RecedingHorizonControl.py 7.6 KB

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  1. #!/usr/bin/env python
  2. import time
  3. from datetime import datetime as dt
  4. from datetime import timedelta
  5. import pytz
  6. from aman.config.RHC import RHC
  7. from aman.sys.RecedingHorizonWindow import RecedingHorizonWindow
  8. from aman.types.Inbound import Inbound
  9. class RecedingHorizonControl:
  10. def __init__(self, config : RHC):
  11. self.Windows = []
  12. # contains the current index and the missed update counter
  13. self.AssignedWindow = {}
  14. self.Configuration = config
  15. self.FreezedIndex = int(self.Configuration.FixedBeforeArrival.seconds / self.Configuration.WindowSize)
  16. def insertInWindow(self, inbound : Inbound, usePTA : bool):
  17. if False == usePTA:
  18. referenceTime = inbound.InitialArrivalTime
  19. else:
  20. referenceTime = inbound.PlannedArrivalTime
  21. inserted = False
  22. for i in range(0, len(self.Windows)):
  23. window = self.Windows[i]
  24. # find the correct window
  25. if window.StartTime <= referenceTime and window.EndTime > referenceTime:
  26. self.AssignedWindow[inbound.Callsign] = [ i, 0 ]
  27. inbound.FixedSequence = i < self.FreezedIndex
  28. if True == inbound.FixedSequence and None == inbound.PlannedArrivalTime:
  29. inbound.PlannedArrivalTime = inbound.InitialArrivalTime
  30. window.insert(inbound)
  31. inserted = True
  32. break
  33. # create the new window
  34. if False == inserted:
  35. if 0 != len(self.Windows):
  36. lastWindowTime = self.Windows[-1].EndTime
  37. else:
  38. lastWindowTime = dt.utcfromtimestamp(int(time.time())).replace(tzinfo = pytz.UTC)
  39. timestep = timedelta(seconds = self.Configuration.WindowSize)
  40. while True:
  41. self.Windows.append(RecedingHorizonWindow(lastWindowTime, lastWindowTime + timestep))
  42. if self.Windows[-1].EndTime > referenceTime:
  43. window = self.Windows[-1]
  44. window.insert(inbound)
  45. self.AssignedWindow[inbound.Callsign] = [ len(self.Windows) - 1, 0 ]
  46. inbound.FixedSequence = len(self.Windows) < self.FreezedIndex
  47. if True == inbound.FixedSequence and None == inbound.PlannedArrivalTime:
  48. inbound.PlannedArrivalTime = inbound.InitialArrivalTime
  49. break
  50. lastWindowTime = self.Windows[-1].EndTime
  51. window.Inbounds.sort(key = lambda x: x.PlannedArrivalTime if None != x.PlannedArrivalTime else x.InitialArrivalTime)
  52. def updateReport(self, inbound : Inbound):
  53. # check if we need to update
  54. if inbound.Callsign in self.AssignedWindow:
  55. index = self.AssignedWindow[inbound.Callsign][0]
  56. self.AssignedWindow[inbound.Callsign][1] = 0
  57. plannedInbound = self.Windows[index].inbound(inbound.Callsign)
  58. plannedInbound.Report = inbound.Report
  59. plannedInbound.CurrentPosition = inbound.CurrentPosition
  60. # ingore fixed updates
  61. if True == plannedInbound.FixedSequence or index < self.FreezedIndex:
  62. return
  63. plannedInbound.WTC = inbound.WTC
  64. # check if we need to update the inbound
  65. if None == plannedInbound.PlannedStar:
  66. reference = inbound.InitialArrivalTime
  67. if plannedInbound.InitialArrivalTime > reference:
  68. reference = plannedInbound.InitialArrivalTime
  69. if reference < self.Windows[index].StartTime or reference >= self.Windows[index].EndTime:
  70. self.Windows[index].remove(inbound.Callsign)
  71. self.AssignedWindow.pop(inbound.Callsign)
  72. inbound.InitialArrivalTime = reference
  73. self.updateReport(inbound)
  74. else:
  75. plannedInbound.InitialArrivalTime = reference
  76. self.Windows[index].Inbounds.sort(key = lambda x: x.PlannedArrivalTime if None != x.PlannedArrivalTime else x.InitialArrivalTime)
  77. else:
  78. self.insertInWindow(inbound, False)
  79. def resequenceInbound(self, inbound : Inbound):
  80. index = self.AssignedWindow[inbound.Callsign][0]
  81. if inbound.PlannedArrivalTime < self.Windows[index].StartTime or inbound.PlannedArrivalTime >= self.Windows[index].EndTime:
  82. self.Windows[index].remove(inbound.Callsign)
  83. self.AssignedWindow.pop(inbound.Callsign)
  84. self.insertInWindow(inbound, True)
  85. else:
  86. inbound.FixedSequence = index < self.FreezedIndex
  87. self.Windows[index].Inbounds.sort(key = lambda x: x.PlannedArrivalTime if None != x.PlannedArrivalTime else x.InitialArrivalTime)
  88. def lastFixedInboundOnRunway(self, runway : str):
  89. # no inbounds available
  90. if 0 == len(self.Windows):
  91. return None
  92. # search from the back to the front to find the last inbound
  93. for i in range(min(self.FreezedIndex, len(self.Windows)), -1, -1):
  94. for inbound in self.Windows[i].Inbounds:
  95. if runway == inbound.PlannedRunway.Name:
  96. return inbound
  97. # no inbound found
  98. return None
  99. def optimizationRelevantInbounds(self):
  100. # no new inbounds
  101. if len(self.Windows) <= self.FreezedIndex:
  102. return None, None
  103. inbounds = []
  104. earliestArrivalTime = self.Windows[self.FreezedIndex].StartTime
  105. # check the overlapping windows
  106. for i in range(self.FreezedIndex + 1, len(self.Windows)):
  107. for inbound in self.Windows[i].Inbounds:
  108. inbounds.append(inbound)
  109. if 20 <= len(inbounds):
  110. break
  111. # check if we found relevant inbounds
  112. if 0 != len(inbounds):
  113. inbounds.sort(key = lambda x: x.PlannedArrivalTime if None != x.PlannedArrivalTime else x.InitialArrivalTime)
  114. return inbounds, earliestArrivalTime
  115. else:
  116. return None, None
  117. def sequence(self):
  118. inbounds = []
  119. for i in range(0, len(self.Windows)):
  120. for inbound in self.Windows[i].Inbounds:
  121. inbounds.append(inbound)
  122. return inbounds
  123. def cleanupWindows(self):
  124. currentUtc = dt.utcfromtimestamp(int(time.time())).replace(tzinfo = pytz.UTC)
  125. offsetCorrection = 0
  126. # delete the non-required windows
  127. while 0 != len(self.Windows) and currentUtc > self.Windows[0].EndTime:
  128. # cleanup the association table
  129. for inbound in self.Windows[0].Inbounds:
  130. self.AssignedWindow.pop(inbound.Callsign)
  131. offsetCorrection += 1
  132. self.Windows.pop(0)
  133. # correct the association table
  134. if 0 != offsetCorrection:
  135. for callsign in self.AssignedWindow:
  136. self.AssignedWindow[callsign][0] -= offsetCorrection
  137. if self.AssignedWindow[callsign][0] < self.FreezedIndex:
  138. self.Windows[self.AssignedWindow[callsign][0]].inbound(callsign).FixedSequence = True
  139. # delete the non-updated aircrafts and increase the missed-counter for later runs
  140. callsigns = []
  141. for callsign in self.AssignedWindow:
  142. if 2 < self.AssignedWindow[callsign][1]:
  143. self.Windows[self.AssignedWindow[callsign][0]].remove(callsign)
  144. callsigns.append(callsign)
  145. self.AssignedWindow[callsign][1] += 1
  146. for callsign in callsigns:
  147. self.AssignedWindow.pop(callsign)