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5 | 5 |
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6 | 6 | #if PBDRV_CONFIG_SOUND_EV3 |
7 | 7 |
|
| 8 | +#include <math.h> |
8 | 9 | #include <stdint.h> |
9 | 10 |
|
10 | | -void pbdrv_sound_stop() { |
| 11 | +#include <pbdrv/gpio.h> |
| 12 | + |
| 13 | +#include <tiam1808/ehrpwm.h> |
| 14 | +#include <tiam1808/hw/soc_AM1808.h> |
| 15 | +#include <tiam1808/hw/hw_syscfg0_AM1808.h> |
| 16 | +#include <tiam1808/hw/hw_types.h> |
| 17 | +#include <tiam1808/psc.h> |
| 18 | + |
| 19 | +#include "../drv/gpio/gpio_ev3.h" |
| 20 | + |
| 21 | +// This module covers the frequency range from 64 Hz to 10 kHz. |
| 22 | +// It uses a maximum duty cycle of 1/16, and it controls volume |
| 23 | +// by shortening the duty cycle. The hardware has a resolution |
| 24 | +// of 16 bits for the period counter, and we want 8 bits for the volume, |
| 25 | +// so we use the following timebase division factors to make this work: |
| 26 | +// |
| 27 | +// 64 Hz - 900 Hz => /40 |
| 28 | +// 900 Hz - 8 kHz => /4 |
| 29 | +// 8 kHz - 10 kHz => /1 |
11 | 30 |
|
| 31 | +// Audio amplifier enable |
| 32 | +static const pbdrv_gpio_t pin_sound_en = PBDRV_GPIO_EV3_PIN(13, 3, 0, 6, 15); |
| 33 | +// Audio output pin |
| 34 | +#define SYSCFG_PINMUX3_PINMUX3_7_4_GPIO0_0 0 |
| 35 | +static const pbdrv_gpio_t pin_audio = PBDRV_GPIO_EV3_PIN(3, 7, 4, 0, 0); |
| 36 | + |
| 37 | +void pbdrv_sound_stop() { |
| 38 | + // Force the output low |
| 39 | + EHRPWMAQContSWForceOnB(SOC_EHRPWM_0_REGS, EHRPWM_AQCSFRC_CSFB_LOW, EHRPWM_AQSFRC_RLDCSF_IMMEDIATE); |
| 40 | + // Clean up counter |
| 41 | + HWREGH(SOC_EHRPWM_0_REGS + EHRPWM_TBCTL) |= EHRPWM_TBCTL_CTRMODE_STOPFREEZE; |
| 42 | + EHRPWMWriteTBCount(SOC_EHRPWM_0_REGS, 0); |
12 | 43 | } |
13 | 44 |
|
14 | 45 | void pbdrv_beep_start(uint32_t frequency, uint16_t sample_attenuator) { |
| 46 | + // Clamp the frequency into the supported range |
| 47 | + if (frequency < 64) { |
| 48 | + frequency = 64; |
| 49 | + } |
| 50 | + if (frequency > 10000) { |
| 51 | + frequency = 10000; |
| 52 | + } |
| 53 | + |
| 54 | + // Clamp the volume into the supported range |
| 55 | + if (sample_attenuator > INT16_MAX) { |
| 56 | + sample_attenuator = INT16_MAX; |
| 57 | + } |
| 58 | + // Extract bits[14:7] for our 8-bit volume resolution |
| 59 | + sample_attenuator >>= 7; |
15 | 60 |
|
| 61 | + // Configure the timebase depending on which bucket the frequency is in. |
| 62 | + // Don't use EHRPWMTimebaseClkConfig because its calculation algorithm |
| 63 | + // isn't very good and is also tricky to fix. |
| 64 | + uint32_t timebase_div; |
| 65 | + if (frequency < 900) { |
| 66 | + timebase_div = 40; |
| 67 | + HWREGH(SOC_EHRPWM_0_REGS + EHRPWM_TBCTL) = (HWREGH(SOC_EHRPWM_0_REGS + EHRPWM_TBCTL) & |
| 68 | + ~(EHRPWM_TBCTL_CLKDIV | EHRPWM_TBCTL_HSPCLKDIV)) | |
| 69 | + (EHRPWM_TBCTL_CLKDIV_DIVBY4 << EHRPWM_TBCTL_CLKDIV_SHIFT) | |
| 70 | + (EHRPWM_TBCTL_HSPCLKDIV_DIVBY10 << EHRPWM_TBCTL_HSPCLKDIV_SHIFT); |
| 71 | + } else if (frequency < 8000) { |
| 72 | + timebase_div = 4; |
| 73 | + HWREGH(SOC_EHRPWM_0_REGS + EHRPWM_TBCTL) = (HWREGH(SOC_EHRPWM_0_REGS + EHRPWM_TBCTL) & |
| 74 | + ~(EHRPWM_TBCTL_CLKDIV | EHRPWM_TBCTL_HSPCLKDIV)) | |
| 75 | + (EHRPWM_TBCTL_CLKDIV_DIVBY4 << EHRPWM_TBCTL_CLKDIV_SHIFT) | |
| 76 | + (EHRPWM_TBCTL_HSPCLKDIV_DIVBY1 << EHRPWM_TBCTL_HSPCLKDIV_SHIFT); |
| 77 | + } else { |
| 78 | + timebase_div = 1; |
| 79 | + HWREGH(SOC_EHRPWM_0_REGS + EHRPWM_TBCTL) = (HWREGH(SOC_EHRPWM_0_REGS + EHRPWM_TBCTL) & |
| 80 | + ~(EHRPWM_TBCTL_CLKDIV | EHRPWM_TBCTL_HSPCLKDIV)) | |
| 81 | + (EHRPWM_TBCTL_CLKDIV_DIVBY1 << EHRPWM_TBCTL_CLKDIV_SHIFT) | |
| 82 | + (EHRPWM_TBCTL_HSPCLKDIV_DIVBY1 << EHRPWM_TBCTL_HSPCLKDIV_SHIFT); |
| 83 | + } |
| 84 | + |
| 85 | + // The way that this code controls volume by adjusting the duty cycle |
| 86 | + // is not linear across the frequency range. For a basic beep driver, |
| 87 | + // this empirical formula compensates well enough. |
| 88 | + uint32_t freq_adj = powf(2, log10f(frequency) - 3) * 256; |
| 89 | + |
| 90 | + uint32_t pwm_period = (SOC_EHRPWM_0_MODULE_FREQ / timebase_div + frequency / 2) / frequency; |
| 91 | + uint32_t pwm_duty_cycle = (pwm_period * sample_attenuator / 256) / 16 * freq_adj / 256; |
| 92 | + |
| 93 | + // Program PWM to generate a square wave of this frequency + duty cycle |
| 94 | + EHRPWMLoadCMPB(SOC_EHRPWM_0_REGS, pwm_duty_cycle, true, 0, true); |
| 95 | + EHRPWMPWMOpPeriodSet(SOC_EHRPWM_0_REGS, pwm_period, EHRPWM_COUNT_UP, true); |
| 96 | + |
| 97 | + // Stop forcing output low |
| 98 | + EHRPWMAQContSWForceOnB(SOC_EHRPWM_0_REGS, 0, EHRPWM_AQSFRC_RLDCSF_IMMEDIATE); |
16 | 99 | } |
17 | 100 |
|
18 | 101 | void pbdrv_sound_init() { |
| 102 | + // Turn on EPWM |
| 103 | + PSCModuleControl(SOC_PSC_1_REGS, HW_PSC_EHRPWM, PSC_POWERDOMAIN_ALWAYS_ON, PSC_MDCTL_NEXT_ENABLE); |
| 104 | + |
| 105 | + // The stop function performs various initializations |
| 106 | + pbdrv_sound_stop(); |
| 107 | + |
| 108 | + // Program EPWM to generate the desired wave shape |
| 109 | + // Pulse goes high @ t=0 |
| 110 | + // Pulse goes low @ t=CMPB |
| 111 | + EHRPWMConfigureAQActionOnB( |
| 112 | + SOC_EHRPWM_0_REGS, |
| 113 | + EHRPWM_AQCTLB_ZRO_EPWMXBHIGH, |
| 114 | + EHRPWM_AQCTLB_PRD_DONOTHING, |
| 115 | + EHRPWM_AQCTLB_CAU_DONOTHING, |
| 116 | + EHRPWM_AQCTLB_CAD_DONOTHING, |
| 117 | + EHRPWM_AQCTLB_CBU_EPWMXBLOW, |
| 118 | + EHRPWM_AQCTLB_CBD_DONOTHING, |
| 119 | + EHRPWM_AQSFRC_ACTSFB_DONOTHING |
| 120 | + ); |
| 121 | + // Disable unused features |
| 122 | + EHRPWMDBOutput(SOC_EHRPWM_0_REGS, EHRPWM_DBCTL_OUT_MODE_BYPASS); |
| 123 | + EHRPWMChopperDisable(SOC_EHRPWM_0_REGS); |
| 124 | + EHRPWMTZTripEventDisable(SOC_EHRPWM_0_REGS, false); |
| 125 | + EHRPWMTZTripEventDisable(SOC_EHRPWM_0_REGS, true); |
19 | 126 |
|
| 127 | + // Configure IO pin mode |
| 128 | + pbdrv_gpio_alt(&pin_audio, SYSCFG_PINMUX3_PINMUX3_7_4_EPWM0B); |
| 129 | + // Turn speaker amplifier on |
| 130 | + // We turn the amplifier on and leave it turned on, because otherwise |
| 131 | + // it will generate a popping sound whenever it is enabled. |
| 132 | + pbdrv_gpio_out_high(&pin_sound_en); |
20 | 133 | } |
21 | 134 |
|
22 | 135 | #endif // PBDRV_CONFIG_SOUND_EV3 |
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