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📄 myapp_ex08b.c

📁 This network protcol stack,it is very strong and powerful!
💻 C
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/******************************************************************************
*   MyApp_Ex01.c  - Initialization and main loop. 
*   MyApp_Ex02.c  - Energy Detection Scan
*   MyApp_Ex03a.c - A PAN Coordinator is started
*   MyApp_Ex03b.c - Device locates coordinator using Active Scan
*   MyApp_Ex04a.c - Coordinator responds to an Associate request 
*   MyApp_Ex04b.c - Device Associates to the PAN coordinator
*   MyApp_Ex05a.c - Coordinator receives data from device
*   MyApp_Ex05b.c - Device sends direct data to the coordinator
*   MyApp_Ex06a.c - Coordinator sends indirect data to device
*   MyApp_Ex06b.c - Device polls for data from the coordinator
*   MyApp_Ex07a.c - Coordinator starts a beaconed network
*   MyApp_Ex07b.c - Device receives data using automatic polling
*   MyApp_Ex08a.c - Coordinator uses security
* = MyApp_Ex08b.c - Device uses security = This file ==
*
* This demo application builds upon MyApp_Ex07b.c which demonstrated how
* to set up a device to associate to and transfer data from a beaconing
* coordinator.
*
* It it assumed that the demo application on the coordinator side is Ex08a for
* this example. The Ex08a application has been configured to apply security
* to the data frames that it is sending.
*
* To send data frames using security the security PIB attributes must be set
* up prior to sending the data frames. To have security applied to the data 
* frames they must be sent with the SecurityEnable bit (bit 3) in the TxOptions
* parameter of the MCPS-DATA.request message. The device has sufficient information
* about the coordinator once it receives the association confirmation from the
* coordinator. Hence, once the association indication is received the coordinator
* sets up the appropriate security PIB attributes. In this example the device
* will communicate with the coordinator in secured mode (2), using security
* level 6 (ENC-MIC-64).
*
* To test the data transfer from the coordinator to the device, both should be
* connected to a PC with an RS232 terminal at 19200bps, 8N1. When sending an
* ASCII file (send as text) from the coordinators terminal, the file will be 
* printed to the terminal connected to the device. It resembles a bidirectional
* wireless RS232 cable replacement (though, without error checking and flow 
* control in this simple example).
*
* The steps required for applying security to the data frames are:
* 1) Set the relevant PIB attributes.
* 2) Set the SecurityEnable bit (bit 3) in the TxOptions of the MCPS-DATA.request.
*
******************************************************************************/

#include "802_15_4.h" /* Include everything related to the 802.15.4 interface*/
#include "Uart.h"     /* Defines the interface of the demo UART. */
#include "ToolBox.h"

/* Defines the channels to scan. Each bit represents one channel. Use
   0x07FFF800 to scan all 16 802.15.4 channels in the 2.4GHz band. */
#define SCAN_CHANNELS 0x07FFF800

/* Maximum number of outstanding packets */
#define MAX_PENDING_DATA_PACKETS 2

/* Default size of data payload in MCPS-Data.request.
   The length has no real meaning since MCPS-Data.requests
   are always sent in one-size buffers big enough to hold
   a maximum length data frame. */
#define DEFAULT_DATA_LENGTH 20

/* Forward declarations of helper functions */
uint8_t App_StartScan(uint8_t scanType);
uint8_t App_HandleScanPassiveConfirm(nwkMessage_t *pMsg);
uint8_t App_WaitMsg(nwkMessage_t *pMsg, uint8_t msgType);
uint8_t App_SendAssociateRequest(void);
void    App_HandleAssociateConfirm(nwkMessage_t *pMsg);
void    App_HandleMcpsInput(mcpsToNwkMessage_t *pMsgIn);
void    App_TransmitUartData(void);
void    App_InitSecurity(void);

/* All states in the applications state machine */
enum {
  stateInit,
  stateScanPassiveStart,
  stateScanPassiveWaitConfirm,
  stateAssociate,
  stateAssociateWaitConfirm,
  stateListen,
  stateTerminate
};

/* Error codes */
enum {
  errorNoError,
  errorWrongConfirm,
  errorNotSuccessful,
  errorNoMessage,
  errorAllocFailed,
  errorInvalidParameter,
  errorNoScanResults
};


/* The current state of the applications state machine */
uint8_t state;

/* Information about the PAN we are part of */
panDescriptor_t coordInfo;

/* This is either the short address assigned by the PAN coordinator
   during association, or our own extended MAC address. */
uint8_t myAddress[8];

/* The devices address mode. If 2 (gAddrModeShort_c), then myAddress
   contains the short address assigned by the PAN coordinator. If 3
   (gAddrModeLong_c), then myAddress is equal to the extended address. */
uint8_t myAddrMode;

/* Data request packet for sending UART input to the coordinator */
nwkToMcpsMessage_t *pPacket;

/* The security level */
const uint8_t securityLevel = 6;

/* The security mode */
const uint8_t securityMode = 2;

/* The MSDU handle is a unique data packet identifier */
uint8_t msduHandle;

/* Number of pending data packets */
uint8_t numPendingPackets;

/* Application input queues */
anchor_t mMlmeNwkInputQueue;
anchor_t mMcpsNwkInputQueue;


/* Application Main Loop */
void main(void)
{ 
  /* Pointer for storing the messages from MLME, MCPS, and ASP. */
  void *pMsgIn;
  /* Stores the status code returned by some functions. */
  uint8_t rc;
  /* return value of Mlme_Main() - not used yet */
  uint8_t macStatus;
  
  /* Initialize variables */
  state = stateInit;

  /* Prepare input queues.*/
  MSG_InitQueue(&mMlmeNwkInputQueue);
  MSG_InitQueue(&mMcpsNwkInputQueue);

  /* Execute the application state machine */    
  while(state < stateTerminate)
  {
    /* Preset error to contain the success code */
    rc = errorNoError;
    
    /* Try to get a message from MLME */
    if(MSG_Pending(&mMlmeNwkInputQueue))
      pMsgIn = MSG_DeQueue(&mMlmeNwkInputQueue);
    else
      pMsgIn = NULL;
      
    switch(state)
    {
    case stateInit:
      /* Initialize the UART so that we can print out status messages */
      Uart_Init();
      /* Initialize the 802.15.4 stack */
      Init_802_15_4();
      /* Goto Energy Detection state. */
      state = stateScanPassiveStart;
      /* Reset number of pending packets */
      numPendingPackets = 0;

      /* Print a welcome message to the UART */
      Uart_Print("The Myapp_Ex08b demo application is initialized and ready.\n\n");
      break;
      
    case stateScanPassiveStart:
      /* Start the Passive scan, and goto wait for confirm state. */
      Uart_Print("Start scanning for a PAN coordinator\n");
      rc = App_StartScan(gScanModePassive_c);
      if(rc == errorNoError)
      {
        state = stateScanPassiveWaitConfirm;
      }
      break;
      
    case stateScanPassiveWaitConfirm:
      /* Stay in this state until the Scan confirm message
         arrives, and then goto the associate state. */
         
      /* ALWAYS free the beacon frame contained in the beacon notify indication.*/
      rc = App_WaitMsg(pMsgIn, gNwkBeaconNotifyInd_c);
      if(rc == errorNoError) {
        MSG_Free(((nwkMessage_t *)pMsgIn)->msgData.beaconNotifyInd.pBufferRoot);
        Uart_Print("Received an MLME-Beacon Notify Indication\n");
      }
      
      /* Handle the Scan Confirm message. */
      rc = App_WaitMsg(pMsgIn, gNwkScanCnf_c);
      if(rc == errorNoError)
      {
        rc = App_HandleScanPassiveConfirm(pMsgIn);
        if(rc == errorNoError)
        {
          Uart_Print("Found a coordinator with the following properties:\n");
          Uart_Print("----------------------------------------------------");
          Uart_Print("\nAddress............0x"); Uart_PrintHex(coordInfo.coordAddress, 
                                                               coordInfo.coordAddrMode == gAddrModeShort_c ? 2 : 8, 0);
          Uart_Print("\nPAN ID.............0x"); Uart_PrintHex(coordInfo.coordPanId, 2, 0);
          Uart_Print("\nLogical Channel....0x"); Uart_PrintHex(&coordInfo.logicalChannel, 1, 0);
          Uart_Print("\nBeacon Spec........0x"); Uart_PrintHex(coordInfo.superFrameSpec, 2, 0);
          Uart_Print("\nLink Quality.......0x"); Uart_PrintHex(&coordInfo.linkQuality, 1, 0);
          Uart_Print("\n\n");

          state = stateAssociate;
        }
        else
          Uart_Print("Scan did not find a suitable coordinator\n");
      }
      break;

    case stateAssociate:
      /* Associate to the PAN coordinator */
      Uart_Print("Associating to PAN coordinator on channel 0x");
      Uart_PrintHex(&(coordInfo.logicalChannel), 1, gPrtHexNewLine_c);
      rc = App_SendAssociateRequest();
      if(rc == errorNoError)
        state = stateAssociateWaitConfirm;
      break; 

    case stateAssociateWaitConfirm:
      /* Stay in this state until the Associate confirm message
         arrives, and then goto the Listen state. */
      rc = App_WaitMsg(pMsgIn, gNwkAssociateCnf_c);
      if(rc == errorNoError)
      {
        App_HandleAssociateConfirm(pMsgIn);
        state = stateListen;
        Uart_Print("Successfully associated with the coordinator.\n");
        Uart_Print("We were assigned the short address 0x");
        Uart_PrintHex(myAddress, myAddrMode == gAddrModeShort_c ? 2 : 8, 0);
        Uart_Print("\n\nReady to send and receive data over the UART.\n\n");
      }
      break; 
      
    case stateListen:
      /* Stay in this state forever. */
      break;
    }
    
    if(pMsgIn)
      /* ALWAYS free messages from MLME */
      MSG_Free(pMsgIn);

    
    /* If we are associated then check MCPS queue and UART data buffer. */
    if(state == stateListen)
    {
      /* Get input from MCPS. */
      if(MSG_Pending(&mMcpsNwkInputQueue))

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