470 lines
12 KiB
Python
470 lines
12 KiB
Python
from math import sqrt
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import matplotlib.pyplot as plt
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import os
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def is_number(s):
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try:
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float(s)
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return True
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except ValueError:
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pass
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try:
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import unicodedata
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unicodedata.numeric(s)
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return True
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except (TypeError, ValueError):
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pass
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return False
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def convertToFloat(DataSet):
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for i in range(len(DataSet)):
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for j in range(len(DataSet[i])):
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if is_number(DataSet[i][j]):
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DataSet[i][j] = float(DataSet[i][j])
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return DataSet
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def caculateDistance(a: list, b: tuple):
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d = sqrt((a[0] - b[0])**2 + (a[1] - b[1])**2)
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return d
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def readLine(m=0, n=2, offset=1):
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global DataSet
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lenth = int(DataSet[m][n])
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line = []
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for i in range(lenth):
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line.append(DataSet[i + offset])
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return line
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class Person:
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priority: float
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def __init__(self, infomationLine):
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self.name, self.score, self.weightOfGift, self.x_position, self.y_position = infomationLine
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def getPosition(self):
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return (self.x_position, self.y_position)
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def getScore(self):
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global Score
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Score += self.score
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def caculatePriority(self):
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return self.score / (self.weightOfGift * caculateDistance([0, 0], (self.x_position, self.y_position)))
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class People:
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info = []
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def __init__(self):
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global DataSet
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line = readLine(m=0, n=3, offset=1 + int(DataSet[0][2]))
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for i in line:
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self.info.append(Person(i))
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def visualization(self):
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x = []
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y = []
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for i in self.info:
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x.append(i.x_position)
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y.append(i.y_position)
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plt.plot(x, y, 'o')
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plt.show()
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class Santa:
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tableauDeDistribution = []
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position = [0.0, 0.0]
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speed = [0.0, 0.0]
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weightOfCarrots: int = 0
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weightOfGift: int = 0
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def __init__(self):
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global DataSet
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self.timeLimit = int(DataSet[0][0])
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self.deliveryDistanceLimit = int(DataSet[0][1])
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self.speedLimitTable = readLine()
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def getPosition(self):
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return self.position
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def getWeight(self):
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return self.weightOfCarrots + self.weightOfGift
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def nowSpeedLimit(self):
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w = self.getWeight()
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assert w >= 0
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for i in range(len(self.speedLimitTable)):
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if w < self.speedLimitTable[i][0]:
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return self.speedLimitTable[i][1]
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return 0
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# DONE 此速度限制speedLimit为限制表不是当前限制,我们下一步要定义nowspeedLimit
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def isAllowedBySpeedLimit(self, s):
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return s <= self.nowSpeedLimit()
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def consumeCarrot(self):
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assert self.weightOfCarrots >= 1
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self.weightOfCarrots -= 1
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def AccUp(self, s):
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if self.timeLimit > 0:
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assert self.isAllowedBySpeedLimit(s)
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self.speed[1] += s
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self.consumeCarrot()
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print("AccUp", int(s), file=output)
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else:
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pass
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def AccDown(self, s):
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if self.timeLimit > 0:
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assert self.isAllowedBySpeedLimit(s)
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self.speed[1] -= s
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self.consumeCarrot()
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print("AccDown", int(s), file=output)
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else:
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pass
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def AccRight(self, s):
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if self.timeLimit > 0:
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assert self.isAllowedBySpeedLimit(s)
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self.speed[0] += s
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self.consumeCarrot()
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print("AccRight", int(s), file=output)
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else:
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pass
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def AccLeft(self, s):
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if self.timeLimit > 0:
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assert self.isAllowedBySpeedLimit(s)
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self.speed[0] -= s
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self.consumeCarrot()
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print("AccLeft", int(s), file=output)
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else:
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pass
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def LoadCarrots(self, w):
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self.weightOfCarrots += w
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def LoadGift(self, w):
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self.weightOfGift += w
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def DiliveryGift(self, p: Person):
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if self.timeLimit >= 0 and caculateDistance(self.getPosition(), p.getPosition()) <= self.deliveryDistanceLimit:
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assert caculateDistance(
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self.getPosition(), p.getPosition()) <= self.deliveryDistanceLimit
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self.weightOfGift -= p.weightOfGift
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assert self.weightOfGift >= 0
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p.getScore()
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print("DeliverGift", p.name, file=output)
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else:
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pass
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def Float(self, t: int = 1):
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if (self.timeLimit - t) >= 0:
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self.position[0] += self.speed[0] * t
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self.position[1] += self.speed[1] * t
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self.timeLimit -= t
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print("Float", int(t), file=output)
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else:
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self.timeLimit -= self.timeLimit
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def getSituation(self):
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print("Now position is:", self.position)
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print("Now speed is:", self.speed)
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print("Now timeLimit is:", self.timeLimit)
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print("Now weightOfGift is:", self.weightOfGift)
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print("Now weightOfCarrots is:", self.weightOfCarrots)
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def generateTableauDeDistribution(self, pp: People):
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self.tableauDeDistribution = sorted(
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pp.info, key=lambda x: x.caculatePriority(), reverse=True)
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return self.tableauDeDistribution
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def kidoneWay(self, x: int, p: Person):
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v = self.nowSpeedLimit()
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if isinstance(x/v, int) and x > 0:
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t = x/v
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self.AccUp(v)
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self.Float(t)
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self.AccDown(v)
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self.Float(1)
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self.DiliveryGift(p)
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v = self.nowSpeedLimit()
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t = x/v
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self.AccDown(v)
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self.Float(t)
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self.AccUp(v)
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self.Float(1)
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elif isinstance(x/v, int) and x < 0:
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t = abs(x)/v
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self.AccDown(v)
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self.Float(t)
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self.AccUp(v)
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self.Float(1)
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self.DiliveryGift(p)
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v = self.nowSpeedLimit()
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t = abs(x)/v
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self.AccUp(v)
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self.Float(t)
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self.AccDown(v)
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self.Float(1)
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elif x < v and x > 0:
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v = x
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self.AccUp(v)
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self.Float(1)
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self.AccDown(v)
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self.Float(1)
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self.DiliveryGift(p)
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v = self.nowSpeedLimit()
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v = x
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self.AccDown(v)
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self.Float()
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self.AccUp(v)
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self.Float(1)
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elif abs(x) < v and x < 0:
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v = abs(x)
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self.AccDown(v)
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self.Float(1)
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self.AccUp(v)
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self.Float(1)
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self.DiliveryGift(p)
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v = self.nowSpeedLimit()
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v = abs(x)
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self.AccUp(v)
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self.Float(1)
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self.AccDown(v)
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self.Float(1)
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elif x > v and x > 0:
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t = x//v
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v1 = v - (x - t*v)
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self.AccUp(v)
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self.Float(t)
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self.AccDown(v1)
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self.Float()
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self.AccDown(v - v1)
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self.Float(1)
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self.DiliveryGift(p)
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v = self.nowSpeedLimit()
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t = x//v
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v1 = v - (x - t*v)
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self.AccDown(v)
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self.Float(t)
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self.AccUp(v1)
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self.Float(1)
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self.AccUp(v - v1)
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self.Float(1)
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elif abs(x) > v and x < 0:
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t = abs(x)//v
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v1 = v - (abs(x) - t*v)
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self.AccDown(v)
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self.Float(t)
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self.AccUp(v1)
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self.Float(1)
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self.AccUp(v - v1)
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self.Float(1)
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self.DiliveryGift(p)
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v = self.nowSpeedLimit()
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t = abs(x)//v
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v1 = v - (abs(x) - t*v)
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self.AccUp(v)
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self.Float(t)
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self.AccDown(v1)
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self.Float(1)
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self.AccDown(v - v1)
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self.Float(1)
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else:
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self.DiliveryGift(p)
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def oneWay(self, p: Person):
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if self.timeLimit > 0:
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self.LoadCarrots(12)
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print("LoadCarrots 12", file=output)
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self.LoadGift(p.weightOfGift)
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print("LoadGift", p.name, file=output)
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v = self.nowSpeedLimit()
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if isinstance(p.x_position/v, int) and p.x_position > 0:
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t = p.x_position/v
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self.AccRight(v)
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self.Float(t)
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self.AccLeft(v)
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self.Float(1)
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self.kidoneWay(p.y_position, p)
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t = p.x_position/v
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self.AccLeft(v)
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self.Float(t)
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self.AccRight(v)
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self.Float(1)
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elif isinstance(p.x_position/v, int) and p.x_position < 0:
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t = abs(p.x_position)/v
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self.AccLeft(v)
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self.Float(t)
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self.AccRight(v)
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self.Float(1)
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self.kidoneWay(p.y_position, p)
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t = abs(p.x_position)/v
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self.AccRight(v)
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self.Float(t)
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self.AccLeft(v)
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self.Float(1)
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elif p.x_position < v and p.x_position > 0:
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v = p.x_position
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self.AccRight(v)
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self.Float(1)
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self.AccLeft(v)
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self.Float(1)
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self.kidoneWay(p.y_position, p)
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v = p.x_position
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self.AccLeft(v)
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self.Float(1)
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self.AccRight(v)
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self.Float(1)
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elif abs(p.x_position) < v and p.x_position < 0:
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v = abs(p.x_position)
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self.AccLeft(v)
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self.Float(1)
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self.AccRight(v)
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self.Float(1)
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self.kidoneWay(p.y_position, p)
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v = abs(p.x_position)
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self.AccRight(v)
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self.Float(1)
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self.AccLeft(v)
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self.Float(1)
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elif p.x_position > v and p.x_position > 0:
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t = p.x_position//v
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v1 = v - (p.x_position - t*v)
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self.AccRight(v)
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self.Float(t)
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self.AccLeft(v1)
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self.Float(1)
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self.AccLeft(v - v1)
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self.Float(1)
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self.kidoneWay(p.y_position, p)
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t = p.x_position//v
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v1 = v - (p.x_position - t*v)
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self.AccLeft(v)
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self.Float(t)
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self.AccRight(v1)
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self.Float(1)
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self.AccRight(v - v1)
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self.Float(1)
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elif abs(p.x_position) > v and p.x_position < 0:
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t = abs(p.x_position)//v
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v1 = v - (abs(p.x_position) - t*v)
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self.AccLeft(v)
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self.Float(t)
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self.AccRight(v1)
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self.Float(1)
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self.AccRight(v - v1)
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self.Float(1)
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self.kidoneWay(p.y_position, p)
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t = abs(p.x_position)//v
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v1 = v - (abs(p.x_position) - t*v)
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self.AccRight(v)
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self.Float(t)
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self.AccLeft(v1)
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self.Float(1)
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self.AccLeft(v - v1)
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self.Float(1)
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elif p.x_position == 0:
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self.kidoneWay(p.y_position, p)
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def line_prepender(f, line):
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content = f.read()
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f.seek(0, 0)
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f.write(line.rstrip('\r\n') + '\n' + content)
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File_Directory = 'DataSet/'
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Output_File_Directory = 'Output/'
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files = os.listdir(File_Directory)
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out_files = os.listdir(Output_File_Directory)
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print('------------------Score--------------------------------')
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for File_Name in files:
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File_Path = File_Directory+File_Name
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Output_File_Path = Output_File_Directory+File_Name.replace("in", "out")
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DataSet = [line.strip().split() for line in open(File_Path, "r")]
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DataSet = convertToFloat(DataSet)
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Score: int = 0
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s = Santa()
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pp = People()
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s.generateTableauDeDistribution(pp)
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output = open(Output_File_Path, "w")
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try:
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for i in s.generateTableauDeDistribution(pp):
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s.oneWay(i)
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except:
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# print("Error in this dataset", file=output)
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pass
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else:
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pass
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print(File_Name, Score)
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print('-------------------how many line in output file---------------')
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def line_prepender(filename, line):
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with open(filename, 'r+') as f:
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content = f.read()
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f.seek(0, 0)
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f.write(line.rstrip('\r\n') + '\n' + content)
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# count Action
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for out_file in out_files:
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Output_File_Path = Output_File_Directory + out_file
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count = 0
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with open(Output_File_Path, 'r') as fp:
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for count, line in enumerate(fp):
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pass
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print(out_file, count + 1)
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line_prepender(Output_File_Path, str(count+1))
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