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Working with phasor re-rotation
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@@ -81,6 +81,12 @@ volatile uint16_t adc_buffer[ADC_BUFFSIZE];
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int g_volume_pwm = 127; // 0 - 127 (100%) (but you can go over 100)
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int32_t g_goertzel_phasor_r = 32768;
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int32_t g_goertzel_phasor_i = 0;
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int32_t g_goertzel_advance_r = 32768;
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int32_t g_goertzel_advance_i = 0;
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#if 0
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int g_pwm_period = (30-1);
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int g_goertzel_buffer = (752);
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@@ -390,6 +396,36 @@ void DMA1_Channel1_IRQHandler( void )
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int32_t rr = (((int64_t)(g_goertzel_coefficient ) * (int64_t)zp<<1)>>32) - (zp2);
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int32_t ri = (((int64_t)(g_goertzel_coefficient_s) * (int64_t)zp<<1)>>32);
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// Advanced the current goertzel advance
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// phasor = phasor * advance;
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// real = real * real - imag * imag;
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// imag = real * imag + real * imag;
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// Sometimes you would bias the output here so that when truncating down you don't perpetually decay.
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// But experimentally, it didn't make a difference.
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int32_t temp = (g_goertzel_phasor_r * g_goertzel_advance_i + g_goertzel_phasor_i * g_goertzel_advance_r) >> 15;
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g_goertzel_phasor_r = (g_goertzel_phasor_r * g_goertzel_advance_r - g_goertzel_phasor_i * g_goertzel_advance_i) >> 15;
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g_goertzel_phasor_i = temp;
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// Fixup phasor over time to prevent it from dacaying.
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#define ABS(x) (((x)<0)?-(x):(x))
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int s_phasor = g_goertzel_phasor_r * g_goertzel_phasor_r + g_goertzel_phasor_i * g_goertzel_phasor_i;
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int intensity_phasor = (ABS(g_goertzel_phasor_r) + ABS(g_goertzel_phasor_i)) * 26100 / 32768 + 1; // Found experimentally (Also try to avoid divide-by-zero.
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intensity_phasor = (intensity_phasor + s_phasor/intensity_phasor)/2;
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intensity_phasor = (intensity_phasor + s_phasor/intensity_phasor)/2;
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if( intensity_phasor < 32760 )
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{
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// It is decaying, this is equivelent to f = f * 1.000244141
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g_goertzel_phasor_r += g_goertzel_phasor_r >> 12;
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g_goertzel_phasor_i += g_goertzel_phasor_i >> 12;
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}
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// Now, rotate rr, ri by that phasor.
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temp = (g_goertzel_phasor_r * ri + g_goertzel_phasor_i * rr) >> 15;
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rr = (g_goertzel_phasor_r * rr - g_goertzel_phasor_i * ri) >> 15;
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ri = temp;
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// rr, ri are now in the correct frame of reference. Continue computing.
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qibaselogs[qibaselogs_head] = ((uint16_t)rr) | (((uint16_t)ri)<<16);
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qibaselogs_head = ( qibaselogs_head + 1 ) & ((LOG_GOERTZEL_LIST)-1);
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@@ -400,8 +436,9 @@ void DMA1_Channel1_IRQHandler( void )
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//int intensity = 1<<( ( 32 - __builtin_clz(s) )/2);
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#define ABS(x) (((x)<0)?-(x):(x))
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int intensity = (ABS(rr) + ABS(ri)) * 26100 / 32768; // Found experimentally (Also try to avoid divide-by-zero.
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if( intensity == 0 )
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intensity = 1;
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//if( intensity == 0 )
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// intensity = 1;
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intensity++;
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intensity = (intensity + s/intensity)/2;
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intensity = (intensity + s/intensity)/2;
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intensity_average = intensity_average - (intensity_average>>12) + (intensity>>6);
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@@ -714,6 +751,8 @@ void HandleHidUserReportOutComplete( struct _USBState * ctx )
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if( numconfigs > 3) g_goertzel_coefficient = configs[5];
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if( numconfigs > 4) g_goertzel_coefficient_s = configs[6];
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if( numconfigs > 5) g_exactcompute = configs[7];
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if( numconfigs > 6) g_goertzel_advance_r = configs[8];
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if( numconfigs > 7) g_goertzel_advance_i = configs[9];
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// Need to reset so we don't blast by.
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g_goertzel_samples = 0;
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@@ -1,4 +1,10 @@
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all : test floattest
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all : test floattest phasor_rotation_test
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phasor_rotation_testt : phasor_rotation_test.c
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gcc -o $@ $^ -lm -g
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phasor_rotation_test : phasor_rotation_testt
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./phasor_rotation_testt
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floattest : floattestt
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./floattestt
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@@ -0,0 +1,44 @@
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#include <stdio.h>
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#include <math.h>
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int main()
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{
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const float omegaPerSample = 3.1415926*2.0 / 128; // pi / 200
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// Only divide by 128 to show two cycles.
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const int numSamples = 256; // enough to go from 0 to 2pi
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float phase = 0;
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//for( float phase = 0; phase < 3.1415926*2.0; phase += 0.01 )
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{
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float coeff = 2 * cos( omegaPerSample );
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int i;
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// TRICKY: When you want a sinewave, initialize with omegaPerSample. This
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// is crucial. The initial state will have massive consequences.
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float sprev = omegaPerSample;
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float sprev2 = 0;
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for( i = 0; i < numSamples; i++ )
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{
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// If you wanted to do a DFT, set SAMPLE to your incoming sample.
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float SAMPLE = 65536 * sin( phase + i * omegaPerSample );
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// Here is where the magic happens.
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float s = SAMPLE + coeff * sprev - sprev2;
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sprev2 = sprev;
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sprev = s;
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// For DFT, your power will be:
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float power = sprev*sprev + sprev2*sprev2 - (coeff * sprev * sprev2);
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//printf( "Power: %f\n", power );
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float coeff_s = 2 * sin( omegaPerSample );
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double rR = 0.5 * coeff * sprev - sprev2;
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double rI = 0.5 * coeff_s * sprev;
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printf( "%d,%f,%f\n", i, rR, rI);
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}
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}
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}
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@@ -0,0 +1,43 @@
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#include <stdio.h>
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#include <stdint.h>
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#include <math.h>
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int main()
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{
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int phasor_r = 32768;
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int phasor_i = 0;
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double phasor = 0;
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double omega = 0.1;
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int omega_r = cos( omega ) * 32768;
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int omega_i = sin( omega ) * 32768;
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int i;
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for( i = 0; i < 10000; i++ )
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{
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int32_t temp = (phasor_r * omega_i + phasor_i * omega_r ) >> 15;
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phasor_r = (phasor_r * omega_r - phasor_i * omega_i ) >> 15;
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phasor_i = temp;
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phasor += omega;
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// Approximate sqrt(x*x+y*y)
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#define ABS(x) (((x)<0)?-(x):(x))
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int s = phasor_r * phasor_r + phasor_i * phasor_i;
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int intensity = (ABS(phasor_r) + ABS(phasor_i)) * 26100 / 32768 + 1; // Found experimentally (Also try to avoid divide-by-zero.
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intensity = (intensity + s/intensity)/2;
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intensity = (intensity + s/intensity)/2;
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if( intensity < 32763 )
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{
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phasor_r += phasor_r >> 12;
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phasor_i += phasor_i >> 12;
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}
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double fA = atan2( phasor_i, phasor_r );
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printf( "%6d %6d / %6d %6d / %d / %f %f %f\n", omega_r, omega_i, phasor_r, phasor_i, intensity, fA, phasor, fA-phasor );
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if( phasor >= 3.141592653589 ) phasor -= 3.141592653589*2;
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}
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}
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@@ -84,10 +84,10 @@ int main()
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TIM2->CH1CVR = 2;
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TIM2->CCER = TIM_CC1E | TIM_CC1P;
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funDigitalWrite( LEDPIN, 1 );
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Delay_Us( 2000 );
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Delay_Us( 20000 );
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TIM2->CCER = TIM_CC1E;
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TIM2->CH1CVR = 2;
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funDigitalWrite( LEDPIN, 0 );
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Delay_Us( 2000 );
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Delay_Us( 20000 );
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}
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}
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@@ -24,12 +24,20 @@ function DrawSpan( rowspan, colspan, freq, target, docolor, extrastr = "" )
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function Goertz( n, mhz, fr, brf, exact_compute )
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{
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let omega = fr * 3.1415926535*2.0;
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let tau = 3.1415926535*2.0;
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let omega = fr * tau;
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var textarea = document.getElementById("goertzeloutput");
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var g_goertzel_omega_per_sample = Math.round( ( omega*2*(1<<29)) );
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var goertzel_omega_per_sample_real = ( omega*2*(1<<29));
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var g_goertzel_omega_per_sample = Math.round( goertzel_omega_per_sample_real );
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var g_goertzel_coefficient = Math.round( (2 * Math.cos( omega ) * (1<<30)) );
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var g_goertzel_coefficient_s = Math.round( (2 * Math.sin( omega ) * (1<<30)) );
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var omega_per_group = omega * brf;
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var goertzel_phasor_advance_radians_per_sample = tau * (Math.round( omega_per_group / tau ) - omega_per_group / tau);
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var g_goertzel_advance_r = Math.cos( goertzel_phasor_advance_radians_per_sample ) * 32768;
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var g_goertzel_advance_i = Math.sin( goertzel_phasor_advance_radians_per_sample ) * 32768;
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var g_exactcompute = exact_compute;
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textarea.value =
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"int g_pwm_period = ("+n+"-1);\n" +
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@@ -37,7 +45,9 @@ function Goertz( n, mhz, fr, brf, exact_compute )
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"int g_goertzel_buffer = ("+brf+");\n" +
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"int32_t g_goertzel_omega_per_sample = " + g_goertzel_coefficient.toFixed(0) + "; // " + ( omega / (3.1415926535*2.0)).toFixed(6) + " of whole per step / " + mhz.toFixed(6) + "MHz\n" +
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"int32_t g_goertzel_coefficient = " + g_goertzel_coefficient.toFixed(0) + ";\n" +
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"int32_t g_goertzel_coefficient_s = " + g_goertzel_coefficient_s.toFixed(0) + ";\n";
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"int32_t g_goertzel_coefficient_s = " + g_goertzel_coefficient_s.toFixed(0) + ";\n" +
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"int32_t g_goertzel_advance_r = " + g_goertzel_advance_r.toFixed(0) + ";\n" +
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"int32_t g_goertzel_advance_i = " + g_goertzel_advance_i.toFixed(0) + ";\n";
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// Highlight its content
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textarea.select();
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@@ -45,7 +55,16 @@ function Goertz( n, mhz, fr, brf, exact_compute )
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// Copy the highlighted text
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document.execCommand("copy");
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updateWebHidDeviceWithParameters( [ (n-1)|0, brf|0, g_goertzel_omega_per_sample|0, g_goertzel_coefficient|0, g_goertzel_coefficient_s|0, exact_compute|0 ] );
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updateWebHidDeviceWithParameters( [
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(n-1)|0,
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brf|0,
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g_goertzel_omega_per_sample|0,
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g_goertzel_coefficient|0,
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g_goertzel_coefficient_s|0,
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exact_compute|0,
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g_goertzel_advance_r|0,
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g_goertzel_advance_i|0,
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] );
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}
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function computeTable()
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@@ -88,7 +107,7 @@ function computeTable()
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"<TABLE BORDER=1>" +
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"<TR><TD>Goertzel</TD></TR>" +
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"<TR><TD>Goertzel (Inverse)</TD></TR>" +
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"</TABLE><TEXTAREA ROWS=6 COLS=120 ID=goertzeloutput></TEXTAREA>" +
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"</TABLE><TEXTAREA ROWS=8 COLS=120 ID=goertzeloutput></TEXTAREA>" +
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"<P>Click on a ordinal offset to create the C code needed for that tuning parameter. Clicking will copy-to-clipboard.</P>" +
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"<P>N Divisor #30 (row 3) is usually pretty good. And, try to select things near 0.25 / 0.75, and avoid 0.0, 0.5, and 1.0.</P>" +
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"<P>Goertzel's mode is for the ch32v203</P>";
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