FR8008G-U 蓝牙和LVGL同时跑,由于蓝牙协议栈基本上把内部RAM用完了,所以LVGL只能在PSRAM上运行,但是在PSRAM上运行比在内部RAM运行慢,我测试了下慢了将近6倍,请问PSRAM还有没有提升空间?或者还有其他办法解决上面LVGL和蓝牙同时跑内部RAM用完的问题,以下是我的PSRAM配置pmu_ioldosw_ctrl(true);
__SYSTEM_GPIO_CLK_ENABLE();
system_regs->mdm_qspi_cfg.qspi_ref_128m_en = 1; // configure qspi reference clock to 128MHz
system_regs->mdm_qspi_cfg.qspi_ref_clk_sel = 1; // qspi is used for internal flash, set its reference clock to 96MHz
// system_enable_internal_flash_q_read(0x01);
system_set_internal_flash_clock_div(0);
// configure PSRAM pin and init PSRAM
system_set_port_mux(GPIO_PORT_C, GPIO_BIT_0, PORTC0_FUNC_QSPI0_IO3);
system_set_port_mux(GPIO_PORT_C, GPIO_BIT_1, PORTC1_FUNC_QSPI0_SCLK0);
system_set_port_mux(GPIO_PORT_C, GPIO_BIT_2, PORTC2_FUNC_QSPI0_CSN0);
system_set_port_mux(GPIO_PORT_C, GPIO_BIT_3, PORTC3_FUNC_QSPI0_IO1);
system_set_port_mux(GPIO_PORT_C, GPIO_BIT_4, PORTC4_FUNC_QSPI0_IO2);
system_set_port_mux(GPIO_PORT_C, GPIO_BIT_5, PORTC5_FUNC_QSPI0_IO0);
psram_init(PSRAM_CLK_SEL_COREH_96M);
#include <stdint.h>
#include <string.h>
#include "plf.h"
#include "driver_qspi.h"
#include "driver_psram.h"
#include "driver_system.h"
#include "driver_pmu.h"
#include "driver_cache.h"
#include "co_printf.h"
#ifdef INLINE
#undef INLINE
#endif
#define INLINE
#define PSRAM_ENABLE_Q_MODE 1
#define PSRAM_CLK_DIV_SEL QSPI_BAUDRATE_DIV_2
#define PSRAM_BASE QSPI1_DAC_ADDRESS
#define PSRAM_READ_IDENTIFICATION 0x9F
#define PSRAM_READ_OPCODE 0x03
#define PSRAM_FAST_READ_OPCODE 0x0B
#define PSRAM_FAST_QUAL_READ_OPCODE 0xEB
#define PSRAM_PAGE_PROGRAM_OPCODE 0x02
#define PSRAM_PAGE_QUAL_PROGRAM_OPCODE 0x38
#define PSRAM_ENTER_QUAD_MODE_OPCODE 0x35
#define PSRAM_EXIT_QUAD_MODE_OPCODE 0xF5
#define PSRAM_RESET_ENABLE_OPCODE 0x66
#define PSRAM_RESET_OPCODE 0x99
#define QSPI0_STIG_MAX_SINGLE_LEN 8
#define QSPI0_STIG_BANK_DEPTH 128
#define QSPI0_HIGH_SPEED 1
uint8_t psram_delay = 0xFF;
static const struct qspi_stig_reg_t psram_read_id_cmd = {
.enable_bank = 0,
.dummy_cycles = 0,
.write_bytes = 0,
.enable_write = 0,
.addr_bytes = 0,
.enable_mode = 0,
.enable_cmd_addr = 0,
.read_bytes = 3,
.enable_read = 1,
.opcode = PSRAM_READ_IDENTIFICATION,
};
static const struct qspi_stig_reg_t enter_quad_mode_cmd = {
.enable_bank = 0,
.dummy_cycles = 0,
.write_bytes = 0,
.enable_write = 0,
.addr_bytes = 0,
.enable_mode = 0,
.enable_cmd_addr = 0,
.read_bytes = 0,
.enable_read = 0,
.opcode = PSRAM_ENTER_QUAD_MODE_OPCODE,
};
static const struct qspi_stig_reg_t reset_enable_cmd = {
.enable_bank = 0,
.dummy_cycles = 0,
.write_bytes = 0,
.enable_write = 0,
.addr_bytes = 0,
.enable_mode = 0,
.enable_cmd_addr = 0,
.read_bytes = 0,
.enable_read = 0,
.opcode = PSRAM_RESET_ENABLE_OPCODE,
};
static const struct qspi_stig_reg_t reset_cmd = {
.enable_bank = 0,
.dummy_cycles = 0,
.write_bytes = 0,
.enable_write = 0,
.addr_bytes = 0,
.enable_mode = 0,
.enable_cmd_addr = 0,
.read_bytes = 0,
.enable_read = 0,
.opcode = PSRAM_RESET_OPCODE,
};
//static const struct qspi_stig_reg_t exit_quad_mode_cmd = {
// .enable_bank = 0,
// .dummy_cycles = 0,
// .write_bytes = 0,
// .enable_write = 0,
// .addr_bytes = 0,
// .enable_mode = 0,
// .enable_cmd_addr = 0,
// .read_bytes = 0,
// .enable_read = 0,
// .opcode = PSRAM_EXIT_QUAD_MODE_OPCODE,
//};
volatile struct qspi_regs_t *qspi0_ctrl = (volatile struct qspi_regs_t *)QSPI0_APB_BASE;
INLINE void qspi0_cfg_set_enable(uint8_t en)
{
qspi0_ctrl->config.enable = en;
}
INLINE void qspi0_cfg_set_cpol(uint8_t high)
{
qspi0_ctrl->config.cpol = high;
}
INLINE void qspi0_cfg_set_cpha(uint8_t rising)
{
qspi0_ctrl->config.cpha = rising;
}
INLINE void qspi0_cfg_set_hold(uint8_t hold)
{
qspi0_ctrl->config.hold_pin = hold;
}
INLINE void qspi0_cfg_set_reset(uint8_t reset)
{
qspi0_ctrl->config.reset_pin = reset;
}
INLINE void qspi0_cfg_set_reset_sel(uint8_t dedicated)
{
qspi0_ctrl->config.reset_pin_conf = dedicated;
}
INLINE void qspi0_cfg_set_enable_dac(uint8_t en)
{
qspi0_ctrl->config.enable_DAC = en;
}
INLINE void qspi0_cfg_set_enable_legacy(uint8_t en)
{
qspi0_ctrl->config.enable_legacy = en;
}
INLINE void qspi0_cfg_set_write_protect(uint8_t wp)
{
qspi0_ctrl->config.write_en_pin = wp;
}
INLINE void qspi0_cfg_set_enable_remap(uint8_t en)
{
qspi0_ctrl->config.enable_AHB_remap = en;
}
static void qspi0_cfg_set_baudrate(uint8_t baudrate);
INLINE void qspi0_cfg_set_enable_AHB_decoder(uint8_t en)
{
qspi0_ctrl->config.enable_AHB_decoder = en;
}
INLINE int qspi0_is_busy(void)
{
return (qspi0_ctrl->config.status == 0);
}
INLINE void qspi0_read_set_opcode(uint8_t opcode)
{
qspi0_ctrl->read_conf.opcode_no_XIP = opcode;
}
INLINE void qspi0_read_set_instruction_type(uint8_t type)
{
qspi0_ctrl->read_conf.instruction_type = type;
}
INLINE void qspi0_read_set_address_type(uint8_t type)
{
qspi0_ctrl->read_conf.addr_type = type;
}
INLINE void qspi0_read_set_data_type(uint8_t type)
{
qspi0_ctrl->read_conf.data_type = type;
}
INLINE void qspi0_read_set_mode_en(uint8_t en)
{
qspi0_ctrl->read_conf.enable_mode = en;
}
INLINE void qspi0_read_set_dummy_cycles(uint8_t cycles)
{
qspi0_ctrl->read_conf.dummy_cycles = cycles;
}
INLINE void qspi0_write_set_opcode(uint8_t opcode)
{
qspi0_ctrl->write_conf.opcode = opcode;
}
INLINE void qspi0_write_set_wel_dis(uint8_t disable)
{
qspi0_ctrl->write_conf.disable_WEL = disable;
}
INLINE void qspi0_write_set_address_type(uint8_t type)
{
qspi0_ctrl->write_conf.addr_type = type;
}
INLINE void qspi0_write_set_data_type(uint8_t type)
{
qspi0_ctrl->write_conf.data_type = type;
}
INLINE void qspi0_write_set_dummy_cycles(uint8_t cycles)
{
qspi0_ctrl->write_conf.dummy_cycles = cycles;
}
INLINE void qspi0_set_remap_address(uint32_t address)
{
qspi0_ctrl->remap_address = address;
}
INLINE void qspi0_set_mode_bit(uint8_t mode)
{
qspi0_ctrl->mode_bits = (uint32_t)mode;
}
INLINE void qspi0_poll_set_opcode(uint8_t opcode)
{
qspi0_ctrl->poll_cfg.opcode_poll = opcode;
}
INLINE void qspi0_poll_set_bit_index(uint8_t index)
{
qspi0_ctrl->poll_cfg.poll_bit_index = index;
}
INLINE void qspi0_poll_set_polarity(uint8_t pol)
{
qspi0_ctrl->poll_cfg.poll_polarity = pol;
}
INLINE void qspi0_poll_set_disable(uint8_t dis)
{
qspi0_ctrl->poll_cfg.disable_poll = dis;
}
INLINE void qspi0_poll_set_expire(uint8_t en, uint32_t duration)
{
qspi0_ctrl->poll_cfg.enable_expiration = en;
if(en) {
qspi0_ctrl->poll_expiration = duration;
}
}
INLINE void qspi0_poll_set_poll_count(uint8_t count)
{
qspi0_ctrl->poll_cfg.poll_count = count;
}
INLINE void qspi0_poll_set_poll_delay(uint8_t delay)
{
qspi0_ctrl->poll_cfg.poll_repetition_delay = delay;
}
INLINE void qspi0_set_cmd_addr(uint32_t addr)
{
qspi0_ctrl->cmd_address = addr;
}
INLINE void qspi0_stig_set_opcode(uint8_t opcode)
{
qspi0_ctrl->cmd_ctrl.opcode = opcode;
}
INLINE void qspi0_stig_set_read_en(uint8_t en)
{
qspi0_ctrl->cmd_ctrl.enable_read = en;
}
INLINE void qspi0_stig_set_read_bytes(uint8_t bytes)
{
qspi0_ctrl->cmd_ctrl.read_bytes = bytes;
}
INLINE void qspi0_stig_set_addr(uint8_t en, uint8_t bytes, uint32_t addr)
{
qspi0_ctrl->cmd_ctrl.enable_cmd_addr = en;
qspi0_ctrl->cmd_ctrl.addr_bytes = bytes;
if(en) {
qspi0_ctrl->cmd_address = addr;
}
}
INLINE void qspi0_stig_set_mode_en(uint8_t en)
{
qspi0_ctrl->cmd_ctrl.enable_mode = en;
}
INLINE void qspi0_stig_set_write_en(uint8_t en)
{
qspi0_ctrl->cmd_ctrl.enable_write = en;
}
INLINE void qspi0_stig_set_write_bytes(uint8_t bytes)
{
qspi0_ctrl->cmd_ctrl.write_bytes = bytes;
}
INLINE void qspi0_stig_set_dummy_cycles(uint8_t cycles)
{
qspi0_ctrl->cmd_ctrl.dummy_cycles = cycles;
}
INLINE void qspi0_stig_set_mem_bank(uint8_t en, uint8_t bytes)
{
qspi0_ctrl->cmd_ctrl.enable_bank = en;
if(en) {
qspi0_ctrl->cmd_ctrl_mem.mem_bank_req_bytes = bytes;
}
}
static void qspi0_cfg_set_baudrate(uint8_t baudrate)
{
qspi0_ctrl->config.baud_rate = baudrate;
}
static int qspi0_stig_cmd(struct qspi_stig_reg_t cmd, enum qspi_stig_cmd_type_t type, int len, uint8_t *buffer)
{
uint32_t tmp_u32[2];
uint8_t *tmp_u8 = (uint8_t *)tmp_u32;
if(type == QSPI_STIG_CMD_BANK_READ) {
if(QSPI0_STIG_BANK_DEPTH < len) {
return -1;
}
}
else {
if(QSPI0_STIG_MAX_SINGLE_LEN < len) {
return -1;
}
}
while(qspi0_is_busy());
if(type == QSPI_STIG_CMD_EXE) {
qspi0_ctrl->cmd_ctrl = cmd;
qspi0_ctrl->cmd_ctrl.execute = 1;
while(qspi0_ctrl->cmd_ctrl.progress_status);
}
else {
if(type == QSPI_STIG_CMD_WRITE) {
memcpy(tmp_u8, buffer, len);
qspi0_ctrl->write_data_L = tmp_u32[0];
qspi0_ctrl->write_data_H = tmp_u32[1];
cmd.write_bytes = len - 1;
qspi0_ctrl->cmd_ctrl = cmd;
qspi0_ctrl->cmd_ctrl.execute = 1;
while(qspi0_ctrl->cmd_ctrl.progress_status);
}
else {
cmd.read_bytes = len - 1;
qspi0_ctrl->cmd_ctrl = cmd;
qspi0_ctrl->cmd_ctrl.execute = 1;
while(qspi0_ctrl->cmd_ctrl.progress_status);
if(type == QSPI_STIG_CMD_READ) {
tmp_u32[0] = qspi0_ctrl->read_data_L;
tmp_u32[1] = qspi0_ctrl->read_data_H;
//co_printf("READ_L: 0x%08x, READ_H: 0x%08x.\r\n", tmp_u32[0], tmp_u32[1]);
memcpy(buffer, tmp_u8, len);
}
else {
//TBD, BANK READ
}
}
}
return 0;
}
void psram_enter_quad(void)
{
qspi0_stig_cmd(enter_quad_mode_cmd, QSPI_STIG_CMD_EXE, 0, NULL);
}
uint32_t psram_read_id(void)
{
uint32_t flash_id;
qspi0_stig_cmd(psram_read_id_cmd, QSPI_STIG_CMD_READ, 3, (uint8_t *)&flash_id);
return (flash_id&0xffffff);
}
static void psram_controller_init(uint16_t page_boundary)
{
while(qspi0_is_busy());
#if PSRAM_ENABLE_Q_MODE == 1
qspi0_read_set_opcode(PSRAM_FAST_READ_OPCODE);
qspi0_read_set_instruction_type(QSPI_WIRE_TYPE_QIO);
qspi0_read_set_address_type(QSPI_WIRE_TYPE_QIO);
qspi0_read_set_data_type(QSPI_WIRE_TYPE_QIO);
qspi0_read_set_dummy_cycles(4);
qspi0_read_set_mode_en(0);
qspi0_set_mode_bit(0);//8 bits data after addr
qspi0_write_set_opcode(PSRAM_PAGE_QUAL_PROGRAM_OPCODE);
qspi0_write_set_address_type(QSPI_WIRE_TYPE_QIO);
qspi0_write_set_data_type(QSPI_WIRE_TYPE_QIO);
qspi0_write_set_dummy_cycles(0);
#else
qspi0_read_set_opcode(PSRAM_FAST_QUAL_READ_OPCODE);
qspi0_read_set_instruction_type(QSPI_WIRE_TYPE_STAND);
qspi0_read_set_address_type(QSPI_WIRE_TYPE_QIO);
qspi0_read_set_data_type(QSPI_WIRE_TYPE_QIO);
qspi0_read_set_dummy_cycles(6);
qspi0_read_set_mode_en(0);
qspi0_set_mode_bit(0);//8 bits data after addr
qspi0_write_set_opcode(PSRAM_PAGE_QUAL_PROGRAM_OPCODE);
qspi0_write_set_address_type(QSPI_WIRE_TYPE_QIO);
qspi0_write_set_data_type(QSPI_WIRE_TYPE_QIO);
qspi0_write_set_dummy_cycles(0);
#endif
//init configuration register
qspi0_cfg_set_cpol(0);
qspi0_cfg_set_cpha(0);
qspi0_cfg_set_enable_dac(1);
qspi0_cfg_set_enable_legacy(0);
qspi0_cfg_set_enable_remap(1);
#if QSPI0_HIGH_SPEED
qspi0_cfg_set_baudrate(PSRAM_CLK_DIV_SEL);
#else
qspi0_cfg_set_baudrate(QSPI_BAUDRATE_DIV_32);
#endif
qspi0_cfg_set_enable_AHB_decoder(1);
qspi0_write_set_wel_dis(1);
qspi0_poll_set_disable(1);
#if QSPI0_HIGH_SPEED
qspi0_ctrl->read_cap.delay_capture = 3;
#else
qspi0_ctrl->read_cap.delay_capture = 0;
#endif
qspi0_ctrl->read_cap.enable_loopback_clk = 1;
qspi0_ctrl->delay.sel_start_offset = 2;
qspi0_ctrl->delay.sel_end_offset = 2;
qspi0_ctrl->delay.sel_dessert = 2;
qspi0_ctrl->cs_ctrl.rd_brk_en = 1;
qspi0_ctrl->cs_ctrl.disable_cs_after_first_byte = 1;
qspi0_ctrl->cs_ctrl.page_boundary_protect_en = 1;
qspi0_ctrl->cs_ctrl.page_boundary = page_boundary;
qspi0_set_remap_address(QSPI1_DAC_ADDRESS);
qspi0_cfg_set_enable(1);
}
void psram_cache_enable(void)
{
__CACHE_FLUSH(CACHE);
__CACHE_WR_MODE_SET(CACHE, CACHE_WR_WRITE_THROUGH);
__CACHE_ADDR_RANGEx_BANK_SET(CACHE, 0, 0x0000);
__CACHE_ADDR_RANGEx_MASK_SET(CACHE, 0, 0x0000);
__CACHE_ADDR_RANGEx_POL_SET(CACHE, 0, CACHE_POL_CACHABLE);
__CACHE_ADDR_RANGEx_ENABLE(CACHE, 0);
__CACHE_ENABLE(CACHE);
}
bool psram_init(enum psram_clk_sel_t clk_sel)
{
uint32_t ref_clk;
if (clk_sel >= PSRAM_CLK_SEL_MAX) {
return false;
}
switch (clk_sel) {
case PSRAM_CLK_SEL_COREH_48M:
system_regs->mdm_qspi_cfg.qspi0_ref_clk_sel = 0;
ref_clk = 48000000;
break;
case PSRAM_CLK_SEL_COREH_96M:
system_regs->mdm_qspi_cfg.qspi0_ref_clk_sel = 1;
ref_clk = 96000000;
break;
default:
return false;
}
system_regs->mdm_qspi_cfg.qspi0_ref_clk_en=1;
system_regs->mdm_qspi_cfg.qspi0_hclk_en=1;
system_regs->mdm_qspi_cfg.qspi0_io_ctl_oen=0;
if(psram_delay == 0xFF)
{
qspi0_stig_cmd(reset_enable_cmd, QSPI_STIG_CMD_EXE, 0, NULL);
qspi0_stig_cmd(reset_cmd, QSPI_STIG_CMD_EXE, 0, NULL);
#if PSRAM_ENABLE_Q_MODE == 1
psram_enter_quad();
#endif // PSRAM_ENABLE_Q_MODE == 1
}
/* about 100 bytes can be transmitted during 8us when QSPI clock is 24MHz */
ref_clk /= ((PSRAM_CLK_DIV_SEL+1) * 2);
uint32_t bytes = ref_clk / 240000;
uint32_t boundary_cfg = 1 << (31 - __CLZ(bytes));
if (boundary_cfg >= 0x100) {
boundary_cfg = 0x100;
}
psram_controller_init(boundary_cfg);
if(psram_delay != 0xFF)
{
qspi0_ctrl->read_cap.delay_capture = psram_delay;
}
else
{
/* detect read capture delay configuration */
uint8_t delay_lower, delay_upper, index;
*(volatile uint32_t *)(PSRAM_BASE) = 0x5a5a5a5a;
while(qspi0_is_busy());
for (index = 0; index < 16; index++) {
while(qspi0_is_busy());
qspi0_ctrl->read_cap.delay_capture = index;
if (*(volatile uint32_t *)(PSRAM_BASE) == 0x5a5a5a5a) {
break;
}
}
if (index == 16) {
system_regs->mdm_qspi_cfg.qspi0_ref_clk_en=0;
return false;
}
else {
delay_lower = index;
}
for (; index < 16; index++) {
while(qspi0_is_busy());
qspi0_ctrl->read_cap.delay_capture = index;
delay_upper = index;
if (*(volatile uint32_t *)(PSRAM_BASE) != 0x5a5a5a5a) {
break;
}
}
psram_delay = ((delay_lower + delay_upper)>>1);
while(qspi0_is_busy());
qspi0_ctrl->read_cap.delay_capture = psram_delay;
}
psram_cache_enable();
return true;
}