use qfplib; fix I2S clock

main
Clyne 7 months ago
parent a78f3f6fe9
commit eea21d422b
Signed by: clyne
GPG Key ID: 3267C8EBF3F9AFC7

@ -5,7 +5,7 @@
# Compiler options here.
ifeq ($(USE_OPT),)
USE_OPT = -O3 -ggdb -fomit-frame-pointer -falign-functions=16
USE_OPT = -O3 -ggdb -fomit-frame-pointer -falign-functions=16 -fno-stack-protector
endif
# C specific options here (added to USE_OPT).
@ -25,7 +25,7 @@ endif
# Linker extra options here.
ifeq ($(USE_LDOPT),)
USE_LDOPT = -lm
USE_LDOPT =
endif
# Enable this if you want link time optimizations (LTO).
@ -66,12 +66,12 @@ endif
# Enables the use of FPU (no, softfp, hard).
ifeq ($(USE_FPU),)
USE_FPU = softfp
USE_FPU = no
endif
# FPU-related options.
ifeq ($(USE_FPU_OPT),)
USE_FPU_OPT = -mfloat-abi=$(USE_FPU) -mfpu=fpv4-sp-d16
USE_FPU_OPT = #-mfloat-abi=$(USE_FPU) -mfpu=fpv4-sp-d16
endif
#
@ -89,7 +89,7 @@ PROJECT = ch
MCU = cortex-m0
# Imported source files and paths.
CHIBIOS := ../..
CHIBIOS := ../../ChibiOS
CONFDIR := ./cfg
BUILDDIR := ./build
DEPDIR := ./.dep
@ -127,14 +127,15 @@ CPPSRC = $(ALLCPPSRC) \
main.cpp
# List ASM source files here.
ASMSRC = $(ALLASMSRC)
ASMSRC = $(ALLASMSRC) \
qfplib-m0-full-20240105/qfplib-m0-full.s
# List ASM with preprocessor source files here.
ASMXSRC = $(ALLXASMSRC)
# Inclusion directories.
INCDIR = $(CONFDIR) $(ALLINC) \
fpm/include
qfplib-m0-full-20240105
# Define C warning options here.
CWARN = -Wall -Wextra -Wundef -Wstrict-prototypes

@ -67,7 +67,7 @@
#define STM32_PLLQ_VALUE 4
#define STM32_PLLR_VALUE 4
#define STM32_HPRE STM32_HPRE_DIV1
#define STM32_PPRE STM32_PPRE_DIV1
#define STM32_PPRE STM32_PPRE_DIV4
#define STM32_MCOSEL STM32_MCOSEL_NOCLOCK
#define STM32_MCOPRE STM32_MCOPRE_DIV1
#define STM32_LSCOSEL STM32_LSCOSEL_NOCLOCK
@ -79,7 +79,7 @@
#define STM32_USART2SEL STM32_USART2SEL_PCLK
#define STM32_LPUART1SEL STM32_LPUART1SEL_PCLK
#define STM32_I2C1SEL STM32_I2C1SEL_PCLK
#define STM32_I2S1SEL STM32_I2S1SEL_HSI16
#define STM32_I2S1SEL STM32_I2S1SEL_SYSCLK
#define STM32_LPTIM1SEL STM32_LPTIM1SEL_PCLK
#define STM32_TIM1SEL STM32_TIM1SEL_TIMPCLK
#define STM32_RNGSEL STM32_RNGSEL_HSI16

@ -9,31 +9,31 @@
static constexpr auto& WEIGHTING = A_weighting;
static constexpr auto& MIC_EQUALIZER = SPH0645LM4H_B_RB;
static constexpr sos_t MIC_OFFSET_DB ( 0.f); // Linear offset
static constexpr sos_t MIC_SENSITIVITY (-26.f); // dBFS value expected at MIC_REF_DB
static constexpr sos_t MIC_REF_DB ( 94.f); // dB where sensitivity is specified
static constexpr float MIC_OFFSET_DB ( 0.f); // Linear offset
static constexpr float MIC_SENSITIVITY (-26.f); // dBFS value expected at MIC_REF_DB
static constexpr float MIC_REF_DB ( 94.f); // dB where sensitivity is specified
static constexpr sos_t MIC_OVERLOAD_DB (120.f); // dB - Acoustic overload point
static constexpr sos_t MIC_NOISE_DB ( 29.f); // dB - Noise floor
static constexpr auto MIC_BITS = 16u; // SPH0645 is actually 18 bits
static constexpr auto SAMPLE_RATE = 32000u;
static constexpr auto MIC_BITS = 18u;
static constexpr auto SAMPLE_RATE = 48000u;
static constexpr unsigned I2S_BUFSIZ = 512; // was 1024
static constexpr unsigned I2S_STRIDE = 16; // was 8
static constexpr unsigned I2S_BUFSIZ = 1024;
static constexpr unsigned I2S_STRIDE = 16;
// Calculate reference amplitude value at compile time
static const auto MIC_REF_AMPL = fpm::pow(sos_t(10), MIC_SENSITIVITY / 20) *
static const auto MIC_REF_AMPL = qfp_fpow(10.f, MIC_SENSITIVITY / 20) *
((1 << (MIC_BITS - 1)) - 1);
static SEMAPHORE_DECL(i2sReady, 0);
static THD_WORKING_AREA(waThread1, 128);
static std::array<uint32_t, I2S_BUFSIZ> i2sBuffer;
static sos_t Leq_sum_sqr (0);
static sos_t Leq_sum_sqr (0.f);
static unsigned Leq_samples = 0;
static THD_FUNCTION(Thread1, arg);
static void i2sCallback(I2SDriver *i2s);
static constexpr auto I2SPRval = SAMPLE_RATE * 64 / 1000 / 1024 * 2;
static constexpr unsigned I2SPRval = 16'000'000 / SAMPLE_RATE / 32 / 2;
static constexpr I2SConfig i2sConfig = {
/* TX buffer */ NULL,
/* RX buffer */ i2sBuffer.data(),
@ -43,11 +43,11 @@ static constexpr I2SConfig i2sConfig = {
(0 << SPI_I2SCFGR_I2SSTD_Pos) | // Philips I2S
(1 << SPI_I2SCFGR_DATLEN_Pos) | // 24-bit
SPI_I2SCFGR_CHLEN, // 32-bit frame
/* I2SPR */ I2SPRval | (((I2SPRval / 2) & 1) ? SPI_I2SPR_ODD : 0)
/* I2SPR */ (I2SPRval / 2) | ((I2SPRval & 1) ? SPI_I2SPR_ODD : 0)
};
THD_TABLE_BEGIN
THD_TABLE_THREAD(0, "blinker1", waThread1, Thread1, NULL)
THD_TABLE_THREAD(0, "main", waThread1, Thread1, NULL)
THD_TABLE_END
int main(void)
@ -64,6 +64,7 @@ THD_FUNCTION(Thread1, arg)
chThdSleepMilliseconds(2000);
palSetPadMode(GPIOB, 7, PAL_MODE_OUTPUT_PUSHPULL);
palSetPadMode(GPIOF, 2, PAL_MODE_UNCONNECTED);
palSetLineMode(LINE_I2S_SD, PAL_MODE_ALTERNATE(0));
palSetLineMode(LINE_I2S_WS, PAL_MODE_ALTERNATE(0));
@ -79,12 +80,13 @@ THD_FUNCTION(Thread1, arg)
uint8_t strbuf[7] = { 0, 0, 0, 'd', 'B', '\n', '\0' };
for (;;) {
palSetPad(GPIOB, 7);
chSemWait(&i2sReady);
const auto Leq_RMS = fpm::sqrt(Leq_sum_sqr / Leq_samples);
const auto Leq_RMS = qfp_fsqrt((float)Leq_sum_sqr / Leq_samples);
const auto Leq_dB = MIC_OFFSET_DB + MIC_REF_DB + 20 *
fpm::log10(Leq_RMS / MIC_REF_AMPL);
Leq_sum_sqr = sos_t(0);
qfp_flog10(Leq_RMS / MIC_REF_AMPL);
Leq_sum_sqr = sos_t(0.f);
Leq_samples = 0;
auto n = std::clamp(static_cast<int32_t>(Leq_dB), 0l, 999l);
@ -92,22 +94,24 @@ THD_FUNCTION(Thread1, arg)
strbuf[1] = n % 10 + '0'; n /= 10;
strbuf[0] = n ? n + '0' : ' ';
sdWrite(&SD2, strbuf, sizeof(strbuf));
palClearPad(GPIOB, 7);
}
}
int32_t fixsample(uint32_t s) {
return (int32_t)(((s & 0xFFFF) << 16) | (s >> 16)) >> (32 - MIC_BITS);
}
void i2sCallback(I2SDriver *i2s)
{
// Note: samples come in as 16-bit big-endian, so for simplicity we just
// take the "high" 16-bits of valid data and drop the rest. Mic is
// technically 18-bit, so we are losing some precision.
palSetPad(GPIOB, 7);
const auto halfsize = i2sBuffer.size() / 2;
const auto offset = i2sIsBufferComplete(i2s) ? halfsize : 0;
auto samples = reinterpret_cast<sos_t *>(i2sBuffer.data() + offset);
std::ranges::copy(
std::views::counted(i2sBuffer.begin() + offset, halfsize)
| std::ranges::views::stride(2 * I2S_STRIDE)
| std::views::transform([](auto s) { return sos_t((int16_t)s); }),
std::views::counted(i2sBuffer.begin() + offset, halfsize / I2S_STRIDE)
| std::ranges::views::stride(2)
| std::views::transform([](uint32_t s) { return sos_t(fixsample(s)); }),
samples);
auto samps = std::views::counted(samples, halfsize / (2 * I2S_STRIDE));
@ -117,8 +121,9 @@ void i2sCallback(I2SDriver *i2s)
Leq_samples += samps.size();
// Wakeup main thread for dB calculation every second
if (Leq_samples >= 2 * SAMPLE_RATE / I2S_STRIDE) {
if (Leq_samples >= SAMPLE_RATE / I2S_STRIDE) {
chSemSignalI(&i2sReady);
}
palClearPad(GPIOB, 7);
}

@ -0,0 +1,339 @@
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@ -0,0 +1,4 @@
The Qfplib libraries are open source, licensed under version 2 of the
GNU GPL. A copy of that licence is included in this archive.
Visit http://www.quinapalus.com/qfplib.html for more information.

@ -0,0 +1,97 @@
#ifndef __QFPLIB_M0_FULL_H__
#define __QFPLIB_M0_FULL_H__
/*
Copyright 2019-2024 Mark Owen
http://www.quinapalus.com
E-mail: qfp@quinapalus.com
This file is free software: you can redistribute it and/or modify
it under the terms of version 2 of the GNU General Public License
as published by the Free Software Foundation.
This file is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this file. If not, see <http://www.gnu.org/licenses/> or
write to the Free Software Foundation, Inc., 51 Franklin Street,
Fifth Floor, Boston, MA 02110-1301, USA.
*/
typedef unsigned int ui32;
typedef int i32;
typedef unsigned long long int ui64;
typedef long long int i64;
extern float qfp_fadd (float x,float y);
extern float qfp_fsub (float x,float y);
extern float qfp_fmul (float x,float y);
extern float qfp_fdiv (float x,float y);
extern int qfp_fcmp (float x,float y);
extern float qfp_fsqrt (float x);
extern i32 qfp_float2int (float x);
extern i32 qfp_float2fix (float x,int f);
extern ui32 qfp_float2uint (float x);
extern ui32 qfp_float2ufix (float x,int f);
extern float qfp_int2float (i32 x);
extern float qfp_fix2float (i32 x,int f);
extern float qfp_uint2float (ui32 x);
extern float qfp_ufix2float (ui32 x,int f);
extern float qfp_int642float (i64 x);
extern float qfp_fix642float (i64 x,int f);
extern float qfp_uint642float (ui64 x);
extern float qfp_ufix642float (ui64 x,int f);
extern float qfp_fcos (float x);
extern float qfp_fsin (float x);
extern float qfp_ftan (float x);
extern float qfp_fatan2 (float y,float x);
extern float qfp_fexp (float x);
extern float qfp_fln (float x);
extern double qfp_dadd (double x,double y);
extern double qfp_dsub (double x,double y);
extern double qfp_dmul (double x,double y);
extern double qfp_ddiv (double x,double y);
extern double qfp_dsqrt (double x);
extern double qfp_dcos (double x);
extern double qfp_dsin (double x);
extern double qfp_dtan (double x);
extern double qfp_datan2 (double y,double x);
extern double qfp_dexp (double x);
extern double qfp_dln (double x);
extern int qfp_dcmp (double x,double y);
extern i64 qfp_float2int64 (float x);
extern i64 qfp_float2fix64 (float x,int f);
extern ui64 qfp_float2uint64 (float x);
extern ui64 qfp_float2ufix64 (float x,int f);
extern i32 qfp_float2int_z (float x);
extern i64 qfp_float2int64_z (float x);
extern i32 qfp_double2int (double x);
extern i32 qfp_double2fix (double x,int f);
extern ui32 qfp_double2uint (double x);
extern ui32 qfp_double2ufix (double x,int f);
extern i64 qfp_double2int64 (double x);
extern i64 qfp_double2fix64 (double x,int f);
extern ui64 qfp_double2uint64 (double x);
extern ui64 qfp_double2ufix64 (double x,int f);
extern i32 qfp_double2int_z (double x);
extern i64 qfp_double2int64_z(double x);
extern double qfp_int2double (i32 x);
extern double qfp_fix2double (i32 x,int f);
extern double qfp_uint2double (ui32 x);
extern double qfp_ufix2double (ui32 x,int f);
extern double qfp_int642double (i64 x);
extern double qfp_fix642double (i64 x,int f);
extern double qfp_uint642double (ui64 x);
extern double qfp_ufix642double (ui64 x,int f);
extern float qfp_double2float (double x);
extern double qfp_float2double (float x);
#endif

File diff suppressed because it is too large Load Diff

@ -26,11 +26,50 @@
#include <ranges>
#include <utility>
#include <cmath>
namespace fpm = std;
using sos_t = float;
//#include <fpm/math.hpp>
//using sos_t = fpm::fixed_16_16;
extern "C" {
#include <qfplib-m0-full.h>
}
float qfp_fpow(float b, float e)
{
return qfp_fexp(e * qfp_fln(b));
}
float qfp_flog10(float x)
{
return qfp_fln(x) / qfp_fln(10);
}
struct sos_t
{
float v;
constexpr sos_t(float v_ = 0.f): v(v_) {}
sos_t operator+(const sos_t& o) const noexcept {
return qfp_fadd(v, o.v);
}
sos_t operator-(const sos_t& o) const noexcept {
return qfp_fsub(v, o.v);
}
sos_t operator*(const sos_t& o) const noexcept {
return qfp_fmul(v, o.v);
}
sos_t operator/(const sos_t& o) const noexcept {
return qfp_fdiv(v, o.v);
}
sos_t& operator+=(const sos_t& o) noexcept {
return (*this = *this + o);
}
operator float() const noexcept {
return v;
}
};
struct SOS_Coefficients {
sos_t b1;
@ -60,8 +99,7 @@ struct SOS_IIR_Filter {
std::copy(_sos, _sos + N, sos.begin());
}
void filter(auto samples) {
// Apply all but last Second-Order-Section
void filter(auto samples, std::size_t n = N) {
for ([[maybe_unused]] auto _ : std::views::zip_transform(
[](auto samps, const auto& coeffs, auto& ww) {
// Assumes a0 and b0 coefficients are one (1.0)
@ -72,13 +110,25 @@ struct SOS_IIR_Filter {
}
return 0;
},
std::views::repeat(samples, N), sos, w)) {}
std::views::repeat(samples, n), sos, w)) {}
}
sos_t filter_sum_sqr(auto samples) {
filter(samples);
return std::ranges::fold_left(samples, sos_t(0),
[this](auto a, auto b) { return a + b * gain * b * gain; });
const auto& coeffs = sos.back();
auto& ww = w.back();
sos_t sum_sqr (0.f);
filter(samples, N - 1);
// Assumes a0 and b0 coefficients are one (1.0)
for (auto& s : samples) {
auto f6 = s + coeffs.a1 * ww.w0 + coeffs.a2 * ww.w1;
s = f6 + coeffs.b1 * ww.w0 + coeffs.b2 * ww.w1;
ww.w1 = std::exchange(ww.w0, f6);
sum_sqr += s * gain * s * gain;
}
return sum_sqr;
}
};
@ -90,12 +140,12 @@ struct SOS_IIR_Filter {
// A ~= [1.0, -1.993853, 0.993863]
// With additional DC blocking component
SOS_IIR_Filter SPH0645LM4H_B_RB = {
/* gain: */ sos_t(1.00123377961525),
/* gain: */ sos_t(1.00123377961525f),
/* sos: */ { // Second-Order Sections {b1, b2, -a1, -a2}
{ sos_t(-1.0), sos_t(0.0),
sos_t(+0.9992), sos_t(0) }, // DC blocker, a1 = -0.9992
{ sos_t(-1.988897663539382), sos_t(+0.988928479008099),
sos_t(+1.993853376183491), sos_t(-0.993862821429572) } }
{ sos_t(-1.0f), sos_t(0.0f),
sos_t(+0.9992f), sos_t(0.0f) }, // DC blocker, a1 = -0.9992
{ sos_t(-1.988897663539382f), sos_t(+0.988928479008099f),
sos_t(+1.993853376183491f), sos_t(-0.993862821429572f) } }
};
//
@ -104,14 +154,14 @@ SOS_IIR_Filter SPH0645LM4H_B_RB = {
// B = [0.169994948147430, 0.280415310498794, -1.120574766348363, 0.131562559965936, 0.974153561246036, -0.282740857326553, -0.152810756202003]
// A = [1.0, -2.12979364760736134, 0.42996125885751674, 1.62132698199721426, -0.96669962900852902, 0.00121015844426781, 0.04400300696788968]
SOS_IIR_Filter A_weighting = {
/* gain: */ sos_t(0.169994948147430),
/* gain: */ sos_t(0.169994948147430f),
/* sos: */ { // Second-Order Sections {b1, b2, -a1, -a2}
{ sos_t(-2.00026996133106), sos_t(+1.00027056142719),
sos_t(-1.060868438509278), sos_t(-0.163987445885926) },
{ sos_t(+4.35912384203144), sos_t(+3.09120265783884),
sos_t(+1.208419926363593), sos_t(-0.273166998428332) },
{ sos_t(-0.70930303489759), sos_t(-0.29071868393580),
sos_t(+1.982242159753048), sos_t(-0.982298594928989) } }
{ sos_t(-2.00026996133106f), sos_t(+1.00027056142719f),
sos_t(-1.060868438509278f), sos_t(-0.163987445885926f) },
{ sos_t(+4.35912384203144f), sos_t(+3.09120265783884f),
sos_t(+1.208419926363593f), sos_t(-0.273166998428332f) },
{ sos_t(-0.70930303489759f), sos_t(-0.29071868393580f),
sos_t(+1.982242159753048f), sos_t(-0.982298594928989f) } }
};
////

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