server-simulator.py 19 KB

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  1. import numpy as np
  2. import scipy.interpolate as interp
  3. import msgpack
  4. import json
  5. import socket
  6. class ServerSimulator:
  7. def __init__(self):
  8. self.events = []
  9. self.rfwaves = {"default": (np.ones(512, dtype=np.int16) * np.floor(3.3 / 5 * 32767), np.zeros(512, dtype=np.int16))} # Default RF wave is a 100-sample pulse at max amplitude
  10. self.time = 0
  11. #Socket parameters
  12. self.sock = socket.socket(socket.AF_INET, socket.SOCK_STREAM)
  13. self.sock.bind(('127.0.0.1', 5003))
  14. self.sock.listen()
  15. self.conn = 0
  16. self.magic = 0xAA
  17. self.cmd = 0x00
  18. self.data = {}
  19. self.simview = {}
  20. #Simulation parameters
  21. self.level = 20000
  22. self.simview = {
  23. "time": np.array([], dtype=np.int64),
  24. "channel_g": np.array([], dtype=np.int16),
  25. "channel_rf_ttl": np.array([], dtype=np.int16),
  26. "channel_adc_ttl": np.array([], dtype=np.int16),
  27. "channel_rf": np.array([], dtype=np.int16)
  28. }
  29. #32bit Codes
  30. self.errCode = 0x00000000
  31. self.statCode = 0x00000000
  32. # Command callbacks
  33. self.cmd_dict = {
  34. 0x10: self.addEvent,
  35. 0x20: self.getRfwaveTable,
  36. 0x30: self.runEventList,
  37. 0x40: self.sendSimViewData,
  38. 0x60: self.clearEventList,
  39. 0x70: self.setFrequency,
  40. 0x00: self.disconnect
  41. }
  42. def connect(self):
  43. self.conn, self.addr = self.sock.accept()
  44. print(f"New connection from {self.addr}")
  45. return True
  46. def disconnect(self):
  47. self.conn.close()
  48. print(f"Connection with {self.addr} closed")
  49. return True
  50. def getErrorMsg(self, errCode, errString):
  51. error = {
  52. "magic": self.magic,
  53. "cmd": 0xFF,
  54. "code": errCode,
  55. "message": errString
  56. }
  57. return msgpack.packb(error, use_bin_type=True)
  58. def getStatusMsg(self, statCode, statString):
  59. status = {
  60. "magic": self.magic,
  61. "cmd": 0xFE,
  62. "code": statCode,
  63. "message": statString
  64. }
  65. return msgpack.packb(status, use_bin_type=True)
  66. def acceptCommand(self):
  67. rawdata = self.conn.recv(4096)
  68. # Check if data is received
  69. if not rawdata:
  70. return False
  71. # Unpack data using msgpack
  72. self.data = msgpack.unpackb(rawdata, raw=False)
  73. if self.data["magic"] != self.magic:
  74. print("Invalid magic byte")
  75. self.errCode = 0x00000051 # Invalid magic byte
  76. self.conn.sendall(self.getErrorMsg(self.errCode, "Invalid magic byte"))
  77. return False
  78. if self.data["cmd"] not in self.cmd_dict.keys():
  79. print("Invalid command")
  80. self.errCode = 0x00000052 # Invalid command
  81. self.conn.sendall(self.getErrorMsg(self.errCode, "Invalid command"))
  82. return False
  83. print(f"Received command: {self.data['cmd']}")
  84. # Process command
  85. self.cmd = self.data["cmd"]
  86. self.cmd_dict[self.cmd](self.data)
  87. return True
  88. def addEvent(self, data):
  89. if not all (k in data for k in ("time", "duration", "wave", "time_front_rf_trigger", "time_back_rf_trigger", "rf_start", "rf_end", "time_front_adc_trigger", "time_back_adc_trigger")):
  90. print("Missing event parameters")
  91. self.errCode = 0x00000001 # Missing parameters
  92. self.conn.sendall(self.getErrorMsg(self.errCode, "Missing event parameters"))
  93. return False
  94. event = {
  95. "start_time": data["time"],
  96. "duration": data["duration"],
  97. "wave": data["wave"],
  98. "carrier_freq": data["carrier_freq"],
  99. "time_front_rf_trigger": data["time_front_rf_trigger"],
  100. "time_back_rf_trigger": data["time_back_rf_trigger"],
  101. "rf_start": data["rf_start"],
  102. "rf_end": data["rf_end"],
  103. "time_front_adc_trigger": data["time_front_adc_trigger"],
  104. "time_back_adc_trigger": data["time_back_adc_trigger"],
  105. }
  106. if event["start_time"] < self.time:
  107. print("Event start time is in the past")
  108. self.errCode = 0x00000002 # Event in the past
  109. self.conn.sendall(self.getErrorMsg(self.errCode, "Event start time is in the past"))
  110. return False
  111. if event["time_front_rf_trigger"] < 0 or event["time_back_rf_trigger"] < 0 or event["rf_start"] < 0 or event["rf_end"] < 0:
  112. print("RF trigger times and delays must be non-negative")
  113. self.errCode = 0x00000003 # Negative times
  114. self.conn.sendall(self.getErrorMsg(self.errCode, "RF trigger times and delays must be non-negative"))
  115. return False
  116. if event["time_front_adc_trigger"] < 0 or event["time_back_adc_trigger"] < 0:
  117. print("ADC trigger times must be non-negative")
  118. self.errCode = 0x00000004 # Negative times
  119. self.conn.sendall(self.getErrorMsg(self.errCode, "ADC trigger times must be non-negative"))
  120. return False
  121. if event["time_front_rf_trigger"] > event["duration"] or event["time_back_rf_trigger"] > event["duration"]:
  122. print("RF trigger times must be within event duration")
  123. self.errCode = 0x00000005 # RF trigger times out of bounds
  124. self.conn.sendall(self.getErrorMsg(self.errCode, "RF trigger times must be within event duration"))
  125. return False
  126. if event["rf_start"] > event["duration"] or event["rf_end"] > event["duration"]:
  127. print("RF start and end times must be within event duration")
  128. self.errCode = 0x00000006 # RF start/end times out of bounds
  129. self.conn.sendall(self.getErrorMsg(self.errCode, "RF start and end times must be within event duration"))
  130. return False
  131. if event["time_front_adc_trigger"] > event["duration"] or event["time_back_adc_trigger"] > event["duration"]:
  132. print("ADC trigger times must be within event duration")
  133. self.errCode = 0x00000007 # ADC trigger times out of bounds
  134. self.conn.sendall(self.getErrorMsg(self.errCode, "ADC trigger times must be within event duration"))
  135. return False
  136. if event["time_front_rf_trigger"] < event["time_back_rf_trigger"]:
  137. print("RF triggers and delays overlap")
  138. self.errCode = 0x00000008 # RF triggers overlap
  139. self.conn.sendall(self.getErrorMsg(self.errCode, "RF triggers and delays overlap"))
  140. return False
  141. if event["time_front_adc_trigger"] < event["time_back_adc_trigger"]:
  142. print("ADC triggers overlap")
  143. self.errCode = 0x00000009 # ADC triggers overlap
  144. self.conn.sendall(self.getErrorMsg(self.errCode, "ADC triggers overlap"))
  145. return False
  146. if event["rf_start"] > event["rf_end"]:
  147. print("RF start and end times overlap")
  148. self.errCode = 0x0000000A # RF start/end times overlap
  149. self.conn.sendall(self.getErrorMsg(self.errCode, "RF start and end times overlap"))
  150. return False
  151. if event["rf_start"] < event["time_back_rf_trigger"] or event["rf_end"] > event["time_front_rf_trigger"]:
  152. print("RF start and end times must be within RF trigger times")
  153. self.errCode = 0x0000000B # RF start/end times outside triggers
  154. self.conn.sendall(self.getErrorMsg(self.errCode, "RF start and end times must be within RF trigger times"))
  155. return False
  156. if event["rf_end"] - event["rf_start"] < len(self.rfwaves[event["wave"]]):
  157. print("RF pulse duration must be at least as long as the wave length")
  158. self.errCode = 0x0000000C # Insufficient RF pulse duration
  159. self.conn.sendall(self.getErrorMsg(self.errCode, "RF pulse duration must be at least as long as the wave length"))
  160. return False
  161. self.events.append(event)
  162. self.time = event["start_time"] + event["duration"]
  163. print(f"Added event: {event}")
  164. self.conn.sendall(self.getStatusMsg(0x00000010, "Event added successfully"))
  165. return True
  166. def getRfwaveTable(self, data):
  167. if not all (k in data for k in ("wavetype", "total_length", "total_packets", "packet_index", "packet_length")):
  168. print("Missing RF wave parameters")
  169. self.errCode = 0x0000000F # Missing parameters
  170. self.conn.sendall(self.getErrorMsg(self.errCode, "Missing RF wave parameters"))
  171. return False
  172. wavetype = data["wavetype"]
  173. total_length = data["total_length"]
  174. total_packets = data["total_packets"]
  175. total_wave_q = np.array([], dtype=np.int16)
  176. total_wave_i = np.array([], dtype=np.int16)
  177. self.conn.sendall(self.getStatusMsg(0x00000001, f"Ready to receive RF wave data packets"))
  178. for i in range(total_packets):
  179. rawdata = self.sock.recv(4096)
  180. if not rawdata:
  181. print("No data received for RF wave packet")
  182. return False
  183. packet_data = msgpack.unpackb(rawdata, raw=False)
  184. if packet_data["magic"] != self.magic:
  185. print("Invalid magic byte in RF wave packet")
  186. self.errCode = 0x00000014 # Invalid magic byte
  187. self.conn.sendall(self.getErrorMsg(self.errCode, "Invalid magic byte in RF wave packet"))
  188. return False
  189. if packet_data["cmd"] != 0x2C:
  190. print("Invalid command in RF wave packet")
  191. self.errCode = 0x00000013 # Invalid command
  192. self.conn.sendall(self.getErrorMsg(self.errCode, "Invalid command in RF wave packet"))
  193. return False
  194. if "wavedata_q" not in packet_data or "wavedata_i" not in packet_data:
  195. print("Missing wave data in RF wave packet")
  196. self.errCode = 0x00000010 # Missing wave data
  197. self.conn.sendall(self.getErrorMsg(self.errCode, "Missing wave data in RF wave packet"))
  198. return False
  199. wave_q = np.frombuffer(packet_data["wavedata_q"], dtype=np.int16)
  200. wave_i = np.frombuffer(packet_data["wavedata_i"], dtype=np.int16)
  201. if len(wave_q) != len(wave_i):
  202. print("In-phase and quadrature wave data must have the same length in RF wave packet")
  203. self.errCode = 0x00000012 # Mismatched wave data lengths
  204. self.conn.sendall(self.getErrorMsg(self.errCode, "In-phase and quadrature wave data must have the same length in RF wave packet"))
  205. return False
  206. total_wave_q = np.concatenate([total_wave_q, wave_q])
  207. total_wave_i = np.concatenate([total_wave_i, wave_i])
  208. print(f"Received RF wave packet {i+1}/{total_packets} with length {len(wave_q)}")
  209. self.conn.sendall(self.getStatusMsg(0x00000002, f"Received RF wave packet {i+1}/{total_packets} with length {len(wave_q)}"))
  210. self.conn.recv(1024) # Wait for ACK before receiving next packet
  211. return True
  212. if len(total_wave_q) != total_length or len(total_wave_i) != total_length:
  213. print("Total wave data length does not match expected length")
  214. self.errCode = 0x00000011 # Total length mismatch
  215. self.conn.sendall(self.getErrorMsg(self.errCode, "Total wave data length does not match expected length"))
  216. return False
  217. self.rfwaves.append({data["wavetype"]: (total_wave_q, total_wave_i)})
  218. print(f"RF wave '{wavetype}' received successfully with total length {total_length}")
  219. self.conn.sendall(self.getStatusMsg(0x00000003, f"RF wave '{wavetype}' received successfully with total length {total_length}"))
  220. return True
  221. def runEventList(self, data):
  222. time_linspace = np.linspace(0, self.time, self.time+1)
  223. self.simview["time"] = time_linspace.astype(np.int64)
  224. channel_g = np.ones(self.time+1, dtype=np.int16) * np.floor(3.3 / 5 * 32767).astype(np.int16)
  225. channel_rf_ttl = np.zeros(self.time+1, dtype=np.int16)
  226. channel_adc_ttl = np.zeros(self.time+1, dtype=np.int16)
  227. channel_rf = np.zeros(self.time+1, dtype=np.int16)
  228. for event in self.events:
  229. print(f"Running event: {event}")
  230. # Simulate RF pulse
  231. rf_wave_q = self.rfwaves[event["wave"]][0]
  232. rf_wave_i = self.rfwaves[event["wave"]][1]
  233. rf_pulse_length = event["rf_end"] - event["rf_start"]
  234. rf_trigger_length = -event["time_back_rf_trigger"] + event["time_front_rf_trigger"]
  235. adc_trigger_length = -event["time_back_adc_trigger"] + event["time_front_adc_trigger"]
  236. rf_wave_length = len(rf_wave_q)
  237. event_length = event["duration"]
  238. rf_time = np.linspace(0, rf_pulse_length, rf_pulse_length+1)
  239. rf_trigger_time = np.linspace(0, rf_trigger_length, rf_trigger_length+1)
  240. adc_trigger_time = np.linspace(0, adc_trigger_length, adc_trigger_length+1)
  241. event_time = np.linspace(0, event_length, event_length+1)
  242. print(f"RF pulse length: {rf_pulse_length}, RF trigger length: {rf_trigger_length}, ADC trigger length: {adc_trigger_length}, Event length: {event_length}")
  243. if rf_pulse_length < rf_wave_length:
  244. print("RF pulse length is shorter than RF wave length, cannot run event")
  245. self.errCode = 0x00000031 # Invalid RF pulse length
  246. self.conn.sendall(self.getErrorMsg(self.errCode, "RF pulse length is shorter than RF wave length, cannot run event"))
  247. continue
  248. print("Interpolating RF wave to fit pulse duration...")
  249. interp_wave_q = np.zeros(rf_pulse_length, dtype=np.int16)
  250. interp_wave_i = np.zeros(rf_pulse_length, dtype=np.int16)
  251. if data["interpolation_method"] == "linear":
  252. interp_func_q = interp.interp1d(np.linspace(0, rf_wave_length, rf_wave_length), rf_wave_q, kind='linear', fill_value="extrapolate")
  253. interp_func_i = interp.interp1d(np.linspace(0, rf_wave_length, rf_wave_length), rf_wave_i, kind='linear', fill_value="extrapolate")
  254. interp_wave_q = interp_func_q(rf_time).astype(np.int16)
  255. interp_wave_i = interp_func_i(rf_time).astype(np.int16)
  256. elif data["interpolation_method"] == "nearest":
  257. interp_func_q = interp.interp1d(np.linspace(0, rf_wave_length, rf_wave_length), rf_wave_q, kind='nearest', fill_value="extrapolate")
  258. interp_func_i = interp.interp1d(np.linspace(0, rf_wave_length, rf_wave_length), rf_wave_i, kind='nearest', fill_value="extrapolate")
  259. interp_wave_q = interp_func_q(rf_time).astype(np.int16)
  260. interp_wave_i = interp_func_i(rf_time).astype(np.int16)
  261. elif data["interpolation_method"] == "cubic":
  262. interp_func_q = interp.interp1d(np.linspace(0, rf_wave_length, rf_wave_length), rf_wave_q, kind='cubic', fill_value="extrapolate")
  263. interp_func_i = interp.interp1d(np.linspace(0, rf_wave_length, rf_wave_length), rf_wave_i, kind='cubic', fill_value="extrapolate")
  264. interp_wave_q = interp_func_q(rf_time).astype(np.int16)
  265. interp_wave_i = interp_func_i(rf_time).astype(np.int16)
  266. channel_rf[event["start_time"]+event["rf_start"]:event["start_time"]+event["rf_end"]+1] = np.floor((interp_wave_q * np.sin(2 * np.pi * event["carrier_freq"] * rf_time * 8e-9) - interp_wave_i * np.cos(2 * np.pi * event["carrier_freq"] * rf_time * 8e-9)) / np.sqrt(2)).astype(np.int16)
  267. channel_rf_ttl[event["start_time"]+event["time_back_rf_trigger"]:event["start_time"]+event["time_front_rf_trigger"]+1] = np.int16(1 * np.floor(3.3 / 5 * 32767))
  268. channel_adc_ttl[event["start_time"]+event["time_back_adc_trigger"]:event["start_time"]+event["time_front_adc_trigger"]+1] = np.int16(1 * np.floor(3.3 / 5 * 32767))
  269. channel_g[event["start_time"]:(event["start_time"]+event["duration"]+1)] = 0
  270. self.simview["channel_g"] = channel_g
  271. self.simview["channel_rf_ttl"] = channel_rf_ttl
  272. self.simview["channel_adc_ttl"] = channel_adc_ttl
  273. self.simview["channel_rf"] = channel_rf
  274. print(f"Simulation data: time length {len(self.simview['time'])}, channel_g length {len(self.simview['channel_g'])}, channel_rf_ttl length {len(self.simview['channel_rf_ttl'])}, channel_adc_ttl length {len(self.simview['channel_adc_ttl'])}, channel_rf length {len(self.simview['channel_rf'])}")
  275. self.conn.sendall(self.getStatusMsg(0x00000032, "Event list simulation complete"))
  276. return True
  277. def sendSimViewData(self, data):
  278. data_length = len(self.simview["time"])
  279. channels = ["channel_g", "channel_rf_ttl", "channel_adc_ttl", "channel_rf", "time"]
  280. packet_size = 512
  281. total_packets = (data_length * len(channels)) // packet_size + 1
  282. packet_index = 0
  283. self.conn.sendall(self.getStatusMsg(0x00000043, f"Ready to send simulation data in {total_packets} packets with size {packet_size} bytes"))
  284. self.conn.recv(4096) # ACK
  285. print(f"Starting to send simulation data: total length {data_length}, total packets {total_packets}")
  286. for channel in channels:
  287. channel_data = self.simview[channel]
  288. for i in range(0, len(channel_data), packet_size):
  289. packet_index += 1
  290. packet_data = None
  291. if i + packet_size > len(channel_data):
  292. packet_data = channel_data[i:]
  293. else:
  294. packet_data = channel_data[i:i+packet_size]
  295. packet_msg = {
  296. "magic": self.magic,
  297. "cmd": 0x33,
  298. "channel": channel,
  299. "total_packets": total_packets,
  300. "packet_index": packet_index,
  301. "data": packet_data.tobytes(),
  302. "data_length": len(packet_data)
  303. }
  304. print(f"Sending packet {packet_index}/{total_packets} for channel '{channel}' with data length {len(packet_data)}")
  305. self.conn.sendall(msgpack.packb(packet_msg, use_bin_type=True))
  306. self.conn.recv(4096) # Wait for ACK
  307. print("Simulation data sent successfully")
  308. self.conn.sendall(self.getStatusMsg(0x00000044, "All simulation data packets sent"))
  309. return True
  310. def clearEventList(self, data):
  311. self.events = []
  312. self.time = 0
  313. self.conn.sendall(self.getStatusMsg(0x00000064, "Event list cleared"))
  314. return True
  315. def setFrequency(self, data):
  316. if "frequency" not in data:
  317. print("Missing frequency parameter")
  318. self.errCode = 0x00000020 # Missing parameter
  319. self.conn.sendall(self.getErrorMsg(self.errCode, "Missing frequency parameter"))
  320. return False
  321. self.freq = data["frequency"]
  322. self.conn.sendall(self.getStatusMsg(0x00000071, f"Frequency set to {self.freq} Hz"))
  323. return True
  324. server = ServerSimulator()
  325. while server.connect():
  326. while server.acceptCommand():
  327. pass