; --COPYRIGHT--,BSD_EX ; Copyright (c) 2012, Texas Instruments Incorporated ; All rights reserved. ; ; Redistribution and use in source and binary forms, with or without ; modification, are permitted provided that the following conditions ; are met: ; ; * Redistributions of source code must retain the above copyright ; notice, this list of conditions and the following disclaimer. ; ; * Redistributions in binary form must reproduce the above copyright ; notice, this list of conditions and the following disclaimer in the ; documentation and/or other materials provided with the distribution. ; ; * Neither the name of Texas Instruments Incorporated nor the names of ; its contributors may be used to endorse or promote products derived ; from this software without specific prior written permission. ; ; THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" ; AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, ; THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR ; PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR ; CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, ; EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, ; PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; ; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, ; WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR ; OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, ; EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. ; ; ****************************************************************************** ; ; MSP430 CODE EXAMPLE DISCLAIMER ; ; MSP430 code examples are self-contained low-level programs that typically ; demonstrate a single peripheral function or device feature in a highly ; concise manner. For this the code may rely on the device's power-on default ; register values and settings such as the clock configuration and care must ; be taken when combining code from several examples to avoid potential side ; effects. Also see www.ti.com/grace for a GUI- and www.ti.com/msp430ware ; for an API functional library-approach to peripheral configuration. ; ; --/COPYRIGHT-- ;****************************************************************************** ; MSP430F20xx Demo - I2C Slave Receiver, single byte ; ; Description: I2C Slave communicates with I2C Master using ; the USI. Master data should increment from 0x00 with each transmitted byte ; which is verified by the slave. ; LED off for address or data Ack; LED on for address or data NAck.d by the slave. ; ACLK = n/a, MCLK = SMCLK = Calibrated 1MHz ; ; ***THIS IS THE SLAVE CODE*** ; ; Slave Master ; (msp430x20x3_usi_07.asm) ; MSP430F20x2/3 MSP430F20x2/3 ; ----------------- ----------------- ; /|\| XIN|- /|\| XIN|- ; | | | | | | ; --|RST XOUT|- --|RST XOUT|- ; | | | | ; LED <-|P1.0 | | | ; | | | P1.0|-> LED ; | SDA/P1.7|<-------|P1.7/SDA | ; | SCL/P1.6|<-------|P1.6/SCL | ; ; Note: internal pull-ups are used in this example for SDA & SCL ; ; P. Thanigai ; Texas Instruments Inc. ; May 2007 ; Built with Code Composer Essentials Version: 2.0 ;****************************************************************************** I2CState .equ R4 MST_data .equ R5 slav_add .equ R6 .cdecls C,LIST, "msp430.h" ;------------------------------------------------------------------------------- .def RESET ; Export program entry-point to ; make it known to linker. ;------------------------------------------------------------------------------ .text ; Program Start ;------------------------------------------------------------------------------ RESET mov.w #0280h,SP ; Initialize stackpointer StopWDT mov.w #WDTPW+WDTHOLD,&WDTCTL ; Stop watchdog timer CheckCal cmp.b #0xFF,&CALBC1_1MHZ ; Check calibration constants jne Load ; if not erased, load. Trap jmp Trap ; if erased do not load, trap CPU! Load clr.b &DCOCTL ; Select lowest DCOx and MODx settings mov.b &CALBC1_1MHZ,&BCSCTL1 ; Set DCO to 1MHz mov.b &CALDCO_1MHZ,&DCOCTL SetupP1 mov.b #0xC0,&P1OUT ; P1.6 &P1.7 pullups bis.b #0xC0,&P1REN ; P1.6 &P1.7 pullups mov.b #0xFF,&P1DIR ; unused pins output direction SetupP2 clr.b &P2OUT ; mov.b #0xFF,&P2DIR SetupUSI mov.b #USIPE6+USIPE7+USISWRST,&USICTL0; Port, I2C slave mov.b #USIIE+USII2C+USISTTIE,&USICTL1 ;Enable I2C mode,interrupts mov.b #USICKPL,&USICKCTL ; Setup clock polarity bis.b #USIIFGCC,&USICNT bic.b #USISWRST,&USICTL0 bic.b #USIIFG,&USICTL1 clr.w I2CState clr.w MST_data mov.b #0x90,slav_add Mainloop bis.w #LPM0+GIE,SR ; Enter LPM0, enable interrupts jmp Mainloop ;------------------------------------------------------------------------------- USI_ISR ; ;------------------------------------------------------------------------------- bit.b #USISTTIFG,&USICTL1 ; Start entry? jnc Check_State bis.b #0x01,&P1OUT ; turn on LED, sequence start mov.w #2,I2CState ; First I2C state, Rx address Check_State add.w I2CState,PC ; I2C State Machine jmp STATE0 jmp STATE2 jmp STATE4 jmp STATE6 jmp STATE8 jmp STATE10 STATE0 nop ; Idle, should not get here bic.b #USIIFG,&USICTL1 reti STATE2 ; Rx address mov.b &USICNT,R8 ; Bit counter = 8, Rx address and.b #0xE0,R8 add.b #0x8,R8 mov.b R8,&USICNT bic.b #USISTTIFG,&USICTL1 ; Clear Start flag mov.w #4,I2CState ; Go to next state, chk address bic.b #USIIFG,&USICTL1 reti STATE4 ; Process address and send (N)Ack bit.b #0X01,&USISRL ; If read jnc Chk_Add inc.b slav_add ; Save R/W bit Chk_Add bis.b #USIOE,&USICTL0 ; SDA = output cmp.b slav_add,&USISRL ; address match? jnz Add_NACK clr.b &USISRL bic.b #0x01,&P1OUT ; LED off mov.w #8,I2CState ; Go to next state: Rx data bis.b #0x01,&USICNT ; Bit counter = 1, send Ack bit bic.b #USIIFG,&USICTL1 reti Add_NACK mov.b #0xFF,&USISRL ; Send NACK bis.b #0x1,&P1OUT ; LED on:error mov.w #6,I2CState ; go to next state, prep next start bis.b #0x01,&USICNT ; Bit counter = 1, Send Nack bic.b #USIIFG,&USICTL1 reti STATE6 ; Prep for Re-start condition bic.b #USIOE,&USICTL0 ; SDA = input mov.b #0x90,slav_add ; Reset Slave address clr.w I2CState ; Reset state machine bic.b #USIIFG,&USICTL1 reti STATE8 ; Receive data byte bic.b #USIOE,&USICTL0 ; SDA =input bis.b #0x8,&USICNT ; Bit counter = 8, Rx data mov.w #10,I2CState ; Go to next state,test data,(N)Ack bic.b #USIIFG,&USICTL1 reti STATE10 ; Check Data and Tx (N)Ack bis.b #USIOE,&USICTL0 ; SDA = output cmp.b MST_data,&USISRL ; If data valid ... jne Data_NACK clr.b &USISRL ; Send Ack inc.b MST_data ; Increment master data bic.b #0x1,&P1OUT ; LED off jmp STATE10_Exit Data_NACK mov.b #0xFF,&USISRL ; Send Nack bis.b #0x1,&P1OUT ; LED on : error STATE10_Exit bis.b #0x1,&USICNT ; Bit counter = 1, Send Nack mov.w #6,I2CState ; next state, prep for next start bic.b #USIIFG,&USICTL1 reti ;------------------------------------------------------------------------------- ; Interrupt Vectors ;------------------------------------------------------------------------------- .sect ".reset" ; MSP430 RESET Vector .short RESET ; .sect ".int04" ; USI Vector .short USI_ISR ; .end