5 # Small values seem to help on some Windows setups
6 MCP2221_HID_DELAY = float(os.environ.get('BLINKA_MCP2221_HID_DELAY', 0))
9 # http://ww1.microchip.com/downloads/en/DeviceDoc/mcp2221_0_1.tar.gz
10 # others (???) determined during driver developement
11 # pylint: disable=bad-whitespace
15 RESP_READ_COMPL = 0x55
16 RESP_READ_PARTIAL = 0x54 # ???
18 RESP_I2C_START_TOUT = 0x12
19 RESP_I2C_RSTART_TOUT = 0x17
20 RESP_I2C_WRADDRL_TOUT = 0x23
21 RESP_I2C_WRADDRL_WSEND = 0x21
22 RESP_I2C_WRADDRL_NACK = 0x25
23 RESP_I2C_WRDATA_TOUT = 0x44
24 RESP_I2C_RDDATA_TOUT = 0x52
25 RESP_I2C_STOP_TOUT = 0x62
27 RESP_I2C_MOREDATA = 0x43 # ???
28 RESP_I2C_PARTIALDATA = 0x41 # ???
29 RESP_I2C_WRITINGNOSTOP = 0x45 # ???
31 MCP2221_RETRY_MAX = 50
32 MCP2221_MAX_I2C_DATA_LEN = 60
34 # pylint: enable=bad-whitespace
48 self._hid = hid.device()
49 self._hid.open(MCP2221.VID, MCP2221.PID)
53 def _hid_xfer(self, report, response=True):
54 # first byte is report ID, which =0 for MCP2221
55 # remaing bytes = 64 byte report data
56 # https://github.com/libusb/hidapi/blob/083223e77952e1ef57e6b77796536a3359c1b2a3/hidapi/hidapi.h#L185
57 self._hid.write(b'\0' + report + b'\0'*(64-len(report)))
58 time.sleep(MCP2221_HID_DELAY)
60 # return is 64 byte response report
61 return self._hid.read(64)
63 #----------------------------------------------------------------
65 #----------------------------------------------------------------
66 def gp_get_mode(self, pin):
67 return self._hid_xfer(b'\x61')[22+pin] & 0x07
69 def gp_set_mode(self, pin, mode):
70 # get current settings
71 current = self._hid_xfer(b'\x61')
72 # empty report, this is safe since 0's = no change
73 report = bytearray(b'\x60'+b'\x00'*63)
74 # set the alter GP flag byte
76 # each pin can be set individually
77 # but all 4 get set at once, so we need to
78 # transpose current settings
79 report[8] = current[22] # GP0
80 report[9] = current[23] # GP1
81 report[10] = current[24] # GP2
82 report[11] = current[25] # GP3
83 # then change only the one
84 report[8+pin] = mode & 0x07
86 self._hid_xfer(report)
88 def _pretty_report(self, report):
89 print(" 0 1 2 3 4 5 6 7 8 9")
92 print("{} : ".format(row), end='')
94 print("{:02x} ".format(report[index]), end='')
100 def _status_dump(self):
101 self._pretty_report(self._hid_xfer(b'\x10'))
103 def _sram_dump(self):
104 self._pretty_report(self._hid_xfer(b'\x61'))
107 self._hid_xfer(b'\x70\xAB\xCD\xEF', response=False)
108 start = time.monotonic()
109 while time.monotonic() - start < 5:
111 self._hid.open(MCP2221.VID, MCP2221.PID)
117 raise OSError("open failed")
119 #----------------------------------------------------------------
121 #----------------------------------------------------------------
122 def gpio_set_direction(self, pin, mode):
123 report = bytearray(b'\x50'+b'\x00'*63) # empty set GPIO report
124 offset = 4 * (pin + 1)
125 report[offset] = 0x01 # set pin direction
126 report[offset+1] = mode # to this
127 self._hid_xfer(report)
129 def gpio_set_pin(self, pin, value):
130 report = bytearray(b'\x50'+b'\x00'*63) # empty set GPIO report
132 report[offset] = 0x01 # set pin value
133 report[offset+1] = value # to this
134 self._hid_xfer(report)
136 def gpio_get_pin(self, pin):
137 resp = self._hid_xfer(b'\x51')
139 if resp[offset] == 0xEE:
140 raise RuntimeError("Pin is not set for GPIO operation.")
144 #----------------------------------------------------------------
146 #----------------------------------------------------------------
147 def _i2c_status(self):
148 resp = self._hid_xfer(b'\x10')
150 raise RuntimeError("Couldn't get I2C status")
153 def _i2c_state(self):
154 return self._i2c_status()[8]
156 def _i2c_cancel(self):
157 resp = self._hid_xfer(b'\x10\x00\x10')
159 raise RuntimeError("Couldn't cancel I2C")
161 # bus release will need "a few hundred microseconds"
164 def _i2c_write(self, cmd, address, buffer, start=0, end=None):
165 if self._i2c_state() != 0x00:
168 end = end if end else len(buffer)
172 while (end - start) > 0:
173 chunk = min(end - start, MCP2221_MAX_I2C_DATA_LEN)
174 # write out current chunk
175 resp = self._hid_xfer(bytes([cmd,
177 (length >> 8) & 0xFF,
179 buffer[start:(start+chunk)])
182 if resp[2] in (RESP_I2C_START_TOUT,
183 RESP_I2C_WRADDRL_TOUT,
184 RESP_I2C_WRADDRL_NACK,
185 RESP_I2C_WRDATA_TOUT,
187 raise RuntimeError("Unrecoverable I2C state failure")
189 if retries >= MCP2221_RETRY_MAX:
190 raise RuntimeError("I2C write error, max retries reached.")
194 while self._i2c_state() == RESP_I2C_PARTIALDATA:
199 # check status in another loop
200 for _ in range(MCP2221_RETRY_MAX):
201 status = self._i2c_status()
202 if status[20] & MASK_ADDR_NACK:
203 raise RuntimeError("I2C slave address was NACK'd")
204 usb_cmd_status = status[8]
205 if usb_cmd_status == 0:
207 if usb_cmd_status == RESP_I2C_WRITINGNOSTOP and cmd == 0x94:
208 break # this is OK too!
209 if usb_cmd_status in (RESP_I2C_START_TOUT,
210 RESP_I2C_WRADDRL_TOUT,
211 RESP_I2C_WRADDRL_NACK,
212 RESP_I2C_WRDATA_TOUT,
214 raise RuntimeError("Unrecoverable I2C state failure")
217 raise RuntimeError("I2C write error: max retries reached.")
220 def _i2c_read(self, cmd, address, buffer, start=0, end=None):
221 if self._i2c_state() not in (RESP_I2C_WRITINGNOSTOP, 0):
224 end = end if end else len(buffer)
227 # tell it we want to read
228 resp = self._hid_xfer(bytes([cmd,
230 (length >> 8) & 0xFF,
231 (address << 1) | 0x01]))
235 raise RuntimeError("Unrecoverable I2C read failure")
237 # and now the read part
238 while (end - start) > 0:
239 for retry in range(MCP2221_RETRY_MAX):
241 resp = self._hid_xfer(b'\x40')
243 if resp[1] == RESP_I2C_PARTIALDATA:
247 raise RuntimeError("Unrecoverable I2C read failure")
248 if resp[2] == RESP_ADDR_NACK:
249 raise RuntimeError("I2C NACK")
250 if resp[3] == 0x00 and resp[2] == 0x00:
252 if resp[3] == RESP_READ_ERR:
255 if resp[2] in (RESP_READ_COMPL, RESP_READ_PARTIAL):
258 # move data into buffer
259 chunk = min(end - start, 60)
260 for i, k in enumerate(range(start, start+chunk)):
261 buffer[k] = resp[4 + i]
264 def i2c_configure(self, baudrate=100000):
265 self._hid_xfer(bytes([0x10, # set parameters
268 0x20, # next byte is clock divider
269 12000000 // baudrate - 3]))
271 def i2c_writeto(self, address, buffer, *, start=0, end=None):
272 self._i2c_write(0x90, address, buffer, start, end)
274 def i2c_readfrom_into(self, address, buffer, *, start=0, end=None):
275 self._i2c_read(0x91, address, buffer, start, end)
277 def i2c_writeto_then_readfrom(self, address, out_buffer, in_buffer, *,
278 out_start=0, out_end=None,
279 in_start=0, in_end=None):
280 self._i2c_write(0x94, address, out_buffer, out_start, out_end)
281 self._i2c_read(0x93, address, in_buffer, in_start, in_end)
283 def i2c_scan(self, *, start=0, end=0x79):
285 for addr in range(start, end+1):
288 self.i2c_writeto(addr, b'\x00')
289 except RuntimeError: # no reply!
295 #----------------------------------------------------------------
297 #----------------------------------------------------------------
298 def adc_configure(self, vref=0):
299 report = bytearray(b'\x60'+b'\x00'*63)
300 report[5] = 1 << 7 | (vref & 0b111)
301 self._hid_xfer(report)
303 def adc_read(self, pin):
304 resp = self._hid_xfer(b'\x10')
305 return resp[49 + 2 * pin] << 8 | resp[48 + 2 * pin]
307 #----------------------------------------------------------------
309 #----------------------------------------------------------------
310 def dac_configure(self, vref=0):
311 report = bytearray(b'\x60'+b'\x00'*63)
312 report[3] = 1 << 7 | (vref & 0b111)
313 self._hid_xfer(report)
315 def dac_write(self, pin, value):
316 report = bytearray(b'\x60'+b'\x00'*63)
317 report[4] = 1 << 7 | (value & 0b11111)
318 self._hid_xfer(report)