAM held, the PDM must be initialized in the application as described in Section 2. If this is the first ever cold start, there will be no stack context data or application data preserved in the Flash. If it is a cold or warm start following previous use (such as after a reset), there should be stack context data and application data preserved in the Flash. On start-up, the PDM builds a file system in RAM and scans the Flash for valid data. If any data is found, it is incorporated in the file system. Saving and recovering application data in Flash are described in the subsections below. 3.1   Saving Data to Flash       Application data and stack context data are saved from RAM to Flash as described below.       Note: During a data save, if the Flash needs to be defragmented and purged, this will be performed automatically resulting in all records being re-saved.     Application data           You should save application data to Flash when important changes have been made to the data in RAM. Application data in RAM can be saved to an individual record           in Flash using the function PDM_eSaveRecordData(). A buffer of data in RAM is saved to a single record in Flash (a record may span multiple Flash sectors).          The records are created when calling PDM_eInitialise(). These records are traced by a unique 16-bit identifier assigned by the application - this identifier is subsequently          used to reference the record. The value used must not clash with those used by the NXP libraries - the ZigBee PRO stack libraries use values above 0x8000.          Subsequently, in performing a re-save to the same record (specified by its 16-bit identifier), the original Flash sectors associated with the record will be overwritten but          only the sector(s) containing data changes will be altered (if no data has changed, no write will be performed). This method of only making incremental saves improves          the occupancy level of the size-restricted Flash.     Stack Context Data          The NXP ZigBee PRO stack automatically saves its own context data from RAM to Flash when certain data items change. This data will not be encrypted. 3.2   Recovering Data from Flash       Application data and stack context data are loaded from the Flash to RAM as described below.     Application Data             During a cold start or a warm start without memory held, once the PDM module has been initialized (see Section 2.2), PDM_eReadDataFromRecord() must be called             for each record of application data in Flash that needs to be copied to RAM.     Stack Context Data             The function PDM_eReadDataFromRecord(), described above, is not used for records of stack context data. Loading this data from the Flash to RAM is handled             automatically by the stack (provided that the PDM has been initialized). 3.3   Deleting Data in Flash         All records (application data and stack context data) in the Flash can be deleted using the function PDM_vDeleteAllDataRecords().          Caution: You are not recommended to delete records of ZigBee PRO stack context data by calling PDM_vDeleteAllDataRecords() before a rejoin of the same secured          network. If these records are deleted, data sent by the node after the rejoin will be rejected by the destination node since the frame counter has been reset on the source          node. For more information and advice, refer to the “Application Design Notes” appendix in the ZigBee 3.0 Stack User Guide. 4.    PDM Features PDM offers a function that can be used to search for a specific record by using the 16-bit record ID. This function is called PDM_GetNVMTableEntry() and the required parameters are the record ID and an output pointer for the found entry. Another available PDM feature is providing a mechanism to safely write the data to NVM. This is done by calling the function PDM_vCompletePendingOperations(), which calls the appropriate NVM function that is used to complete all writings to NVM before any other operation. As an example, user can use this function to make sure that the data is written to the NVM before a reset.
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This Application Note provides guidance on migrating ZigBee 3.0 Base device application designed for the NXP JN516x wireless microcontrollers to the KW41Z with the help of attached PDF.
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This article will describe in detailed steps how to generate, build and test a Bluetooth low energy Heart Rate Sensor project on the FRDM-KW41Z evaluation board by using the Bluetooth Developer Studio (BDS) and the NXP Kinetis BDS Plug-in. Getting Started To use this plug-in and test its output, the following programs are required:  - Bluetooth Developer Studio v1.1.306 or newer: Bluetooth Developer Studio & Plugins | Bluetooth Technology Website   - NXP Semiconductors Kinetis Plug-in v1.0.0: Link  - Kinetis SDK 2.0 with support for MKW41Z and Bluetooth Stack version 1.2.2: Link  - Kinetis SDK 2.0 add-on for BDS (found in the same package as the plug-in)  - Kinetis BLE Toolbox Android or iOS mobile application To enable the NXP Kinetis BDS Plug-in in the Bluetooth Developer Studio, follow please the installation details in the readme.txt document included in the downloaded plug-in archive. Creating the project with BDS Create a new project by clicking FILE-> NEW PROJECT. Add project location, name and namespace as detailed below: Drag and drop an adopted Heart Rate Profile from the right hand side list. Your device should import the following services:   Next step will be to configure the GAP layer. Click on the GAP button. First tab will be the Advertising Data. Enter desired values and check which AD types you want to include in the advertising packets. A bar below will show you how much bytes your data uses. Make sure you do not use more than the 32 bytes available. Next step is to configure the GAP properties. Make sure you check at least one advertising channel and a reasonable advertising interval range, as presented below:     Click TOOLS->GENERATE CODE. Select Server as GATT side to be generated and NXP Semiconductors Kinetis v1.0.0 as the plug-in. BDS will prompt you to enter a location for the exported files. After generating the files, another window with the results log will appear. If no error messages appear, the generation is successful. Check the “Open output location when finished” box and hit the “Finish” button. A folder with the following content will open: Using the generated code Copy the contents inside the following folder:  "<SDK 2.0 installation folder>\middleware\wireless\bluetooth_1.2.2\examples\bds_template_app". To generate the “bds_template_app” embedded project and test it, follow the instructions detailed in the Bluetooth Quick Start Guide document from the SDK. Seeing the application in action Before compiling the application add the following code snippet in app.c inside BleApp_HandleKeys:         case gKBD_EventPressPB2_c:         {             mUserData.cRrIntervals = 0;             mUserData.expendedEnergy = 100;             Hrs_RecordHeartRateMeasurement(service_heart_rate, 120, &mUserData);             break;         } This will allow the board to send heart rate data of 120 bpm while in a connection and when pressing button SW3 on the FRDM-KW41Z board. The value can be seen when using Kinetis BLE Toolbox, as shown below:
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On the KW45 product, there is a way to enable the 32kHz clock without using a crystal externally. Indeed, a FRO32K can be used instead. this article proposes to show you at a glance how to activate it and which performances to expect in comparison to a 32kHz crystal.  This Crystal-Less mode allows to reduce the cost of the system, without compromising the 32 kHz clock accuracy thanks to a software calibration mechanism called SFC standing for Smart Frequency Calibration. One other advantage of the FRO32K is the shorter start up time, including the calibration. The FRO32K clock is calibrated against the 32 MHz RF oscillator through the Signal Frequency Analyzer (SFA) module of KW45. Software enablement: The Crystal-less feature is available since the SDK version 2.12.7 (MR4) , all measurements in this document are done with softwares based on this version of SDK. To enable the Crystal-Less mode, simply define the compilation flag gBoardUseFro32k_d to 1 in board_platform.h or in app_preinclude.h. In this mode, the SFC module measures and recalibrates the FRO32K output frequency when necessary. This typically happens at a Power On Reset, or when the temperature changes, or periodically when the NBU is running. By using this mode, higher power consumption is expected. The FRO32K consumes more power than the XTAL32K in low power mode (around 350nA), and the NBU wakes up earlier while FRO32K is used, which also entails a higher power consumption.   FRO32K vs Xtal32K performances: For these measurements, we used an early FRO32K delivered feature but, even if it is still in experimental phase, the results below will already give you some information.    Clock accuracy at room temperature: laurent_rouzier_0-1718353845555.png    In steady state, the output frequency of the FRO32K is even more stable than that of the XTAL32K thanks to the SFC module. The clock frequency accuracy of the XTAL32K is a bit better than the FRO32K, however, both are within the permitted accuracy range and are compliant with the Bluetooth Low Energy specification. Clock accuracy after recalibration (triggered by a temperature variation): laurent_rouzier_1-1718353845567.png   This test proved that the FRO32K provided a source clock that is within the target accuracy range even during a temperature variation. Throughput test at room temperature: Throughput measurements are performed using two different clock sources to verify if there is any connection lost due to the potential clock drift entailed by using the FRO32K as a clock source. The BLE_Shell demo application is used for the throughput measurement. (refer to KW45-EVK Software Development Kit). The DUT is programmed with software using either the XTAL32K or the FRO32K as the source clock. After the communication establishment, the bit rate measurement is triggered manually, and the result is displayed on the prompt window.  Results: Two clock configurations show identical performance, which proves that the 32 kHz crystal-less mode presents no disconnection and no performance degradation. Throughput test over a temperature variation: it is the same test set up as above but within a 60 °C temperature variation. The results are identical to previous ones. No disconnection or performance degradation is detected. Conclusion Various tests and measurements proved that the FRO32K can be used as the 32 kHz clock source instead of the XTAL32K, with the help of the SFC module. It is capable of providing an accurate and stable 32 kHz clock source that satisfies the requirements of connectivity standards. However, please note that this feature is still in experimental phase, tests are still ongoing to ensure that the feature is robust in any circumstances. Customers who want to enable this feature in production must validate this solution according to their own use cases. For more detailed information, a draft version of the application note is attached to this article but an updated version will be available on NXP.com website when a new SDK is released.
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Overview The Bluetooth specification defines 4 Generic Access Profile (GAP) roles for devices operating over a Low Energy physical transport [1]: Peripheral Central Broadcaster Observer The Bluetooth Low Energy Host Stack implementation on the Kinetis KW40Z offers devices the possibility to change between any of the 4 roles at run time. This article will present the interaction with the Bluetooth Low Energy Host API needed to implement a GAP multiple role device. General Procedure instructions Running the GAP roles requires the application to go through the following 3 steps: Configuration - Stack configuration for the desired GAP role The application needs to configure the stack parameters, e.g. advertising parameters, advertising data, scan parameters, callbacks. Note that configuration of the advertising parameters or scanning response and advertising data can be done only once if the values don’t change at runtime. The configuration is always made in the Link Layer Standby state. Start - Running the role The application needs to start advertising, scanning or initiate connection. Stop - Return to Standby state When changing between roles, the Link layer must always go through the Link Layer Standby state. Running as a GAP Broadcaster or GAP Peripheral The GAP Broadcaster or Peripheral sends advertising events. Additionally, the GAP Peripheral will accept the establishment of a LE link. This is why the GAP Observer will only support the Non Connectable Advertising mode (gAdvNonConnectable_c). Both roles requires configuration of advertising data, advertising parameters. The configuration (gAppAdvertisingData, gAppScanRspData and gAdvParams) usually resides in app_config.c. The confirmation events for setting these parameters is received in BleApp_GenericCallback. The confirmation event for the changing state of advertising is received in BleApp_AdvertisingCallback. Configuration /* Setup Advertising and scanning data */ Gap_SetAdvertisingData(&gAppAdvertisingData, &gAppScanRspData); /* Setting only for GAP Broadcaster role */ gAdvParams. advertisingType = gAdvNonConnectable_c; /* Set advertising parameters*/ Gap_SetAdvertisingParameters(&gAdvParams); Start App_StartAdvertising(BleApp_AdvertisingCallback, BleApp_ConnectionCallback); Stop Gap_StopAdvertising(); Running as a GAP Observer The GAP Observer receives advertising events. Unlike the GAP Peripheral or Broadcaster, it does not need to set scanning parameters separately. It passes the configuration with the start procedure. The configuration (gAppScanParams) usually resides in app_config.c. The confirmation event for the changing state of scanning is received in BleApp_ScanningCallback. Configuration and Start App_StartScanning(&gAppScanParams, BleApp_ScanningCallback); Stop Gap_StopScanning (); Running as a GAP Central The GAP Central initiates the establishment of the LE link. Like the GAP Observer, it passes the configuration with the start procedure. The configuration (gConnReqParams) usually resides in app_config.c. The confirmation event for the changing state of link is received in BleApp_ConnectionCallback. Configuration and Start Gap_Connect(&gConnReqParams, BleApp_ConnectionCallback); Stop Gap_Disconnect(deviceId); Example An out-of-the box example for multiple role is attached. The application named blood_pressure_multi_role implements a Blood Pressure GATT client and server and can switch between the following GAP roles: Peripheral, Observer and Central. The contents of the archive needs to be copied to the following location: <Installer Path>\KW40Z_Connectivity_Software_1.0.1\ConnSw\examples\bluetooth\ The application can be found at: <Install Path specified>\KW40Z_Connectivity_Software_1.0.1\ConnSw\examples\bluetooth\blood_pressure_multi_role\frdmkw40z\bare_metal\build\iar\blood_pressure_multi_role.eww Running as GAP Peripheral Press SW4. LED1 will start flashing and the console will show that the Link Layer enters Advertising. If the Link Layer was in a previous state, it will go through Standby. static void BleApp_Advertise(void) {     /* Ensure Link Layer is in Standby */     BleApp_GoToStandby();         shell_write(" GAP Role: Peripheral\n\r");     mGapRole = gGapPeripheral_c;         /* Start GAP Peripheral */     App_StartAdvertising(BleApp_AdvertisingCallback, BleApp_ConnectionCallback); } Running as GAP Observer Press SW3. A chasing LED pattern will start and the console will show that the Link Layer enters Scanning. If the Link Layer was in a previous state, it will go through Standby. static void BleApp_Scan(void) {     /* Ensure Link Layer is in Standby */     BleApp_GoToStandby();         shell_write(" GAP Role: Observer\n\r");     mGapRole = gGapObserver_c;         /* Start GAP Observer */     App_StartScanning(&gAppScanParams, BleApp_ScanningCallback); } Running as GAP Central If the Link Layer is in scanning and finds a Blood Pressure Sensor, it will go through Standby and initiate connection. static void BleApp_Connect(void) {     /* Ensure Link Layer is in Standby */     BleApp_GoToStandby();         shell_write(" GAP Role: Central\n\r");     mGapRole = gGapCentral_c;         /* Start GAP Central */     Gap_Connect(&gConnReqParams, BleApp_ConnectionCallback); } Returning to Standby Pressing SW3 for more than 2 seconds, brings the Link Layer back in Standby. static void BleApp_GoToStandby(void) {     /* Check if connection is on */     if (mPeerInformation.deviceId != gInvalidDeviceId_c)     {         /* Stop GAP Central or Peripheral */         Gap_Disconnect(mPeerInformation.deviceId);     }     if (mAdvOn)     {         /* Stop GAP Peripheral or Bradcaster */         Gap_StopAdvertising();     }         if (mScanningOn)     {         /* Stop GAP Observer */         Gap_StopScanning();     } } References [1] BLUETOOTH SPECIFICATION Version 4.2 [Vol 3, Part C], 2.2 PROFILE ROLES
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Introduction This document is a quick start guide to load a new software image in a KW36 device through FSCI (Freescale Serial Communication Interface) bootloader software. Also, it contains all the steps needed to install the software required in a Windows host to handle the FSCI communication protocol. Software Requirements IAR Embedded Workbench IDE or MCUXpresso IDE. FRDM-KW36 SDK. Hardware Requirements FRDM-KW36 board. Downloading the SDK When downloading the SDK, select your specific IDE or simply choose all toolchains as shown below. In the option "Add software component", ensure to select all middleware components as depicted below. Installing FSCI Host in Windows OS The host software for the Windows OS was designed to work in a Python environment. The following steps are to download and install the software needed to use FSCI in a Windows OS. Visit the Python web site and download the latest Python 2.7.x MSI installer package for Windows OS. Open the MSI installer package. When customizing the installation options, check "Add python.exe to Path" as shown below Complete the rest of the steps for the Python installation process. Unzip the FRDM-KW36 SDK. Depending on your Python environment architecture, copy the HSDK.dll from <SDK_root>\tools\wireless\host_sdk\sdk-python\lib\<x86_or_x64> to <Python_directory>\DLLs (default in C:\Python27\DLLs). Download and install Visual C++ Redistributable Packages for Microsoft Visual Studio 2013 depending on the Windows architecture (vcredist_x86.exe or vcredist_x64.exe) from the Microsoft web site. Download and install the Microsoft Visual C++ Compiler for Python 2.7 from the following web site. To run Python scripts from the Command Prompt of Windows, we must create a system variable named PYTHONPATH. Search “System” in the Windows browser. Go to Advanced system settings -> Environment Variables… -> System variables. Click on the “New…” button and create the PYTHONPATH variable with the following value: <SDK_root>\tools\wireless\host_sdk\hsdk-python\src. Programming the FSCI bootloader on FRDM-KW36 board Attach the FRDM-KW36 board to your PC. Drag and drop the “bootloader_fsci_frdmkw36.bin” from the previously unzipped SDK file, you can find this file in: <SDK_root>\tools\wireless\binaries to your board. Like a common USB device. Creating a binary image to reprogram the device   IAR Embedded Workbench Open the connectivity project that you want to program through the FSCI bootloader from your SDK. This example will make use of the heart rate sensor project, located at the following path: <SDK_root>\boards\frdmkw36\wireless_examples\bluetooth\hrs\freertos\iar\hrs_freertos.eww. Open the project options window (Alt+F7). In Linker -> Config window, edit the “Configuration file symbol definitions” add the “gUseBootloaderLink_d=1” linker flag as shown below. Go to the “Output Converter” window and ensure that the output file is in binary format (.bin), otherwise, deselect the “Override default” checkbox, expand the “Output format” combo box and select “Raw binary. Click the OK button. Rebuild the project. The binary will be saved at: <SDK_root>\boards\frdmkw36\wireless_examples\bluetooth\hrs\freertos\iar\debug   MCUXpresso IDE Import your FRDM-KW36 SDK to MCUXpresso. Drag and drop your SDK on the "installed SDK's" toolbar. (In this step, it is not necessary to unzip the package). Open any connectivity project that you want to program through the FSCI bootloader from your SDK. This example will make use of the heart rate sensor project. Go to Project -> Properties, a new window will appear. Then, open the C/C++ Build -> Settings -> Linker -> Miscellaneous. Press the icon below, a new window will be deployed. Add “--defsym=gUseBootloaderLink_d=1”. Click on “Apply and Close”. Build the project. Deploy the “Binaries” icon in the workspace. Click the right mouse button on the “.axf” file. Select “Binary Utilities -> Create binary” option. The binary file will be saved at “Debug” folder in the workspace with “.bin” extension. Reprogramming an FRDM-KW36 board using the FSCI bootloader The following steps are to test the FSCI bootloader in a Windows OS. Search "Command Prompt" in the Windows browser. Run the "fsci_bootloader.py" Python script. Type the “python.exe” path in the console (default C:\Python27\python.exe). Drag and drop the “fsci_bootloader.py” from: <SDK_root>\tools\wireless\host_sdk\hsdk-python\src\com\nxp\wireless_connectivity\test\bootloader on the command prompt screen. Search the COM Port of your FRDM-KW36 board and type in the console. You can find it typing ‘Device manager’ from windows home and then search it in Ports (COM & LPT) toolbar. As you can see in this example the port may change depending on each case. Search the binary image file (created in the last section). Drag and drop on the screen. Press “Enter” to start the firmware update trough FSCI bootloader. Automatically the KW36 device will trigger to run the new software. To see all your process running, you can download the ‘IoT Toolbox’ from the app store to your smartphone and connect your device with the board to verify the random data that the heart rate sensor example generates.
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Our customer is evaluating RF characteristics using FRDM-MKW24. Regarding Tx max power, they have one question. The spec of max tx power is +8dBm and I could verify the power using TWR-KW24d512 before. They observed tx power with tx un-modulated cnt transmission and informed that the power was about +2dBm. That is to say, "Power 31" in Connectivity_Test means to +2dBm. I feel that it is small... Would you comment regarding the spec of the max tx power on FRDM-MKW24? Regards, Koichi
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Introduction This document provides guidance to load a new software image in a KW35 device through OTAP (Over The Air Programming) bootloader for KW35. This article also provides the steps needed to download and install the SDK used in the tutorial. Software Requirements IAR Embedded Workbench IDE or MCUXpresso IDE. SDK MKW36A512xxx4 RC4 or further. Hardware Requirements MKW35A512xxx4 device. KW35 Flash Memory Used for the OTAP Software Deployment The KW35 Flash is partitioned into: 2x256 KB Program Flash (P-Flash) array divided into 2 KB sectors with a flash address range from 0x0000_0000 to 0x0007_FFFF.     The statements to comprehend how the OTAP Client software and his features works are: The OTAP Client software is split into two parts, the OTAP bootloader and the OTAP client service. The OTAP bootloader verifies if there is a new image already available to reprogram the device. The OTAP client service software provides the Bluetooth LE custom services needed to communicate with the server that contains the new image file. Therefore, before to start the test, the device has been programmed twice, first with the OTAP bootloader then with the OTAP client service project. The mechanism used to have two different software in the same device is to store each one in different memory regions and this is implemented by the linker file. In the KW35 device, the bootloader application has reserved a 16KB slot of memory starting from the 0x0 address (0x0 to 0x3FFF) thus, the left memory of the first P-Flash memory bank is reserved, among other things, by the OTAP client service application.   To create a new image file for the client device, the developer needs to specify to the linker file that the code will be stored with an offset of 16KB since the first addresses are reserved for the bootloader. At connection event, the server sends all the chunks of code to the client via Bluetooth LE. The client stores the code at the second P-Flash memory bank but is not able to run yet.   When the broadcast has finished, and all chunks were sent, the OTAP bootloader detects this situation and triggers a command to reprogram the device with the new application. Due the new application was built with an offset of 16KB, the OTAP bootloader program the device starting from the 0x3FFF address and the OTAP client service application is overwritten by the new image. Then the OTAP bootloader triggers the new application, starting the execution of the code.   Software Development Kit download and install   Go to MCUXpresso web page. Log in with your registered account. Search for “MKW36A” device. Then click on the suggested processor and click on “Build MCUXpresso SDK” The next page is displayed. Select “All toolchains” in the “Toolchain / IDE” combo box and provide the name to identify the package. Click on “Add software component”, then deploy the combo box and click on “Select All” option. Save the changes. Click on “Download SDK” button and accept the license agreement. If MCUXpresso IDE is used, drag and drop the SDK zip folder in “Installed SDK’s” perspective to install the package.     Preparing the software to test the OTAP for KW35 device using IAR Embedded Workbench   This section provides the steps needed to test the OTAP software on the KW35. Program the OTAP bootloader on the KW35. 1.1 Open the OTAP_bootloader project located at the following path: <SDK_download_root>\boards\virtual-board-kw35\wireless_examples\framework\bootloader_otap\bm\iar\bootloader_otap_bm.eww     1.2 Flash the project (Ctrl + D). Stop the debug session (Ctrl + Shift + D). Program the OTAP client application on the KW35.         2.1 Open the OTAP client project located in the path below.          <SDK_download_root>\boards\frdmkw36\wireless_examples\bluetooth\otac_att\freertos\iar\otac_att_freertos.eww          2.2 Follow the steps 2 to 12 described in the “4.1. Changes Required in Project Options and Settings” section of the AN12252 “Migration Guide from               MKW36Z512xxx4 to MKW35Z512xxx4” application note.            2.3 Open the app_preinclude.h file under the source directory in the workspace. Find the “gEepromType_d” definition and update the value to                                 “gEepromDevice_InternalFlash_c” as shown below.   #define gEepromType_d gEepromDevice_InternalFlash_c‍‍‍‍‍            2.4 Save the MKW35Z512xxx4_connectivity.icf file located at:                <SDK_download_root>\middleware\wireless\framework_5.4.4\Common\devices\MKW35Z4\iar                               Into the folder of the OTAP Client ATT project:                <SDK_download_root>\boards\frdmkw36\wireless_examples\bluetooth\otac_att\freertos\iar            2.5 Open the project options window (Alt+F7). In Linker/Config window click the icon next to linker path and select the linker configuration file “MKW35Z512xxx4_connectivity.icf”. Set the "gUseInternalStorageLink_d” flag to 1.              2.6 Click the OK button in the project options window to save the new configuration.          2.7 Flash the project (Ctrl + D). Stop the debug session (Ctrl + Shift + D).    Preparing the software to test the OTAP for KW35 device using MCUXpresso IDE   This section provides the steps needed to test the OTAP software on the KW35. Program the OTAP bootloader on the KW35.          1.1 Open MCUXpresso IDE. Click on “Import SDK example(s)” option in the “Quickstart Panel” view.                        1.2 Click on virtual-board-kw35 SDK icon.          1.3 Deploy the wireless_examples\framework\bootloader_otap folders and select bm project. Click Finish button.                                                                           1.4 Select “Debug” option in the Quickstart Panel. Once the project is already loaded on the device, stop the debug session.      2. Program the OTAP client application on the KW35.          2.1 Open MCUXpresso IDE. Click on “Import SDK example(s)” option in the “Quickstart Panel” view.                          2.2 Click twice on the frdmkw36 icon.                                                                            2.3 Type “otac_att” in the examples textbox and select the freertos project at wireless_examples\bluetooth\otac_att\freertos. Finally, click on Finish button.              2.4 Follow the steps 5 to 17 described in the “5.1. Changes Required in Project Options and Settings” section of the AN12252 “Migration Guide from MKW36Z512xxx4 to MKW35Z512xxx4” application note.            2.5. Open the app_preinclude.h file under the source directory in the workspace. Find the “gEepromType_d” definition and update the value to                “gEepromDevice_InternalFlash_c” as shown below. #define gEepromType_d gEepromDevice_InternalFlash_c‍‍‍‍‍            2.6 Save the MKW35Z512xxx4_connectivity.ld file located at:                <SDK_download_root>\middleware\wireless\framework_5.4.4\Common\devices\MKW35Z4\gcc                Into the source folder in the workspace.              2.7 Open the Project/Properties window. Next, go to the MCU Linker/Managed Linker Script perspective and edit the Linker Script name to “MKW35Z512xxx4_connectivity.ld”.              2.8 Go to MCU Linker/Miscellaneous view. Press the icon below, a new window will be deployed. Add the following definition in the “Other options” box: --defsym=gUseInternalStorageLink_d=1.              2.9 Click the “Apply and Close” button in the project options window to save the new configuration.          2.10 Select “Debug” option in the Quickstart Panel. Once the project is already loaded on the device, stop the debug session.   Running OTAP demo with the IoT Toolbox App Save the S-Record file created with the steps in Appendix A or Appendix B in your smartphone at a known location. Open the IoT Toolbox App and select OTAP demo. Press “SCAN” to start scanning for a suitable advertiser. Perform a falling edge on the PTB18 in the KW35 to start advertising. Create a connection with the founded device. Press “Open” and search the S-Record file. Press “Upload” to start the transfer. Once the transfer is complete, wait a few seconds until the bootloader has finished programming the new image. The new application will start automatically.    Appendix A. Creating an S-Record image file for KW35 client using IAR Embedded Workbench Open the connectivity project that you want to program using the OTAP bootloader from your SDK. This example will make use of the glucose sensor project. <SDK_download_root>\boards\frdmkw36\wireless_examples\bluetooth\glucose_s\freertos\iar\glucose_s_freertos.eww Follow the steps 2 to 12 described in the “4.1. Changes Required in Project Options and Settings” section of the AN12252 “Migration Guide from              MKW36Z512xxx4 to MKW35Z512xxx4” application note. Save the MKW35Z512xxx4_connectivity.icf file located at: <SDK_download_root>\middleware\wireless\framework_5.4.4\Common\devices\MKW35Z4\iar                In the containing folder of your project. <SDK_download_root>\boards\frdmkw36\wireless_examples\bluetooth\glucose_s\freertos\iar Open the project options window (Alt+F7). In Linker/Config window click the icon next to linker path and select the linker configuration file MKW35Z512xxx4_connectivity.icf. Then, enable “gUseBootloaderLink_d” macro in the “Configuration file symbol definitions” textbox. Go to the “Output Converter” window. Deselect the “Override default" checkbox, expand the “Output format” combo box and select Motorola S-records format. Click OK button.                                                                                                                                           Rebuild the project. Search the S-Record file in the following path: <SDK_download_root>\boards\frdmkw36\wireless_examples\bluetooth\glucose_s\freertos\iar\debug   Appendix B. Creating an S-Record image file for KW35 client using MCUXpresso IDE Open the connectivity project that you want to program using the OTAP bootloader from MCUXpresso IDE This example will make use of the glucose sensor project Follow the steps 5 to 17 described in the “5.1. Changes Required in Project Options and Settings” section of the AN12252 “Migration Guide from MKW36Z512xxx4 to MKW35Z512xxx4” application note. Save the MKW35Z512xxx4_connectivity.ld file located at: <SDK_download_root>\middleware\wireless\framework_5.4.4\Common\devices\MKW35Z4\gcc Into the source folder in the workspace.                                                                                                                  Open the Project/Properties window. Next, go to the MCU Linker/Managed Linker Script perspective and edit the Linker Script name to “MKW35Z512xxx4_connectivity.ld”.                                                                                  Go to MCU Linker/Miscellaneous view. Press the icon below, a new window will be deployed. Add the following definition in the “Other options” box: --defsym=gUseBootloaderLink_d=1. Click the “Apply and Close” button.                              Build the project. Deploy the “Binaries” icon in the workspace. Click the right mouse button on the “.axf” file. Select “Binary Utilities/Create S-Record” option. The S-Record file will be saved at “Debug” folder in the workspace with “.s19” extension.  
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Introduction This document is to guide how to modify the OTAP Client software to the Low Power module. The starting point of this document is the OTAP Client example in the FRDM-KW36 SDK v2.2.2.   Deep Sleep Modes This section provides a base to understand how the developer should change between DSM1 (Deep Sleep Mode 1) and DSM3 (Deep Sleep Mode 3). The DSM6 does not need to be started by the developer, instead, the controller configures this mode automatically and returns to the latest mode after finished the radio activity.   DSM1 This low-power mode was designed to be used when the BLE stack is active, in other words when the LL is in advertising, scanning, or connection states. In this mode, the MCU enters LLS3 and BLE Link Layer enters deep sleep. The SoC wakes up from this mode by the on-board switches, by LPTMR timeout, or by BLE Link Layer wake-up interrupt (BLE_LL reference clock reaches wake up instance register) using LLWU module. The LPTMR timer is used to measure the time that the MCU spends in deep sleep to synchronize low-power timers at wakeup.   DSM3 This low-power mode was designed to be used when all stacks enabled for this platform are idle, in other words, when the LL stop advertising, scanning, or connection. In this mode, the MCU enters LLS3 and all enabled link layers remain idle. All RAM is retained. The SoC wakes up from this mode by the on-board switches, by DCDC power switch (when DCDC is in buck mode), or by LPTMR timeout using LLWU module. The LPTMR timer is also used to measure the time that MCU spends in deep sleep to synchronize low-power timers at wakeup.   DSM6 This low-power mode was developed to save some power while the radio is on. Its most common use case is with the radio in Rx waiting for a packet. Upon receiving the packet the radio wakes up the MCU. In this mode, the MCU enters STOP mode and the radio maintains its state. Any module capable of producing an interrupt can wake up the MCU, such as on-board switches, DCDC power switch (when DCDC is in buck mode), LPTMR timeout, Radio Interrupt, UART, and so on. The LPTMR timer is also used to measure the time that the MCU spends in deep sleep to synchronize low-power timers at wakeup.   For more information about DSM modes, you can inspect the “Connectivity Framework Reference Manual” chapter 3.15 Low-power library, it provides full information of Low Power modes and the usage on the NXP stack. It is available in your SDK at <FRDM-KW36 SDK root>\docs\wireless\Common.   Modifications on the Software In order to add low power on the OTAP Client (switching between DSM1, DSM3, and DSM6) two files must be modified: - app_preinclude.h - otap_client_att.c The following sections explain these changes.   app_preinclude.h This file is intended to contain the definitions that manage the behavior of the application. To include and enable the Low Power module you must add (or modify if the macro is already defined in this file) the following preprocessor directives.   1. Modify the AppPoolsDetails as following. /* Defines pools by block size and number of blocks. Must be aligned to 4 bytes.*/ #define AppPoolsDetails_c \ _block_size_ 32 _number_of_blocks_ 6 _eol_ \ _block_size_ 64 _number_of_blocks_ 4 _eol_ \ _block_size_ 88 _number_of_blocks_ 3 _eol_ \ _block_size_ 248 _number_of_blocks_ 2 _eol_ \ _block_size_ 312 _number_of_blocks_ 1 _eol_ \ _block_size_ 392 _number_of_blocks_ 1 _eol_‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍ 2. Set “cPWR_UsePowerDownMode” to 1 and keep the following directives in the “Framework Configuration” section as shown below. /* Check Low Power Timer */ #define cPWR_CheckLowPowerTimers 1 /* Enable/Disable Low Power Timer */ #define gTMR_EnableLowPowerTimers 1 /* Enable/Disable PowerDown functionality in PwrLib */ #define cPWR_UsePowerDownMode 1 /* Enable/Disable BLE Link Layer DSM */ #define cPWR_BLE_LL_Enable 1 /* Default Deep Sleep Mode*/ #define cPWR_DeepSleepMode 3 /* Enable/Disable MCU Sleep During BLE Events */ #define cMCU_SleepDuringBleEvents 1 /* Default deep sleep duration in ms */ #define cPWR_DeepSleepDurationMs 30000 /* Number of slots(625us) before the wake up instant before which the hardware needs to exit from deep sleep mode. */ #define cPWR_BLE_LL_OffsetToWakeupInstant 3 /* Enables / Disables the DCDC platform component */ #define gDCDC_Enabled_d 1 /* Default DCDC Mode used by the application */ #define APP_DCDC_MODE gDCDC_Mode_Buck_c /* Default DCDC Battery Level Monitor interval */ #define APP_DCDC_VBAT_MONITOR_INTERVAL 600000‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍ 3. Add the following directives in the “BLE Stack Configuration” section. Create the “Auto Configuration” section to disable LED support whenever Low Power is enabled. /*! ********************************************************************************* * BLE Stack Configuration ********************************************************************************** */ /* Time between the beginning of two consecutive advertising PDU's */ #define mcAdvertisingPacketInterval_c 0x02 /* 1.25 msec */ /* Offset to the first instant register. */ #define mcOffsetToFirstInstant_c 0x00 /* 625usec */ /*! ********************************************************************************* * Auto Configuration ********************************************************************************** */ /* Disable LEDs when enabling low power */ #if cPWR_UsePowerDownMode || gMWS_UseCoexistence_d #define gLEDSupported_d 0 #endif #if gMWS_UseCoexistence_d #undef gKBD_KeysCount_c #define gKBD_KeysCount_c 1 #endif‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍ 4. Modify the “Memory Pools Configuration” section as follows. /* Enable RNG seed storage in Flash */ #define gRngSeedStorageAddr_d ((uint32_t)FREESCALE_PROD_DATA_BASE_ADDR + 1024) /* Enable XCVR calibration storage in Flash */ #define gPreserveXcvrDacTrimValue_d 1 #define gXcvrDacTrimValueSorageAddr_d ((uint32_t)FREESCALE_PROD_DATA_BASE_ADDR + 1040) /* Application Connection sleep mode */ #define gAppDeepSleepMode_c 1 /* Application RAM usage configuration */ #define cPWR_RamRetentionInVLLS 2 /* 32K */ /* Disable unused LowPower modes */ #define cPWR_EnableDeepSleepMode_1 1 #define cPWR_EnableDeepSleepMode_2 0 #define cPWR_EnableDeepSleepMode_3 1 #define cPWR_EnableDeepSleepMode_4 0 #define cPWR_EnableDeepSleepMode_5 0 #define cPWR_EnableDeepSleepMode_7 0 #define cPWR_EnableDeepSleepMode_8 0 /* Warm-boot sequence will use the default stack which is used by ISRs on FreeRTOS */ #define USE_WARMBOOT_SP 0‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍   otap_client_att.c This is the main source file at the application level. Here are managed all the procedures that the device performs, before, during, and after to create a connection. This allows you to get the state of the device any instant and, hence, the dedicated low power APIs that rule the application must be implemented here, in the callbacks contained in this file, for an easier switching among the low power states.   1. Include “PWR_Configuration.h” header in “Include” section: #if (cPWR_UsePowerDownMode) #include "PWR_Interface.h" #include "PWR_Configuration.h" #endif‍‍‍‍‍‍‍‍‍‍‍‍ 2. Locate the “BleApp_Config” function. This function is executed once, after POR (Power on reset) during the device setup. Here you can change the deep sleep mode to DSM3 and allow the device to sleep using “PWR_ChangeDeepSleepMode” and “PWR_AllowDeviceToSleep” APIs. When the device has finished the initialization, it goes to sleep since all stacks are idle. See the following example. static void BleApp_Config(void) { #if defined(MULTICORE_APPLICATION_CORE) && (MULTICORE_APPLICATION_CORE == 1) if (GattDbDynamic_CreateDatabase() != gBleSuccess_c) { panic(0,0,0,0); return; } #endif /* MULTICORE_APPLICATION_CORE */ /* Common GAP configuration */ BleConnManager_GapCommonConfig(); /* Register stack callbacks */ (void)App_RegisterGattServerCallback (BleApp_GattServerCallback);‍‍‍‍‍‍‍‍‍‍‍‍‍ mAdvState.advOn = FALSE; /* Start services */ basServiceConfig.batteryLevel = BOARD_GetBatteryLevel(); (void)Bas_Start(&basServiceConfig); (void)Dis_Start(&disServiceConfig); if (OtapClient_Config() == FALSE) { /* An error occurred in configuring the OTAP Client */ panic(0,0,0,0); } /* Allocate application timer */ appTimerId = TMR_AllocateTimer(); mBatteryMeasurementTimerId = TMR_AllocateTimer(); #if (cPWR_UsePowerDownMode) #if MULTICORE_APPLICATION_CORE #if gErpcLowPowerApiServiceIncluded_c PWR_ChangeBlackBoxDeepSleepMode(cPWR_DeepSleepMode); PWR_AllowBlackBoxToSleep(); #endif PWR_ChangeDeepSleepMode(cPWR_DeepSleepMode); PWR_AllowDeviceToSleep(); #else PWR_ChangeDeepSleepMode(cPWR_DeepSleepMode); PWR_AllowDeviceToSleep(); #endif #endif }‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍ 3. Locate the “BleApp_Start” function. This function is executed just after wake up by pressing the LLWU SW3 button. This action will trigger the advertising, so, you must change the deep sleep mode to DSM1 using “PWR_ChangeDeepSleepMode” API since the BLE stack is active. See the following example. void BleApp_Start(void) { Led1On(); if (mPeerDeviceId == gInvalidDeviceId_c) { /* Device is not connected and not advertising*/ if (!mAdvState.advOn) { #if gAppUseBonding_d if (gcBondedDevices > 0) { mAdvState.advType = whiteListAdvState_c; } else { #endif mAdvState.advType = advState_c; #if gAppUseBonding_d } #endif #if (cPWR_UsePowerDownMode) #if MULTICORE_APPLICATION_CORE #if gErpcLowPowerApiServiceIncluded_c PWR_ChangeBlackBoxDeepSleepMode(gAppDeepSleepMode_c); #endif #else PWR_ChangeDeepSleepMode(gAppDeepSleepMode_c); #endif #endif BleApp_Advertise(); } } }‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍ 4. Locate the “BleApp_AdvertisingCallback” function. This function is executed every time the advertising state changes. Change the deep sleep mode to DSM3 when “mAdvState.advOn” is false, in other words, when the device stops advertising. If you stop the advertising either using an application timer or a user button, KW36 will go to sleep until you start advertising again (pressing LLWU SW3 button), saving power when all stacks are idle. See the following example. static void BleApp_AdvertisingCallback (gapAdvertisingEvent_t* pAdvertisingEvent) { switch (pAdvertisingEvent->eventType) { case gAdvertisingStateChanged_c: { mAdvState.advOn = !mAdvState.advOn; if(mAdvState.advOn) { LED_StopFlashingAllLeds(); Led1Flashing(); } #if (cPWR_UsePowerDownMode) else { #if MULTICORE_APPLICATION_CORE #if gErpcLowPowerApiServiceIncluded_c PWR_ChangeBlackBoxDeepSleepMode(cPWR_DeepSleepMode); #endif #else PWR_ChangeDeepSleepMode(cPWR_DeepSleepMode); #endif } #endif } break; case gAdvertisingCommandFailed_c: { Led2On(); panic(0,0,0,0); } break; default: ; /* For MISRA compliance */ break; } }‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍ 5. Locate “BleApp_ConnectionCallback” function. It is executed every time the connection state changes. In “gConnEvtConnected_c” add the following code to change to DSM1, since the BLE stack is active. case gConnEvtConnected_c: { /* Advertising stops when connected */ mAdvState.advOn = FALSE; (void)TMR_StopTimer(appTimerId); /* Subscribe client*/ mPeerDeviceId = peerDeviceId; (void)Bas_Subscribe(&basServiceConfig, peerDeviceId); (void)OtapCS_Subscribe(peerDeviceId); OtapClient_HandleConnectionEvent (peerDeviceId); /* Start battery measurements */ (void)TMR_StartLowPowerTimer(mBatteryMeasurementTimerId, gTmrLowPowerIntervalMillisTimer_c, TmrSeconds(mBatteryLevelReportInterval_c), BatteryMeasurementTimerCallback, NULL); #if (cPWR_UsePowerDownMode) #if MULTICORE_APPLICATION_CORE #if gErpcLowPowerApiServiceIncluded_c PWR_ChangeBlackBoxDeepSleepMode(gAppDeepSleepMode_c); PWR_AllowBlackBoxToSleep(); #endif #else PWR_ChangeDeepSleepMode(gAppDeepSleepMode_c); PWR_AllowDeviceToSleep(); #endif #else /* UI */ LED_StopFlashingAllLeds(); Led1On(); #endif } break;‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍ In “gConnEvtDisconnected_c” add the following code to change to DSM3, since all stacks are idle. case gConnEvtDisconnected_c: { /* Unsubscribe client */ mPeerDeviceId = gInvalidDeviceId_c; (void)Bas_Unsubscribe(&basServiceConfig, peerDeviceId); (void)OtapCS_Unsubscribe(); /* UI */ LED_StopFlashingAllLeds(); Led1Flashing(); Led2Flashing(); Led3Flashing(); Led4Flashing();‍‍‍‍‍‍‍‍‍‍‍‍ OtapClient_HandleDisconnectionEvent (peerDeviceId); #if (cPWR_UsePowerDownMode) /* Go to sleep */ #if MULTICORE_APPLICATION_CORE #if gErpcLowPowerApiServiceIncluded_c PWR_ChangeBlackBoxDeepSleepMode(cPWR_DeepSleepMode); #endif #else PWR_ChangeDeepSleepMode(cPWR_DeepSleepMode); #endif #else /* Restart advertising*/ BleApp_Start(); #endif } break;‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍‍   Power Consumption Profile of OTAP Client This section explains the behavior of the power consumption profile along the time. We can differ when DSM1 or DSM3 are used depending on the device state. If the device needs to advertise or is in connection state, it will use DSM1 because this sleep mode can predict when the device needs to handle the communication with others and wake up automatically through the BLE Link Layer wakeup interrupt. On the other hand, when no actions are in progress, it will use DSM3 and the wake up depends entirely on the LLWU SW3 button in this example. On the other hand, the DSM6 puts the MCU in STOP mode during the transmission and reception in BLE events, it does not need to be started manually, instead, the controller configures this mode automatically and returns to DSM1 mode after finished the radio activity.   The APIs that change the deep sleep mode to DSM1 are: • BleApp_Start: It starts advertising. • BleApp_ConnectionCallback – gConnEvtConnected_d: It notifies when the MCU has been connected to a peer device.   The APIs that change the deep sleep mode to DSM3 are: • BleApp_Config: It takes part of the initialization procedure after POR. All tasks are idle, the device is waiting for the LLWU SW3 button to wake up and start advertising. • BleApp_AdvertisingCallback – mAdvState is off: The device has to stopped advertising, so the MCU is idle. • BleApp_ConnectionCallback – gConnEvtDisconnected_d: It notifies when the device has been disconnected, so the MCU is idle.   Please let us know any questions or comments regarding this topic.
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The radio certification has been performed on JN5189, QN9090 and K32W products. The certificates or declaration of conformity are available in attached files.   And click here to know more on the best way to build a PCB the first time right with K32W061, QN9090 or JN5189 ! 
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Hello all, let me share a video demonstration of the Thread Smart Home model. See the link below: Thread Smart Home model Best regards, Karel
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OVERVIEW This document shows how to include the PowerLib to enable low power functionality in connectivity software projects that does not include it. It shows step by step instructions on how to import, configure and use this module. ADD POWER LIBRARY INTO A NEW PROJECT Once you have installed the “Connectivity Software” package, browse for the extracted files (typically located in C:\Freescale\KW40Z_Connectivity_Software_1.0.0). In this location search for the LowPower folder, then copy and paste it into your new project folder. Open your IAR project and create a new group called “Low Power”. Inside this group add two new groups called “Interface” and “Source”. In the Windows explorer, open the LowPower folder copied in the previous step. Drag and drop the contents of the "Interface" folder to the "Interface" group in IAR. Do the same for the "Source" folder. You can also use the option "Add Files" in the group menu to add the files. Note: Do not copy the “PWR_Platform.c” and “PWR_Platform.h” files. Once you have copied the files in their respective folders, you need to add the paths of these files in the project environment. Right click on the project name and select "Options". In Options go to “C/C++Compiler”, select “Preprocessor” and click on the red square. The next window will appear. Click on <Click to add>  to open the windows explorer. Navigate to the folder PowerLib/Interface in your project to add the "Interface" folder path. Repeat this step with the "Source" folder. HOW TO CONFIGURE LOW POWER To use low power in your project you need to define the following macros in the “app_preinclude.h” file: /* Enable/Disable PowerDown functionality in PwrLib */ #define cPWR_UsePowerDownMode           1 /* Enable/Disable BLE Link Layer DSM */ #define cPWR_BLE_LL_Enable              1 /* Default Deep Sleep Mode*/ #define cPWR_DeepSleepMode              4 cPWR_UsePowerDownMode enables the necessary functions to use low power in your project. cPWR_BLE_LL_Enable configures the link layer to work in doze mode when in low power, and cPWR-DeepSleepMode defines the deep sleep mode the MCU will enter when the low power function is executed. There are the six different modes that can be used.   Mode 1: MCU/Radio low power modes:         MCU in LLS3 mode.         BLE_LL in DSM.       Wakeup sources:       GPIO (push button) interrupt using LLWU module.        BLE_LL wake up interrupt(BLE_LL reference clock reaches wake up instance register)  using LLWU module.              - BTE_LL wakeup timeout: controlled by the BLE stack(SoC must be awake before next BLE action).              - BTE_LL reference clock source:   32Khz oscillator              - BTE_LL reference clock resolution:     625us                            Mode 2: MCU/Radio low power modes:         MCU in LLS3 mode.         BLE_LL in DSM.       Wakeup sources:         GPIO (push button) interrupt using LLWU module.         BLE_LL wake up interrupt(BLE_LL reference clock reaches wake up instance register)  using LLWU module.                - BTE_LL wakeup timeout: cPWR_DeepSleepDurationMs by default. Use PWR_SetDeepSleepTimeInMs  to change it at run time. Maximum timeout is 40959 ms. BLE suppose to be idle.                - BTE_LL reference clock source:   32Khz oscillator                - BTE_LL reference clock resolution:     625us   Mode  3: MCU/Radio low power modes:         MCU in LLS3 mode.         BLE_LL in idle.       Wakeup sources:        GPIO (push button) interrupt using LLWU module.        DCDC PowerSwitch - available in buck mode only.        LPTMR interrupt using LLWU module           - LPTMR wakeup timeout: cPWR_DeepSleepDurationMs by default. Use PWR_SetDeepSleepTimeInMs to change it at run time. Maximum timeout is 65535000 ms (18.2 h).           - LPTMR clock source:   32Khz oscillator           - LPTMR resolution:     modified at run time to meet timeout value. Mode 4: MCU/Radio low power modes:         MCU in VLLS0/1 mode(VLLS0 if DCDC bypassed/ VLLS1 otherwise ).        BLE_LL in idle.       Wakeup sources:        GPIO (push button) interrupt using LLWU module.         DCDC PowerSwitch - available in buck mode only. Mode 5: MCU/Radio low power modes:        MCU in VLLS2 (4k Ram retention (0x20000000- 0x20000fff)).        BLE_LL in idle.       Wakeup sources:         GPIO (push button) interrupt using LLWU module.         DCDC PowerSwitch - available in buck mode only.   Mode 6: MCU/Radio low power modes:         MCU in STOP.       Wakeup sources:         GPIO (push button) interrupt using LLWU module.         DCDC PowerSwitch - available in buck mode only.         LPTMR wakeup timeout: cPWR_DeepSleepDurationMs by default. Use PWR_SetDeepSleepTimeInMs to change it at run time. Maximum timeout is 65535000 ms (18.2 h).          - LPTMR clock source:   32Khz oscillator           - LPTMR resolution:     modified at run time to meet timeout value.           - LPTMR resolution:     modified at run time to meet timeout value.         Radio interrupt LL or 802.15.4         UART Configuring Wakeup Source The PowerLib software includes preconfigured wakeup methods for low power. These methods are described below and a couple of examples are included. From Reset: Comming from Reset From PSwitch_UART: Wakeup by UART interrupt From KeyBoard: Wakeup by TSI/Push button interrupt From LPTMR: Wakeup by LPTMR timer interrupt From Radio:  Wakeup by RTC timer interrupt From BLE_LLTimer:  Wakeup by BLE_LL Timer DeepSleepTimeout:  DeepSleep timer overflow. SleepTimeout: Sleep timer overflow. Configure Module Wakeup using LPTMR This example explains how to configure the third deep sleep mode using the LPTMR as wakeup source. The desired low power mode must be configured in the file app_preinclude.h. /* Default Deep Sleep Mode*/ #define cPWR_DeepSleepMode            3 On the same file, the macro cPWR_DeepSleepDurationMs macro must be added. It defines the time the MCU will be in low power mode before being waken by the low power timer. By default it it set to 10 seconds (10000 milliseconds). #define cPWR_DeepSleepDurationMs     10000 This defines the time that the device will remain asleep by default. The PWR_SetDeepSleepTimeInMs function can be used to change this period at run time. Consider that the maximum time period is 65535000 ms (18.2 hours). PWR_SetDeepSleepTimeInMs(10000); Also the deep sleep mode can be changed at run time with the following function. PWR_ChangeDeepSleepMode(3); For further power reduction, all the modules not in use must be turned off . To run in this mode, all the timers except the LPTMR must be turned off. The device enters in low power mode with the following code lines in the main application. PWR_SetDeepSleepTimeInMs(cPWR_DeepSleepDurationMs); PWR_ChangeDeepSleepMode(3); PWR_AllowDeviceToSleep(); Configure GPIO (Push Button) wakeup. In the “PWRLib.c” file, find the “PWRLib_Init” function. It contains the code to initialize the LLWU pins to be used for wakeup. Chip configuration Reference Manual chapter contains information on which LLWU pins are tied to GPIOs on the MCU. For this example LLWU pins 6 and 7 (which are tied to PTA18 and PTA19 in the MCU) are used.   LLWU_PE1 = 0x00;   LLWU_PE2 = LLWU_PE2_WUPE7(0x03) | LLWU_PE2_WUPE6(0x03);   LLWU_PE3 = 0x00;   LLWU_PE4 = 0x00; Since the LLWU pin sources work as GPIO interrupts, the propper ports in the MCU must be configured. Following code shows howthese pins are configured in the MCU.   /* PORTA_PCR18: ISF=0,MUX=1 */   PORTA_PCR18 = (uint32_t)((PORTA_PCR18 & (uint32_t)~(uint32_t)(                                                                 PORT_PCR_ISF_MASK |                                                                   PORT_PCR_MUX(0x06)                                                                     )) | (uint32_t)(                                                                                     PORT_PCR_MUX(0x01)                                                                                       ));   PORTA_PCR19 = (uint32_t)((PORTA_PCR19 & (uint32_t)~(uint32_t)(                                                                 PORT_PCR_ISF_MASK |                                                                   PORT_PCR_MUX(0x06)                                                                     )) | (uint32_t)(                                                                                     PORT_PCR_MUX(0x01)                                                                                       )); Once the pins have been defined, it is neccesary to configure them as Keyboard inputs for the Power Lib. Go to "PWRLib.h" and find the next define: #define  gPWRLib_LLWU_KeyboardFlagMask_c (gPWRLib_LLWU_WakeupPin_PTA18_c | gPWRLib_LLWU_WakeupPin_PTA19_c ) In this define you must place the pins that were configured previously as wakeup sources. Using Low Power in the Project When you define "cPWR_UsePowerDownMode"  in app_preinclude.h, it automatically creates a task in "ApplMain.c" called "App_Idle_Task". When executed by the OS scheduler, this task verifies if the device can go to sleep. This statement is always false unless the next function is called. PWR_AllowDeviceToSleep(); This function indicates the program that the device can enter in low power and will execute the neccesary code to enter in the power mode configured at that time. Note: Before you allow the device to sleep, disable all uneccessary modules and turn off all leds. When the device is ready to enter in low power (all the application layers allows it and the device is in an iddle state) function PWR_EnterLowPower() must be called. This function will enter the MCU into the selected low power mode. On the HID example this is done into the iddle task as shown below. #if (cPWR_UsePowerDownMode) static void App_Idle(void) {     PWRLib_WakeupReason_t wakeupReason;         if( PWR_CheckIfDeviceCanGoToSleep() )     {         /* Enter Low Power */         wakeupReason = PWR_EnterLowPower(); #if gFSCI_IncludeLpmCommands_c         /* Send Wake Up indication to FSCI */         FSCI_SendWakeUpIndication(); #endif #if gKeyBoardSupported_d              /* Woke up on Keyboard Press */         if(wakeupReason.Bits.FromKeyBoard)         {             KBD_SwitchPressedOnWakeUp();             PWR_DisallowDeviceToSleep();         } #endif                  if(wakeupReason.Bits.DeepSleepTimeout)         {           Led1On();           for(;;)           {}         }     } } #endif /* cPWR_UsePowerDownMode */ PWR_CheckIfDeviceCanGoToSleep() function checks that all the application layers are agree on entering in low power mode (checking that PWR_DisallowDeviceToSleep() function hasn't been called). If everything is ok, function PWR_EnterLowPower() enters the device in low power and waits for a wakeup event.
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Symptoms In the KW36 SDK, there is an API bleResult_t Controller_SetTxPowerLevel(uint8_t level, txChannelType_t channel) to set the Tx power, but the unit of param[in] level is not dBm. But how do we set a Tx power in dBm? Diagnosis By going through the source code, we found that two conversions are required between the actual dBm and the set value of the API. One is PA_POWER to Transmit Output Power conversion table: xing_chang_0-1626671502649.png   xing_chang_1-1626671511075.png   Other is Level to PA_POWER  conversion table: .tx_power[0] = 0x0001, .tx_power[1] = 0x0002, .tx_power[2] = 0x0004, .tx_power[3] = 0x0006, .tx_power[4] = 0x0008, .tx_power[5] = 0x000a, .tx_power[6] = 0x000c, .tx_power[7] = 0x000e, .tx_power[8] = 0x0010, .tx_power[9] = 0x0012, .tx_power[10] = 0x0014, .tx_power[11] = 0x0016, .tx_power[12] = 0x0018, .tx_power[13] = 0x001a, .tx_power[14] = 0x001c, .tx_power[15] = 0x001e, .tx_power[16] = 0x0020, .tx_power[17] = 0x0022, .tx_power[18] = 0x0024, .tx_power[19] = 0x0026, .tx_power[20] = 0x0028, .tx_power[21] = 0x002a, .tx_power[22] = 0x002c, .tx_power[23] = 0x002e, .tx_power[24] = 0x0030, .tx_power[25] = 0x0032, .tx_power[26] = 0x0034, .tx_power[27] = 0x0036, .tx_power[28] = 0x0038, .tx_power[29] = 0x003a, .tx_power[30] = 0x003c, .tx_power[31] = 0x003e, The input parameter 'level' of the API is the subscript of this array. The array value is PA_POWER of first conversion table, then we can find the final Tx power. From another perspective, the parameter 'level' is the index of the first table.   Solution The following demonstrates a conversion process. xing_chang_2-1626672207311.png  
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This article describes how to compile the Linux BSP of the i.MX platform under ubuntu 18.04, 20.04 LTS and debian-10. This is a necessary step to integrate WIFI/BT to the I.MX platform. See the attachment for detailed steps.
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This document describes how to add additional cluster to the router application in the AN12061-MKW41Z-AN-Zigbee-3-0-Base-Device Application Note.   The Router application's main endpoint contains Basic, Groups, Identify and OnOff server. The steps below describe how to add two clusters to Router: Temperature Measurement server and OnOff client. Note that these changes only go as far as making the new clusters added and discoverable, no functionality has been added to these clusters. Router/app_zcl_cfg.h The first step is to update the application ZCL Configuration file to add the new clusters (OnOff Client, Temperature Measurement Server) to the Router application endpoint. The HA profile already contains few clusters but Temperature Measurement cluster was added:   /* Profile 'HA' */ #define HA_ILLUMINANCEMEASUREMENT_CLUSTER_ID (0x0400) #define HA_DEFAULT_CLUSTER_ID                (0xffff) #define HA_OTA_CLUSTER_ID                    (0x0019) #define HA_TEMPMEASUREMENT_CLUSTER_ID        (0x0402) Router/app_zcl_globals.c The OnOff client was already present in Router endpoint but made discoverable and the Temperature Measurement cluster was added and made discoverable into Router application endpoint.The clusters are added to the Input cluster list (Server side) and output cluster list (Client side) and made discoverable using DiscFlag only for the cluster list for which it is enabled. So, assuming you need to add OnOff cluster client, you would need to use add the cluster id (0x0006 for OnOff) into input cluster list (Server side of cluster) and output cluster list (Client side of the cluster) and make it discoverable for output cluster list as it is a client cluster. For temperature measurement, you need to make it discoverable for input Cluster list as below: PRIVATE const uint16 s_au16Endpoint1InputClusterList[6] = { 0x0000, 0x0004, 0x0003, 0x0006, HA_TEMPMEASUREMENT_CLUSTER_ID , 0xffff, }; PRIVATE const PDUM_thAPdu s_ahEndpoint1InputClusterAPdus[6] = { apduZCL, apduZCL, apduZCL, apduZCL, apduZCL, apduZCL, }; PRIVATE uint8 s_au8Endpoint1InputClusterDiscFlags[1] = { 0x1f }; PRIVATE const uint16 s_au16Endpoint1OutputClusterList[5] = { 0x0000, 0x0004, 0x0003, 0x0006, HA_TEMPMEASUREMENT_CLUSTER_ID, }; PRIVATE uint8 s_au8Endpoint1OutputClusterDiscFlags[1] = { 0x08 }; Now update Simple Descriptor structure (see the declaration of zps_tsAplAfSimpleDescCont and ZPS_tsAplAfSimpleDescriptor structures to understand how to correctly fill the various parameters) to reflect the input cluster and output cluster list correctly as below : PUBLIC zps_tsAplAfSimpleDescCont s_asSimpleDescConts[2] = { {    {       0x0000,       0,       0,       0,       84,       84,       s_au16Endpoint0InputClusterList,       s_au16Endpoint0OutputClusterList,       s_au8Endpoint0InputClusterDiscFlags,       s_au8Endpoint0OutputClusterDiscFlags,    },    s_ahEndpoint0InputClusterAPdus,    1 }, {    {       0x0104,       0,       1,       1,       6,       5,       s_au16Endpoint1InputClusterList,       s_au16Endpoint1OutputClusterList,       s_au8Endpoint1InputClusterDiscFlags,       s_au8Endpoint1OutputClusterDiscFlags,    },    s_ahEndpoint1InputClusterAPdus,    1 }, }; Router/zcl_options.h This file is used to set the options used by the ZCL. Enable Clusters The cluster functionality for the router endpoint was enabled: /****************************************************************************/ /*                             Enable Cluster                               */ /*                                                                          */ /* Add the following #define's to your zcl_options.h file to enable         */ /* cluster and their client or server instances                             */ /****************************************************************************/ #define CLD_BASIC #define BASIC_SERVER #define CLD_IDENTIFY #define IDENTIFY_SERVER #define CLD_GROUPS #define GROUPS_SERVER #define CLD_ONOFF #define ONOFF_SERVER #define ONOFF_CLIENT #define CLD_TEMPERATURE_MEASUREMENT #define TEMPERATURE_MEASUREMENT_SERVER Enable any optional Attributes and Commands for the clusters /****************************************************************************/ /* Temperature Measurement Cluster - Optional Attributes */ /* */ /* Add the following #define's to your zcl_options.h file to add optional */ /* attributes to the time cluster. */ /****************************************************************************/ #define CLD_TEMPMEAS_ATTR_TOLERANCE /****************************************************************************/ /* Basic Cluster - Optional Commands */ /* */ /* Add the following #define's to your zcl_options.h file to add optional */ /* commands to the basic cluster. */ /****************************************************************************/ #define CLD_BAS_CMD_RESET_TO_FACTORY_DEFAULTS /****************************************************************************/ /* OnOff Cluster - Optional Commands */ /* */ /* Add the following #define's to your zcl_options.h file to add optional */ /* commands to the OnOff cluster. */ /****************************************************************************/ #define CLD_ONOFF_CMD_OFF_WITH_EFFECT  Add the cluster creation and initialization into ZigBee Base device definitions The cluster functionality for some of the clusters (like OnOff Client) is already present on ZigBee Base Device. For Temperature Measurement cluster the functionality was added into ZigBee Base Device. <SDK>/middleware/wireless/Zigbee_3_0_6.0.6/core/ZCL/Devices/ZHA/Generic/Include/base_device.h The first step was including the Temperature Measurement header files into base device header file as shown below:  #ifdef CLD_TEMPERATURE_MEASUREMENT #include "TemperatureMeasurement.h" #endif The second step was adding cluster instance (tsZHA_BaseDeviceClusterInstances) into base device Instance as shown below: /* Temperature Measurement Instance */ #if (defined CLD_TEMPERATURE_MEASUREMENT) && (defined TEMPERATURE_MEASUREMENT_SERVER) tsZCL_ClusterInstance sTemperatureMeasurementServer; #endif The next step was to define the cluster into the base device structure (tsZHA_BaseDevice) as below: #if (defined CLD_TEMPERATURE_MEASUREMENT) && (defined TEMPERATURE_MEASUREMENT_SERVER) tsCLD_TemperatureMeasurement sTemperatureMeasurementServerCluster; #endif <SDK>/middleware/wireless/Zigbee_3_0_6.0.6/core/ZCL/Devices/ZHA/Generic/Include/base_device.c The cluster create function for Temperature Measurement cluster for server was called in ZigBee base device registration function:   #if (defined CLD_TEMPERATURE_MEASUREMENT) && (defined TEMPERATURE_MEASUREMENT_SERVER)    /* Create an instance of a Temperature Measurement cluster as a server */    if(eCLD_TemperatureMeasurementCreateTemperatureMeasurement(&psDeviceInfo->sClusterInstance.sTemperatureMeasurementServer,                                                    TRUE,                                                    &sCLD_TemperatureMeasurement,                                                    &psDeviceInfo->sTemperatureMeasurementServerCluster,                                                    &au8TemperatureMeasurementAttributeControlBits[0]) != E_ZCL_SUCCESS)   {       return E_ZCL_FAIL;    } #endif Router/app_zcl_task.c Temperature Measurement Server Cluster Data Initialization - APP_vZCL_DeviceSpecific_Init() The default attribute values for the Temperature Measurement clusters are initialized: PRIVATE void APP_vZCL_DeviceSpecific_Init(void) {    sBaseDevice.sOnOffServerCluster.bOnOff = FALSE;    FLib_MemCpy(sBaseDevice.sBasicServerCluster.au8ManufacturerName, "NXP", CLD_BAS_MANUF_NAME_SIZE);    FLib_MemCpy(sBaseDevice.sBasicServerCluster.au8ModelIdentifier, "BDB-Router", CLD_BAS_MODEL_ID_SIZE);    FLib_MemCpy(sBaseDevice.sBasicServerCluster.au8DateCode, "20150212", CLD_BAS_DATE_SIZE);    FLib_MemCpy(sBaseDevice.sBasicServerCluster.au8SWBuildID, "1000-0001", CLD_BAS_SW_BUILD_SIZE);    sBaseDevice.sTemperatureMeasurementServerCluster.i16MeasuredValue = 0;    sBaseDevice.sTemperatureMeasurementServerCluster.i16MinMeasuredValue = 0;    sBaseDevice.sTemperatureMeasurementServerCluster.i16MaxMeasuredValue = 0; }
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Brief Description NXP Tire Pressure Monitoring Sensors (TPMS) were preloaded the firmware libraries and test software for a variety of customer use cases. The preloaded TPMS bootloader provides wireless software update function for the aftermarket. This demo uses Kinetis KW01 and Low Frequency emitter to accomplish TPMS over-the-air software update.   Reference Picture   Block Diagram   Features 315 MHz RF 125 KHz LF FSK modulation Manchester Encoding Timer/PWM Modules IAR Embedded Workbench for ARM 7.40 CodeWarrior V6.3   NXP Parts Used MRB-KW019032 (MKW01Z128CHN) TPMS870911 (FXTH870911DT1) LF Emitter Board   Get Software MKW01_TPMS_bootloader.rar MPXY8702_TPMS_bootloader.rar TPMS-MKW01-IAR7v4-Project.zip   General Stage Prototype Launched for Alpha customers     Demo Setup   Hardware Requirements MRB-KW019032 x 2         MRB-KW019032 Board A: Connected with LF Emitter Board         MRB-KW019032 Board B: Standalone TPMS879011 x 1 LF Emitter Board x 1   Hardware Connection   Pin function MRB-KW019032 LF Emitter Board TPM1_CH0 PTB0 (J15-9) J5-20 TPM1_CH1 PTB1 (J14-8) J5-28 GND GND (J15-2) J6-4   Demo Description A prebuild TPMS870911 firmware is stored in MRB-KW019032 Board A and this firmware will be sent to TPMS870911 via 125kHz LF signal. After TPMS870911 completes the firmware update, TPMS870911 will send the information of pressure sensor to MRB-KW019032 Board B via 315 MHz RF signal.   Demo Procedure Download MKW01_TPMS_bootloader into MRB-KW019032 Board A with IAR 7.40 Download TPMS-MKW01-IAR7v4-Project into MRB-KW019032 Board B with IAR 7.40 Download MPXY8702_TPMS_bootloader into TPMS870911 with CodeWarrior V6.3 Connect USB cable between PC and both of MRB-KW019032 boards, and open the terminal with the following settings • 115200 baud rate • 8 data bits • No parity • One stop bit • No flow control    5. Press the reset button on both of MRB-KW019032 boards and then the demo message will be shown on the terminal.     6. Short Pin19 of J15 (PTD6) on MRB-KW019032 Board A as SW3 press to start TPMS870911 over-the-air software update. 7. After TPMS870911 completes software update, MRB-KW019032 Board B will print the received RF message which was sent from TPMS870911 on the terminal.                         Original Attachment has been moved to: TPMS-MKW01-IAR7v4-Project.zip Original Attachment has been moved to: MPXY8702_TPMS_bootloader.rar Original Attachment has been moved to: MKW01_TPMS_bootloader.rar
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Introduction This document describes the steps needed to enable System View tool emphasizing in connectivity software stack for the QN9080CDK MCU.   Software Requirements QN908XCDK SDK 2.2.0 SystemView Software J-Link Software and Documentation Pack     Hardware Requirements QN9080CDK Board with J-Link debug interface   Enabling SystemView in IAR Embedded Workbench IDE   1. Unzip your QN908XCDK SDK. Open your desired project from:<SDK_install_path>/boards/qn908xcdk/wireless_examples/<Choose_your_project>/freertos/iar/<Your_project.eww>   2. Select the project in the workspace, press the right mouse button and select “Add->Add Group...” option       3. Create a new group called “SEGGER”, click on the “OK” button. Repeat the step 1 and create other groups called “Config” and “FreeRTOS_SEGGER”.     The workspace will be updated as shown below       4. Create folders called “SEGGER”, “Config” and “FreeRTOS_SEGGER” in the Windows directory at the following path:     <QN9080_SDK_root>/boards/qn908xcdk/wireless_examples/bluetooth/<your_example>/freertos       5. Add the following files in the recently created folders (SEGGER, Config and FreeRTOS_SEGGER) on Windows directory (the default SysView installation path is C:\Program Files (x86)\SEGGER\SystemView_V252c):   For the SEGGER folder:        All files located at <SysView_installation_path>\Src\SEGGER   For the Config folder:       All files located at <SysView_installation_path>\Src\Config   For the FreeRTOS_SEGGER folder:       <SysView_installation_path>\Src\Sample\FreeRTOSV9\SEGGER_SYSVIEW_FreeRTOS.c       <SysView_installation_path>\Src\Sample\FreeRTOSV9\SEGGER_SYSVIEW_FreeRTOS.h       <SysView_installation_path>\Src\Sample\FreeRTOSV9\Config\SEGGER_SYSVIEW_Config_FreeRTOS.c     6. Go to the workspace and click the right mouse button on “SEGGER”, “Config” and “FreeRTOS_SEGGER” groups, then select “Add->Add Files...” option. Add the following files:   For the SEGGER group:         All files in <QN9080_SDK_root>/boards/qn908xcdk/wireless_examples/bluetooth/<your_example>/freertos/SEGGER folder    For the Config group:        All files in <QN9080_SDK_root>/boards/qn908xcdk/wireless_examples/bluetooth/<your_example>/freertos/Config folder   For the FreeRTOS_SEGGER group:        All files in <QN9080_SDK_root>/boards/qn908xcdk/wireless_examples/bluetooth/<your_example>/freertos/FreeRTOS_SEGGER folder   The workspace will be updated as shown in the picture below       7. Select the project in the workspace and press Alt + F7. Go to “C/C++ Compiler” window and select “Preprocessor”. Include in “Additional include directories” view the following paths:   $PROJ_DIR$ /../Config $PROJ_DIR$ /../FreeRTOS_SEGGER $PROJ_DIR$ /../SEGGER       8. Go to “Assembler”, click on “Preprocessor”. Include the last paths on “Additional include directories” view as shown below. Click the OK button.     9. Replace the following files in the workspace with the files attached in this post (IAR files.zip). Make sure that each new file is located on the same path as the respectively last one.   freertos/FreeRTOS.h freertos/task.h freertos/tasks.c freertos/portable/portasm.s freertos/portable/port.c freertos/portable/portmacro.h   10. Add #include "SEGGER_SYSVIEW_FreeRTOS.h" at the end of the FreeRTOSConfig.h file located at source/FreeRTOSConfig.h in the workspace.       11. Search the “SEGGER_SYSVIEW_Config_FreeRTOS.c” file at FreeRTOS_SEGGER folder in the workspace. Modify the SYSVIEW_RAM_BASE value to the lowest RAM address (default 0x20000000 in QN9080) and add an extern declaration to the SystemCoreClock variable: extern uint32_t SystemCoreClock;‍‍       12. Search the “fsl_os_abstraction_free_rtos.c” file at framework/OSAbstraction folder in the workspace. Add #include "SEGGER_SYSVIEW.h" at the top of the file. Search the main function and add the following call to function inside:   SEGGER_SYSVIEW_Conf(); SEGGER_SYSVIEW_Start();‍‍‍‍‍‍‍‍‍‍        13. Build and run your example. Run SystemView in your PC.     Enabling SystemView in MCUXpresso IDE 1. Install your QN908XCDK SDK in MCUXpresso IDE and import any freertos example from "wireless_examples" folder.  2. Select the project in the workspace, press the right mouse button and select "New->Source Folder" option     3. Create a new folder called “SEGGER”, click on the “Finish” button. Repeat the step 1 and create other folders called “Config” and “FreeRTOS_SEGGER”.     The workspace will be updated as shown below     4. Add the following files in the SEGGER, Config and FreeRTOS_SEGGER folders on the workspace dragging and dropping (the default SysView installation path is C:\Program Files (x86)\SEGGER\SystemView_V252c):   For the SEGGER folder:        All files located at <SysView_installation_path>\Src\SEGGER   For the Config folder:       All files located at <SysView_installation_path>\Src\Config   For the FreeRTOS_SEGGER folder:       <SysView_installation_path>\Src\Sample\FreeRTOSV9\SEGGER_SYSVIEW_FreeRTOS.c       <SysView_installation_path>\Src\Sample\FreeRTOSV9\SEGGER_SYSVIEW_FreeRTOS.h       <SysView_installation_path>\Src\Sample\FreeRTOSV9\Config\SEGGER_SYSVIEW_Config_FreeRTOS.c   When dragging and dropping, a new window will appear. Select "Copy files" in the button group and click "OK".       5. Select the project in the workspace, then go to "Project->Properties". The project properties window will be deployed.       6. Go to "C/C++ Build->Settings->Tool Settings->MCU C Compiler->Includes" view. Click on the "Green plus icon" in the "Include paths" view. A new window will appear, click on "Workspace..." button.       7. Select SEGGER, Config and FreeRTOS_SEGGER folders and click "OK", then click "Apply and Close" in the Project Properties window.   .   8. Replace the following files in the workspace with the files attached in this post (MCUXpresso files.zip).   freertos/FreeRTOS.h freertos/task.h freertos/tasks.c freertos/port.c freertos/portmacro.h   9. Add #include "SEGGER_SYSVIEW_FreeRTOS.h" at the end of the FreeRTOSConfig.h file located at source/FreeRTOSConfig.h in the workspace.     10. Search the “SEGGER_SYSVIEW_Config_FreeRTOS.c” file at FreeRTOS_SEGGER folder in the workspace. Modify the SYSVIEW_RAM_BASE value to the lowest RAM address (default 0x20000000 in QN9080) and add an extern declaration to the SystemCoreClock variable: extern uint32_t SystemCoreClock;‍‍   11. Search the “fsl_os_abstraction_free_rtos.c” file at framework/OSAbstraction/Source folder in the workspace. Add #include "SEGGER_SYSVIEW.h" at the top of the file. Search the main function and add the following call to function inside: SEGGER_SYSVIEW_Conf(); SEGGER_SYSVIEW_Start();‍‍‍‍‍‍‍‍‍‍‍‍   12. Build and run your example. Run SystemView in your PC.
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This document describes the implementation of the Connected Home Gateway for the Internet of Things (IoT) and its controller implemented in a Smart device (tablet) running Android OS. The gateway is intended to serve as a communication bridge between WiFi/Ethernet and ZigBee Protocol, making every ZigBee-enabled device accessible and controllable from any smart device with Wi-Fi capabilities such as a smart phone or tablet. This will remove the need of having a ZigBee transceiver in every mobile device attempting to control the house appliances. In general, users will be able to: Remote control of Home Appliances using ZigBee protocol Any WiFi-enabled device could control the appliances without a ZigBee transceiver Achieve bi-directional communication between users and appliances Real system implementation would require a powerful MCU to manage all WiFi/Ethernet communication and a second MCU to manage all ZigBee communications. The Kinetis K60 and KW24 were selected among the different options available.
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NXP wireless solutions build upon decades of Wi-Fi, Bluetooth®, multiprotocol silicon, software and system design expertise, including 802.15.4 in the latest tri-radio architectures. NXP is committed to driving large-scale deployment across multiple markets by a broad array of power- and cost-optimized Wi-Fi, Bluetooth and 802.15.4 transceivers, enabling products with advanced Wi-Fi and multiradio capabilities including Wi-Fi 4, Wi-Fi 5 and Wi-Fi 6 chips.   Market Product Wi-Fi Spec Wi-Fi Support Summary  IoT IW623 802.11ax (Wi-Fi 6E) 2x2 Tri-band (2.4G/5/7 GHz) + 1x1 Single Band (2.4 GHz) supports Wi-Fi 6E, with a high-performance 2x2 tri-band module for fast and flexible connectivity, plus an extra 1x1 2.4 GHz module likely for compatibility or low-power tasks IoT IW693 802.11ax (Wi-Fi 6/6E) CDW 2x2 Dual Band (5-7 GHz) + 1x1 Single Band (2.4 GHz) High-speed, low-latency connectivity on modern bands (5 and 6 GHz). Compatibility with older devices via 2.4 GHz A 2x2 MIMO setup for better performance, plus a 1x1 fallback for basic connections IoT IW610 802.11ax (Wi-Fi 6) 1x1 DB (2.4/5 GHz)   IoT IW612 802.11ax (Wi-Fi 6) 1x1 DB (2.4/5 GHz)   IoT IW611 802.11ax (Wi-Fi 6) 1x1 DB (2.4/5 GHz)   IoT IW620 802.11ax (Wi-Fi 6) 2x2 DB (2.4/5 GHz)   IoT IW416 802.11n (Wi-Fi 4) 1x1 DB (2.4/5 GHz)       Markets Product Wi-Fi Spec Wi-Fi Support Summary Wireless MCU Hostless RW612 802.11ax (Wi-Fi 6) 1x1 DB (2.4/5 GHz) supports Wi-Fi 6, has a single antenna (1x1), and can connect to both 2.4 GHz and 5 GHz networks. Wireless MCU Hostless RW610 802.11ax (Wi-Fi 6) 1x1 DB (2.4/5 GHz) supports Wi-Fi 6, has a single antenna (1x1), and can connect to both 2.4 GHz and 5 GHz networks.   Markets Product Wi-Fi Spec Wi-Fi Support Automotive AW692 802.11ax (Wi-Fi 6) 2x2 + 1x1 CDW DB (2.4/5GHz + 2.4Ghz) Automotive AW693 802.11ax (Wi-Fi 6E) 2x2 + 1x1 CDW TB (2.4/5/6Ghz + 2.4Ghz) Automotive AW611 802.11ax (Wi-Fi 6) 1x1 DB (2.4/5 GHz) Automotive AW690 802.11ax (Wi-Fi 6) 1x1 CDW DB (2.4/5 GHz)   Wireless Module Partners Leading wireless connectivity solution providers offer NXP wireless modules in their wireless connectivity solutions. Module manufacturers develop Wi-Fi modules using NXP’s broad portfolio of Wi-Fi chips (system-on-chip (SoC)), including Wi-Fi 6 chips, Wi-Fi and Bluetooth® combo integrated circuits (ICs) and tri-radio SoCs with 802.15.4. NXP enables a broad range of wireless applications with an ecosystem of wireless module partners.   Why Use a Module Vendor? Accelerate time-to-market Avoid the complexity of RF design and testing Ensure regulatory compliance more easily (e.g. FCC, CE, ISED) Focus on the host product’s functionality while relying on the vendor for wireless performance   Useful Links Wi-Fi Basic concepts: This post provides information about the different terms used in Wi-Fi, 802.11 standards and the three types of 802.11 MAC frames. Wi-Fi Security Concepts: This post covers the security and authentication processes  Wi-Fi Connection/Disconnection process: In 802.11 standards, the connection procedure includes three major steps that shall be performed to make the device part of the Wi-Fi network and communicate in the network. Wi-Fi Software Drivers Locations: NXP Recommends using Wi-Fi source code drivers WiFi_BT_Integretation-(Linux_BSP_compilation_for_iMX_platform): This article describes how to compile the Linux BSP of the i.MX platform under ubuntu 18.04, 20.04 LTS and debian-10. This is a necessary step to integrate WIFI/BT to the I.MX platform. See the attachment for detailed steps. Enabling i.MX8MP-EVK uSDHC1 M.2 for Wi-Fi on Android-11.0.0_2.6.0: Detailed steps on enabling usdhc1 NXP Wi-Fi and Bluetooth Product:  The article will introduce how to build Wi-Fi Mass Market Driver Wi-Fi Firmware Automatic Recovery on RW61x: This article introduces the Wi-Fi automatic recovery feature as well as how to enable and verify it on RW61x SDK. Access Point Wi-Fi configuration on i.MX8 Family: This guide explains how to achieve that, using the i.MX8M Plus EVK (8MP) as the AP device and the i.MX8M Mini EVK (8MM) as the connected device. How to connect to a Wi-Fi network on i.MX8MP: this article guides you step by step how to connect to a Wi-Fi network NXP Wi-Fi/Bluetooth firmware on the i.MX8M series: steps to replace Wi-Fi/Bluetooth firmware on the i.MX8M series on Linux Enabling Wi-Fi on Zephyr projects with the FRDM-RW612: In this guide, we'll modify the mqtt_publisher example—originally designed for Ethernet—to work with Wi-Fi instead Training FRDM-iMX91 connectivity Wi-Fi Basic Hands-on FRDM-iMX91 connectivity Wi-Fi Bluetooth LE and OT COEX RW612/MCXW71 - Wi-Fi and thread border router Training FRDM-RW612 Getting Started, Wi-Fi CLI on VScode Community Support If you have questions regarding this training, please leave your comments in our Wireless MCU Community! here 
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The MCX W23 is a family of devices. All devices are Arm Cortex®-M33 based wireless microcontrollers for embedded applications supporting Bluetooth Low Energy 5.3. It can be used to develop IoT solutions. MCX W23xA supports LV_SM mode. MCX W23xB supports HV_SM and XR_SM mode. Building on NXP's strong history of providing industrial edge solutions, the MCX W series offers a wide operating temperature range from -40 °C to 125 °C. The Arm Cortex-M33 provides a security foundation, offering isolation to protect valuable IP and data with Trust Zone technology. It simplifies the design and software development of digital signal control systems with the integrated digital signal processing (DSP) instructions. To support security requirements, the MCX W23 also offers support for SHA-1, SHA2-256, AES, RSA, ECC, UUID, dynamic encryption, and decryption of the flash data using a PRINCE engine, debug authentication, and TBSA-M compliance. neidys_vargas_1-1760378278216.png   Documents Reference Manual Fact sheet Data Sheet Errata for MCX W23xUIK MCX W23 Hardware Design Guide Secure Reference manual** European Union Declaration of Conformity for FRDM-MCXW23 FRDM-MCXW23 Board User Manual Bluetooth Specifications The MCX W23 is compatible with the Bluetooth Low Energy 5.3 specification: – Bluetooth Low Energy 5.3 controller subsystem (QDID 200592) – Bluetooth Low Energy 5.3 host subsystem (QDID 226395) – Includes a 48-bit unique Bluetooth device address – Up to 4 simultaneous connections supported The MCX W23 supports the following Bluetooth Low Energy features: – Device privacy and network privacy modes (version 5.0) – Advertising extension PDUs (version 5.0) – Anonymous device address type (version 5.0) – Up to 2 Mbps data rate (version 5.0) – Long range (version 5.0) – High-duty cycle, Non connectable advertising (version 5.0) – Channel selection algorithm #2 (version 5.0) – High output power (version 5.0) – Advertising channel index (version 5.1) – Periodic advertising sync transfer (PAST) (version 5.1) – Supports LE power control feature (version 5.2) RF antenna: 50 Ω single-ended RF receiver characteristics: – Sensitivity −94 dBm in Bluetooth Low Energy 2 Mbps – Sensitivity −97 dBm in Bluetooth Low Energy 1 Mbps – Sensitivity −100 dBm in Bluetooth Low Energy 500 kbps – Sensitivity −102 dBm in Bluetooth Low Energy 125 kbps – Accurate RSSI measurement with ±3 dB accuracy Flexible RF transmitter level configurability: – TX mode 1 (TXM1): Range from −31 dBm to +2 dBm when VDD_RF exceeds 1.1 V – TX mode 2 (TXM2): Range from −28 dBm to +6 dBm when VDD_RF exceeds 1.7   Bluetooth_5.0_Feature_Overview Bluetooth_5.1_Feature_Overview  Bluetooth_5.2_Feature_Overview Bluetooth_5.3_Feature_Overview   Training MCX W Series Training - NXP Community   Equipment Wireless Equipment: This article provides the links to the Equipment that helps to the project development    Application Notes Power Management: AN14660: Power Management for MCX W23: This App Note provides information about the power manager software component. The application uses this component and the operating system to achieve optimal low-power states, based on the requirements of the application. RF: AN14575: MCX W23 Health Care IoT Peripheral Software Architecture: This App Note provides an overview of the software architecture for the MCX W23 Health care IoT Peripheral application. Designed as a model implementation, this application showcases the key features of the MCX W23 platform and serves as a foundation for developing product-quality applications. AN14659: MCX W23 Bluetooth Low Energy Power Consumption Analysis: This App Note describes the power consumption of the MCX W23 Bluetooth Low Energy (LE) device and the procedure to measure the current consumption using the MCXW23_EVK_BB and MCXW236B_RDM boards. AN2731: Compact Planar Antennas for 2.4 GHz Communication: This App Note is not an exhaustive inquiry into antenna design. It is instead focused on helping the customers understand enough board layout and antenna basics to select a correct antenna type for their application, as well as avoiding typical layout mistakes that cause performance issues that lead to delays Security: AN14657: Getting Started with Secure Boot on MCX W23: This application note covers the design of the bootloader ROM code that NXP has developed on the MCX W23, and how to use all its features. Useful Links Bluetooth LE FSCI Host Application running on FRDM-MCXN947 and MCXW23B-Click Board: The Bluetooth LE FSCI Host application demonstrates a host-side implementation for the Health Thermometer use case. It is designed to work alongside the FSCI Blackbox application, which runs on platforms such as the MCXW236 Click Board, FRDM-MCXW236, or other compatible Bluetooth LE wireless MCUs. Transmitter Maximum Output Power Override Application Note   Kinetis (../45/47/43;MCX W71/72/70) & MCX W23 Power Profile Tools (including Localization):  This page is dedicated to the Kinetis (KW35/KW38/KW45/KW47/KW43) and MCX W7x (MCX W71/W72/W70) Power Profile Tools. It will help you to estimate the power consumption in your application (Automotive or IIoT) and evaluate the battery lifetime of your solution. Development Tools    VSCode: MCUXpresso for Visual Studio Code (VS Code) provides an optimized embedded developer experience for code editing and development. Zephyr RTOs  NXP Application Code Hub: Application Code Hub (ACH) repository enables engineers to easily find microcontroller software examples, code snippets, application software packs and demos developed by our in-house experts. This space provides a quick, easy and consistent way to find microcontroller applications. NXP SPSDK: Is a unified, reliable, and easy to use Python SDK library working across the NXP MCU portfolio providing a strong foundation from quick customer prototyping up to production deployment. NXP SEC Tool: The MCUXpresso Secure Provisioning Tool us a GUI-based application provided to simplify generation and provisioning of bootable executables on NCP MCU devices. NXP OTAP Tool: Is an application that helps the user to perform an over the air firmware update of an NXP development board.
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