291 lines
7.9 KiB
C
291 lines
7.9 KiB
C
//###########################################################################
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//
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// FILE: Example_2833xSci_Echoback.c
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//
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// TITLE: SCI Echo Back Example
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//
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//! \addtogroup f2833x_example_list
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//! <h1>SCI Echo Back (sci_echoback)</h1>
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//!
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//! This test receives and echo-backs data through the SCI-A port.
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//!
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//! The PC application 'hypterterminal' can be used to view the data
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//! from the SCI and to send information to the SCI. Characters received
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//! by the SCI port are sent back to the host.
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//!
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//! \b Running \b the \b Application
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//! -# Configure hyperterminal:
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//! Use the included hyperterminal configuration file SCI_96.ht.
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//! To load this configuration in hyperterminal
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//! -# Open hyperterminal
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//! -# Go to file->open
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//! -# Browse to the location of the project and
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//! select the SCI_96.ht file.
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//! -# Check the COM port.
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//! The configuration file is currently setup for COM1.
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//! If this is not correct, disconnect (Call->Disconnect)
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//! Open the File-Properties dialog and select the correct COM port.
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//! -# Connect hyperterminal Call->Call
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//! and then start the 2833x SCI echoback program execution.
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//! -# The program will print out a greeting and then ask you to
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//! enter a character which it will echo back to hyperterminal.
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//!
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//! As is, the program configures SCI-A for 9600 baud with
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//! SYSCLKOUT = 150MHz and LSPCLK = 37.5 MHz
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//! or SYSCLKOUT = 100MHz and LSPCLK = 25.0 Mhz
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//!
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//! \b Watch \b Variables \n
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//! - LoopCount - Number of characters sent
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//! - ErrorCount
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//!
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//! \b External \b Connections \n
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//! Connect the SCI-A port to a PC via a transceiver and cable.
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//! - GPIO28 is SCI_A-RXD (Connect to Pin3, PC-TX, of serial DB9 cable)
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//! - GPIO29 is SCI_A-TXD (Connect to Pin2, PC-RX, of serial DB9 cable)
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//
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//###########################################################################
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// $TI Release: $
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// $Release Date: $
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// $Copyright:
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// Copyright (C) 2009-2023 Texas Instruments Incorporated - http://www.ti.com/
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//
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// Redistribution and use in source and binary forms, with or without
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// modification, are permitted provided that the following conditions
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// are met:
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//
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// Redistributions of source code must retain the above copyright
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// notice, this list of conditions and the following disclaimer.
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//
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// Redistributions in binary form must reproduce the above copyright
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// notice, this list of conditions and the following disclaimer in the
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// documentation and/or other materials provided with the
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// distribution.
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//
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// Neither the name of Texas Instruments Incorporated nor the names of
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// its contributors may be used to endorse or promote products derived
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// from this software without specific prior written permission.
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//
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// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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// "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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// LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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// A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
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// OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
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// SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
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// LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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// DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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// THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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// (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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// OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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// $
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//###########################################################################
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//
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// Included Files
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//
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#include "DSP28x_Project.h" // Device Headerfile and Examples Include File
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//
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// Function Prototypes
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//
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void scia_echoback_init(void);
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void scia_fifo_init(void);
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void scia_xmit(int a);
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void scia_msg(char *msg);
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//
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// Globals
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//
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Uint16 LoopCount;
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Uint16 ErrorCount;
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//
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// Main
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//
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void main(void)
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{
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Uint16 ReceivedChar;
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char *msg;
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//
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// Step 1. Initialize System Control:
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// PLL, WatchDog, enable Peripheral Clocks
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// This example function is found in the DSP2833x_SysCtrl.c file.
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//
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InitSysCtrl();
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//
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// Step 2. Initialize GPIO:
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// This example function is found in the DSP2833x_Gpio.c file and
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// illustrates how to set the GPIO to it's default state.
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//
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// InitGpio(); Skipped for this example
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//
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// For this example, only init the pins for the SCI-A port.
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// This function is found in the DSP2833x_Sci.c file.
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//
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InitSciaGpio();
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//
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// Step 3. Clear all interrupts and initialize PIE vector table:
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// Disable CPU interrupts
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//
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DINT;
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//
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// Initialize PIE control registers to their default state.
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// The default state is all PIE interrupts disabled and flags
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// are cleared.
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// This function is found in the DSP2833x_PieCtrl.c file.
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//
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InitPieCtrl();
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//
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// Disable CPU interrupts and clear all CPU interrupt flags
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//
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IER = 0x0000;
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IFR = 0x0000;
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//
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// Initialize the PIE vector table with pointers to the shell Interrupt
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// Service Routines (ISR).
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// This will populate the entire table, even if the interrupt
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// is not used in this example. This is useful for debug purposes.
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// The shell ISR routines are found in DSP2833x_DefaultIsr.c.
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// This function is found in DSP2833x_PieVect.c.
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//
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InitPieVectTable();
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//
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// Step 4. Initialize all the Device Peripherals:
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// This function is found in DSP2833x_InitPeripherals.c
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//
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// InitPeripherals(); // Not required for this example
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//
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// Step 5. User specific code
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//
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LoopCount = 0;
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ErrorCount = 0;
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scia_fifo_init(); // Initialize the SCI FIFO
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scia_echoback_init(); // Initialize SCI for echoback
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msg = "\r\n\n\nHello World!\0";
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scia_msg(msg);
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msg = "\r\nYou will enter a character, and the DSP will echo \
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it back! \n\0";
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scia_msg(msg);
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for(;;)
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{
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msg = "\r\nEnter a character: \0";
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scia_msg(msg);
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//
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// Wait for inc character
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//
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while(SciaRegs.SCIFFRX.bit.RXFFST !=1)
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{
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//
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// wait for XRDY =1 for empty state
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//
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}
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//
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// Get character
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//
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ReceivedChar = SciaRegs.SCIRXBUF.all;
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//
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// Echo character back
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//
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msg = " You sent: \0";
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scia_msg(msg);
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scia_xmit(ReceivedChar);
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LoopCount++;
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}
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}
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//
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// scia_echoback_init - Test 1,SCIA DLB, 8-bit word, baud rate 0x000F,
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// default, 1 STOP bit, no parity
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//
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void
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scia_echoback_init()
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{
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//
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// Note: Clocks were turned on to the SCIA peripheral
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// in the InitSysCtrl() function
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//
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// 1 stop bit, No loopback, No parity,8 char bits,
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// async mode, idle-line protocol
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//
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SciaRegs.SCICCR.all =0x0007;
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//
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// enable TX, RX, internal SCICLK,
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// Disable RX ERR, SLEEP, TXWAKE
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//
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SciaRegs.SCICTL1.all =0x0003;
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SciaRegs.SCICTL2.all =0x0003;
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SciaRegs.SCICTL2.bit.TXINTENA =0;
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SciaRegs.SCICTL2.bit.RXBKINTENA =0;
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#if (CPU_FRQ_150MHZ)
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SciaRegs.SCIHBAUD =0x0001; // 9600 baud @LSPCLK = 37.5MHz.
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SciaRegs.SCILBAUD =0x00E7;
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#endif
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#if (CPU_FRQ_100MHZ)
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SciaRegs.SCIHBAUD =0x0001; // 9600 baud @LSPCLK = 20MHz.
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SciaRegs.SCILBAUD =0x0044;
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#endif
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SciaRegs.SCICTL1.all =0x0023; // Relinquish SCI from Reset
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}
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//
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// scia_xmit - Transmit a character from the SCI
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//
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void
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scia_xmit(int a)
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{
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while (SciaRegs.SCIFFTX.bit.TXFFST != 0)
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{
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}
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SciaRegs.SCITXBUF=a;
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}
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//
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// scia_msg -
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//
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void
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scia_msg(char * msg)
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{
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int i;
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i = 0;
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while(msg[i] != '\0')
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{
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scia_xmit(msg[i]);
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i++;
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}
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}
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//
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// scia_fifo_init - Initialize the SCI FIFO
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//
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void
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scia_fifo_init()
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{
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SciaRegs.SCIFFTX.all=0xE040;
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SciaRegs.SCIFFRX.all=0x204f;
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SciaRegs.SCIFFCT.all=0x0;
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}
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//
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// End of File
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//
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