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1 # __init__.py Nonblocking IR blaster
2 # Runs on Pyboard D or Pyboard 1.x (not Pyboard Lite), ESP32 and RP2
3
4 # Released under the MIT License (MIT). See LICENSE.
5
6 # Copyright (c) 2020-2021 Peter Hinch
7 from sys import platform
8 ESP32 = platform == 'esp32' # Loboris not supported owing to RMT
9 RP2 = platform == 'rp2'
10 if ESP32:
11 from machine import Pin, PWM
12 from esp32 import RMT
13 elif RP2:
14 from .rp2_rmt import RP2_RMT
15 else:
16 from pyb import Pin, Timer # Pyboard does not support machine.PWM
17
18 from micropython import const
19 from array import array
20 from time import ticks_us, ticks_diff
21 # import micropython
22 # micropython.alloc_emergency_exception_buf(100)
23
24
25 # Shared by NEC
26 STOP = const(0) # End of data
27
28 # IR abstract base class. Array holds periods in μs between toggling 36/38KHz
29 # carrier on or off. Physical transmission occurs in an ISR context controlled
30 # by timer 2 and timer 5. See TRANSMITTER.md for details of operation.
31 class IR:
32 _active_high = True # Hardware turns IRLED on if pin goes high.
33 _space = 0 # Duty ratio that causes IRLED to be off
34 timeit = False # Print timing info
35
36 @classmethod
37 def active_low(cls):
38 if ESP32:
39 raise ValueError('Cannot set active low on ESP32')
40 cls._active_high = False
41 cls._space = 100
42
43 def __init__(self, pin, cfreq, asize, duty, verbose):
44 if ESP32:
45 self._rmt = RMT(0, pin=pin, clock_div=80, tx_carrier = (cfreq, duty, 1))
46 # 1μs resolution
47 elif RP2: # PIO-based RMT-like device
48 self._rmt = RP2_RMT(pin_pulse=None, carrier=(pin, cfreq, duty)) # 1μs resolution
49 else: # Pyboard
50 if not IR._active_high:
51 duty = 100 - duty
52 tim = Timer(2, freq=cfreq) # Timer 2/pin produces 36/38/40KHz carrier
53 self._ch = tim.channel(1, Timer.PWM, pin=pin)
54 self._ch.pulse_width_percent(self._space) # Turn off IR LED
55 # Pyboard: 0 <= pulse_width_percent <= 100
56 self._duty = duty
57 self._tim = Timer(5) # Timer 5 controls carrier on/off times
58 self._tcb = self._cb # Pre-allocate
59 self._arr = array('H', 0 for _ in range(asize)) # on/off times (μs)
60 self._mva = memoryview(self._arr)
61 # Subclass interface
62 self.verbose = verbose
63 self.carrier = False # Notional carrier state while encoding biphase
64 self.aptr = 0 # Index into array
65
66 def _cb(self, t): # T5 callback, generate a carrier mark or space
67 t.deinit()
68 p = self.aptr
69 v = self._arr[p]
70 if v == STOP:
71 self._ch.pulse_width_percent(self._space) # Turn off IR LED.
72 return
73 self._ch.pulse_width_percent(self._space if p & 1 else self._duty)
74 self._tim.init(prescaler=84, period=v, callback=self._tcb)
75 self.aptr += 1
76
77 # Public interface
78 # Before populating array, zero pointer, set notional carrier state (off).
79 def transmit(self, addr, data, toggle=0, validate=False): # NEC: toggle is unused
80 t = ticks_us()
81 if validate:
82 if addr > self.valid[0] or addr < 0:
83 raise ValueError('Address out of range', addr)
84 if data > self.valid[1] or data < 0:
85 raise ValueError('Data out of range', data)
86 if toggle > self.valid[2] or toggle < 0:
87 raise ValueError('Toggle out of range', toggle)
88 self.aptr = 0 # Inital conditions for tx: index into array
89 self.carrier = False
90 self.tx(addr, data, toggle) # Subclass populates ._arr
91 self.trigger() # Initiate transmission
92 if self.timeit:
93 dt = ticks_diff(ticks_us(), t)
94 print('Time = {}μs'.format(dt))
95
96 # Subclass interface
97 def trigger(self): # Used by NEC to initiate a repeat frame
98 if ESP32:
99 self._rmt.write_pulses(tuple(self._mva[0 : self.aptr]))
100 elif RP2:
101 self.append(STOP)
102 self._rmt.send(self._arr)
103 else:
104 self.append(STOP)
105 self.aptr = 0 # Reset pointer
106 self._cb(self._tim) # Initiate physical transmission.
107
108 def append(self, *times): # Append one or more time peiods to ._arr
109 for t in times:
110 self._arr[self.aptr] = t
111 self.aptr += 1
112 self.carrier = not self.carrier # Keep track of carrier state
113 self.verbose and print('append', t, 'carrier', self.carrier)
114
115 def add(self, t): # Increase last time value (for biphase)
116 assert t > 0
117 self.verbose and print('add', t)
118 # .carrier unaffected
119 self._arr[self.aptr - 1] += t
120
121
122 # Given an iterable (e.g. list or tuple) of times, emit it as an IR stream.
123 class Player(IR):
124
125 def __init__(self, pin, freq=38000, verbose=False): # NEC specifies 38KHz
126 super().__init__(pin, freq, 68, 33, verbose) # Measured duty ratio 33%
127
128 def play(self, lst):
129 for x, t in enumerate(lst):
130 self._arr[x] = t
131 self.aptr = x + 1
132 self.trigger()