388 lines
13 KiB
C
388 lines
13 KiB
C
/*
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* This file is part of the MicroPython project, http://micropython.org/
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*
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* The MIT License (MIT)
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*
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* Copyright (c) 2013, 2014 Damien P. George
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* Copyright (c) 2015 Daniel Campora
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*
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* Permission is hereby granted, free of charge, to any person obtaining a copy
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* of this software and associated documentation files (the "Software"), to deal
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* in the Software without restriction, including without limitation the rights
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* to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
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* copies of the Software, and to permit persons to whom the Software is
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* furnished to do so, subject to the following conditions:
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*
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* The above copyright notice and this permission notice shall be included in
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* all copies or substantial portions of the Software.
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*
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* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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* IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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* FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
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* AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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* LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
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* OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
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* THE SOFTWARE.
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*/
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#include <stdint.h>
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#include <string.h>
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#include "py/runtime.h"
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#include "py/mperrno.h"
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#include "ports/stm32/bufhelper.h"
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#include "inc/hw_types.h"
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#include "inc/hw_mcspi.h"
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#include "inc/hw_ints.h"
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#include "inc/hw_memmap.h"
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#include "rom_map.h"
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#include "pin.h"
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#include "prcm.h"
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#include "spi.h"
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#include "pybspi.h"
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#include "pybsleep.h"
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#include "pybpin.h"
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#include "pins.h"
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/// \moduleref pyb
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/// \class SPI - a master-driven serial protocol
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/******************************************************************************
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DEFINE TYPES
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******************************************************************************/
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typedef struct _pyb_spi_obj_t {
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mp_obj_base_t base;
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uint baudrate;
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uint config;
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byte polarity;
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byte phase;
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byte submode;
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byte wlen;
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} pyb_spi_obj_t;
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/******************************************************************************
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DEFINE CONSTANTS
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******************************************************************************/
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#define PYBSPI_FIRST_BIT_MSB 0
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/******************************************************************************
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DECLARE PRIVATE DATA
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******************************************************************************/
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STATIC pyb_spi_obj_t pyb_spi_obj = {.baudrate = 0};
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STATIC const mp_obj_t pyb_spi_def_pin[3] = {&pin_GP14, &pin_GP16, &pin_GP30};
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/******************************************************************************
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DEFINE PRIVATE FUNCTIONS
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******************************************************************************/
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// only master mode is available for the moment
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STATIC void pybspi_init (const pyb_spi_obj_t *self) {
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// enable the peripheral clock
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MAP_PRCMPeripheralClkEnable(PRCM_GSPI, PRCM_RUN_MODE_CLK | PRCM_SLP_MODE_CLK);
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MAP_PRCMPeripheralReset(PRCM_GSPI);
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MAP_SPIReset(GSPI_BASE);
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// configure the interface (only master mode supported)
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MAP_SPIConfigSetExpClk (GSPI_BASE, MAP_PRCMPeripheralClockGet(PRCM_GSPI),
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self->baudrate, SPI_MODE_MASTER, self->submode, self->config);
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// enable the interface
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MAP_SPIEnable(GSPI_BASE);
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}
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STATIC void pybspi_tx (pyb_spi_obj_t *self, const void *data) {
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uint32_t txdata;
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switch (self->wlen) {
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case 1:
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txdata = (uint8_t)(*(char *)data);
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break;
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case 2:
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txdata = (uint16_t)(*(uint16_t *)data);
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break;
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case 4:
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txdata = (uint32_t)(*(uint32_t *)data);
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break;
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default:
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return;
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}
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MAP_SPIDataPut (GSPI_BASE, txdata);
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}
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STATIC void pybspi_rx (pyb_spi_obj_t *self, void *data) {
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uint32_t rxdata;
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MAP_SPIDataGet (GSPI_BASE, &rxdata);
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if (data) {
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switch (self->wlen) {
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case 1:
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*(char *)data = rxdata;
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break;
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case 2:
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*(uint16_t *)data = rxdata;
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break;
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case 4:
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*(uint32_t *)data = rxdata;
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break;
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default:
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return;
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}
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}
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}
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STATIC void pybspi_transfer (pyb_spi_obj_t *self, const char *txdata, char *rxdata, uint32_t len, uint32_t *txchar) {
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if (!self->baudrate) {
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mp_raise_OSError(MP_EPERM);
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}
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// send and receive the data
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MAP_SPICSEnable(GSPI_BASE);
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for (int i = 0; i < len; i += self->wlen) {
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pybspi_tx(self, txdata ? (const void *)&txdata[i] : txchar);
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pybspi_rx(self, rxdata ? (void *)&rxdata[i] : NULL);
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}
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MAP_SPICSDisable(GSPI_BASE);
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}
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/******************************************************************************/
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/* MicroPython bindings */
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/******************************************************************************/
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STATIC void pyb_spi_print(const mp_print_t *print, mp_obj_t self_in, mp_print_kind_t kind) {
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pyb_spi_obj_t *self = self_in;
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if (self->baudrate > 0) {
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mp_printf(print, "SPI(0, baudrate=%u, bits=%u, polarity=%u, phase=%u, firstbit=SPI.MSB)",
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self->baudrate, (self->wlen * 8), self->polarity, self->phase);
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} else {
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mp_print_str(print, "SPI(0)");
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}
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}
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STATIC mp_obj_t pyb_spi_init_helper(pyb_spi_obj_t *self, const mp_arg_val_t *args) {
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uint bits;
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switch (args[1].u_int) {
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case 8:
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bits = SPI_WL_8;
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break;
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case 16:
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bits = SPI_WL_16;
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break;
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case 32:
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bits = SPI_WL_32;
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break;
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default:
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goto invalid_args;
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break;
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}
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uint polarity = args[2].u_int;
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uint phase = args[3].u_int;
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if (polarity > 1 || phase > 1) {
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goto invalid_args;
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}
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uint firstbit = args[4].u_int;
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if (firstbit != PYBSPI_FIRST_BIT_MSB) {
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goto invalid_args;
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}
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// build the configuration
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self->baudrate = args[0].u_int;
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self->wlen = args[1].u_int >> 3;
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self->config = bits | SPI_CS_ACTIVELOW | SPI_SW_CTRL_CS | SPI_4PIN_MODE | SPI_TURBO_OFF;
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self->polarity = polarity;
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self->phase = phase;
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self->submode = (polarity << 1) | phase;
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// assign the pins
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mp_obj_t pins_o = args[5].u_obj;
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if (pins_o != mp_const_none) {
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mp_obj_t *pins;
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if (pins_o == MP_OBJ_NULL) {
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// use the default pins
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pins = (mp_obj_t *)pyb_spi_def_pin;
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} else {
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mp_obj_get_array_fixed_n(pins_o, 3, &pins);
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}
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pin_assign_pins_af (pins, 3, PIN_TYPE_STD_PU, PIN_FN_SPI, 0);
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}
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// init the bus
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pybspi_init((const pyb_spi_obj_t *)self);
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// register it with the sleep module
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pyb_sleep_add((const mp_obj_t)self, (WakeUpCB_t)pybspi_init);
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return mp_const_none;
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invalid_args:
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mp_raise_ValueError(MP_ERROR_TEXT("invalid argument(s) value"));
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}
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static const mp_arg_t pyb_spi_init_args[] = {
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{ MP_QSTR_id, MP_ARG_INT, {.u_int = 0} },
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{ MP_QSTR_baudrate, MP_ARG_KW_ONLY | MP_ARG_INT, {.u_int = 1000000} }, // 1MHz
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{ MP_QSTR_bits, MP_ARG_KW_ONLY | MP_ARG_INT, {.u_int = 8} },
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{ MP_QSTR_polarity, MP_ARG_KW_ONLY | MP_ARG_INT, {.u_int = 0} },
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{ MP_QSTR_phase, MP_ARG_KW_ONLY | MP_ARG_INT, {.u_int = 0} },
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{ MP_QSTR_firstbit, MP_ARG_KW_ONLY | MP_ARG_INT, {.u_int = PYBSPI_FIRST_BIT_MSB} },
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{ MP_QSTR_pins, MP_ARG_KW_ONLY | MP_ARG_OBJ, {.u_obj = MP_OBJ_NULL} },
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};
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STATIC mp_obj_t pyb_spi_make_new(const mp_obj_type_t *type, size_t n_args, size_t n_kw, const mp_obj_t *all_args) {
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// parse args
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mp_map_t kw_args;
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mp_map_init_fixed_table(&kw_args, n_kw, all_args + n_args);
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mp_arg_val_t args[MP_ARRAY_SIZE(pyb_spi_init_args)];
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mp_arg_parse_all(n_args, all_args, &kw_args, MP_ARRAY_SIZE(args), pyb_spi_init_args, args);
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// check the peripheral id
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if (args[0].u_int != 0) {
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mp_raise_OSError(MP_ENODEV);
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}
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// setup the object
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pyb_spi_obj_t *self = &pyb_spi_obj;
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self->base.type = &pyb_spi_type;
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// start the peripheral
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pyb_spi_init_helper(self, &args[1]);
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return self;
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}
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STATIC mp_obj_t pyb_spi_init(size_t n_args, const mp_obj_t *pos_args, mp_map_t *kw_args) {
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// parse args
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mp_arg_val_t args[MP_ARRAY_SIZE(pyb_spi_init_args) - 1];
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mp_arg_parse_all(n_args - 1, pos_args + 1, kw_args, MP_ARRAY_SIZE(args), &pyb_spi_init_args[1], args);
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return pyb_spi_init_helper(pos_args[0], args);
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}
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STATIC MP_DEFINE_CONST_FUN_OBJ_KW(pyb_spi_init_obj, 1, pyb_spi_init);
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/// \method deinit()
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/// Turn off the spi bus.
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STATIC mp_obj_t pyb_spi_deinit(mp_obj_t self_in) {
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// disable the peripheral
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MAP_SPIDisable(GSPI_BASE);
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MAP_PRCMPeripheralClkDisable(PRCM_GSPI, PRCM_RUN_MODE_CLK | PRCM_SLP_MODE_CLK);
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// invalidate the baudrate
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pyb_spi_obj.baudrate = 0;
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// unregister it with the sleep module
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pyb_sleep_remove((const mp_obj_t)self_in);
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return mp_const_none;
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}
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STATIC MP_DEFINE_CONST_FUN_OBJ_1(pyb_spi_deinit_obj, pyb_spi_deinit);
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STATIC mp_obj_t pyb_spi_write (mp_obj_t self_in, mp_obj_t buf) {
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// parse args
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pyb_spi_obj_t *self = self_in;
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// get the buffer to send from
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mp_buffer_info_t bufinfo;
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uint8_t data[1];
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pyb_buf_get_for_send(buf, &bufinfo, data);
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// just send
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pybspi_transfer(self, (const char *)bufinfo.buf, NULL, bufinfo.len, NULL);
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// return the number of bytes written
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return mp_obj_new_int(bufinfo.len);
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}
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STATIC MP_DEFINE_CONST_FUN_OBJ_2(pyb_spi_write_obj, pyb_spi_write);
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STATIC mp_obj_t pyb_spi_read(size_t n_args, const mp_obj_t *pos_args, mp_map_t *kw_args) {
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static const mp_arg_t allowed_args[] = {
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{ MP_QSTR_nbytes, MP_ARG_REQUIRED | MP_ARG_OBJ, },
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{ MP_QSTR_write, MP_ARG_INT, {.u_int = 0x00} },
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};
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// parse args
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pyb_spi_obj_t *self = pos_args[0];
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mp_arg_val_t args[MP_ARRAY_SIZE(allowed_args)];
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mp_arg_parse_all(n_args - 1, pos_args + 1, kw_args, MP_ARRAY_SIZE(args), allowed_args, args);
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// get the buffer to receive into
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vstr_t vstr;
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pyb_buf_get_for_recv(args[0].u_obj, &vstr);
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// just receive
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uint32_t write = args[1].u_int;
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pybspi_transfer(self, NULL, vstr.buf, vstr.len, &write);
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// return the received data
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return mp_obj_new_bytes_from_vstr(&vstr);
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}
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STATIC MP_DEFINE_CONST_FUN_OBJ_KW(pyb_spi_read_obj, 1, pyb_spi_read);
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STATIC mp_obj_t pyb_spi_readinto(size_t n_args, const mp_obj_t *pos_args, mp_map_t *kw_args) {
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static const mp_arg_t allowed_args[] = {
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{ MP_QSTR_buf, MP_ARG_REQUIRED | MP_ARG_OBJ, },
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{ MP_QSTR_write, MP_ARG_INT, {.u_int = 0x00} },
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};
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// parse args
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pyb_spi_obj_t *self = pos_args[0];
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mp_arg_val_t args[MP_ARRAY_SIZE(allowed_args)];
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mp_arg_parse_all(n_args - 1, pos_args + 1, kw_args, MP_ARRAY_SIZE(args), allowed_args, args);
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// get the buffer to receive into
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vstr_t vstr;
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pyb_buf_get_for_recv(args[0].u_obj, &vstr);
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// just receive
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uint32_t write = args[1].u_int;
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pybspi_transfer(self, NULL, vstr.buf, vstr.len, &write);
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// return the number of bytes received
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return mp_obj_new_int(vstr.len);
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}
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STATIC MP_DEFINE_CONST_FUN_OBJ_KW(pyb_spi_readinto_obj, 1, pyb_spi_readinto);
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STATIC mp_obj_t pyb_spi_write_readinto (mp_obj_t self, mp_obj_t writebuf, mp_obj_t readbuf) {
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// get buffers to write from/read to
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mp_buffer_info_t bufinfo_write;
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uint8_t data_send[1];
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mp_buffer_info_t bufinfo_read;
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if (writebuf == readbuf) {
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// same object for writing and reading, it must be a r/w buffer
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mp_get_buffer_raise(writebuf, &bufinfo_write, MP_BUFFER_RW);
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bufinfo_read = bufinfo_write;
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} else {
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// get the buffer to write from
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pyb_buf_get_for_send(writebuf, &bufinfo_write, data_send);
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// get the read buffer
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mp_get_buffer_raise(readbuf, &bufinfo_read, MP_BUFFER_WRITE);
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if (bufinfo_read.len != bufinfo_write.len) {
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mp_raise_ValueError(MP_ERROR_TEXT("invalid argument(s) value"));
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}
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}
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// send and receive
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pybspi_transfer(self, (const char *)bufinfo_write.buf, bufinfo_read.buf, bufinfo_write.len, NULL);
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// return the number of transferred bytes
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return mp_obj_new_int(bufinfo_write.len);
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}
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STATIC MP_DEFINE_CONST_FUN_OBJ_3(pyb_spi_write_readinto_obj, pyb_spi_write_readinto);
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STATIC const mp_rom_map_elem_t pyb_spi_locals_dict_table[] = {
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// instance methods
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{ MP_ROM_QSTR(MP_QSTR_init), MP_ROM_PTR(&pyb_spi_init_obj) },
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{ MP_ROM_QSTR(MP_QSTR_deinit), MP_ROM_PTR(&pyb_spi_deinit_obj) },
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{ MP_ROM_QSTR(MP_QSTR_write), MP_ROM_PTR(&pyb_spi_write_obj) },
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{ MP_ROM_QSTR(MP_QSTR_read), MP_ROM_PTR(&pyb_spi_read_obj) },
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{ MP_ROM_QSTR(MP_QSTR_readinto), MP_ROM_PTR(&pyb_spi_readinto_obj) },
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{ MP_ROM_QSTR(MP_QSTR_write_readinto), MP_ROM_PTR(&pyb_spi_write_readinto_obj) },
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// class constants
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{ MP_ROM_QSTR(MP_QSTR_MSB), MP_ROM_INT(PYBSPI_FIRST_BIT_MSB) },
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};
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STATIC MP_DEFINE_CONST_DICT(pyb_spi_locals_dict, pyb_spi_locals_dict_table);
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MP_DEFINE_CONST_OBJ_TYPE(
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pyb_spi_type,
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MP_QSTR_SPI,
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MP_TYPE_FLAG_NONE,
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make_new, pyb_spi_make_new,
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print, pyb_spi_print,
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locals_dict, &pyb_spi_locals_dict
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);
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