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https://github.com/zhm-real/PathPlanning.git
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add BIT*
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@@ -0,0 +1,278 @@
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"""
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Batch Informed Trees (BIT*)
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@author: huiming zhou
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"""
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import os
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import sys
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import math
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import random
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import copy
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import numpy as np
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import matplotlib.pyplot as plt
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import matplotlib.patches as patches
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sys.path.append(os.path.dirname(os.path.abspath(__file__)) +
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"/../../Sampling_based_Planning/")
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from Sampling_based_Planning.rrt_2D import env, plotting, utils
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class Node:
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def __init__(self, x, y):
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self.x = x
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self.y = y
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self.parent = None
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class Tree:
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def __init__(self, x_start, x_goal):
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self.x_start = x_start
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self.goal = x_goal
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self.r = np.inf
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self.V = set()
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self.E = set()
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self.QE = set()
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self.QV = set()
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self.V_old = set()
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class BITStar:
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def __init__(self, x_start, x_goal, eta, iter_max):
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self.x_start = Node(x_start[0], x_start[1])
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self.x_goal = Node(x_goal[0], x_goal[1])
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self.eta = eta
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self.iter_max = iter_max
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self.env = env.Env()
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self.plotting = plotting.Plotting(x_start, x_goal)
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self.utils = utils.Utils()
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self.fig, self.ax = plt.subplots()
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self.delta = self.utils.delta
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self.x_range = self.env.x_range
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self.y_range = self.env.y_range
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self.obs_circle = self.env.obs_circle
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self.obs_rectangle = self.env.obs_rectangle
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self.obs_boundary = self.env.obs_boundary
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self.Tree = Tree(self.x_start, self.x_goal)
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self.X_sample = set()
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self.g_T = dict()
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self.f_T = dict()
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def init(self):
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self.Tree.V.add(self.x_start)
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self.X_sample.add(self.x_goal)
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self.g_T[self.x_goal] = np.inf
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self.f_T[self.x_goal] = 0.0
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self.g_T[self.x_start] = 0.0
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self.f_T[self.x_start] = self.f_estimated(self.x_start)
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cMin, theta = self.calc_dist_and_angle(self.x_start, self.x_goal)
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C = self.RotationToWorldFrame(self.x_start, self.x_goal, cMin)
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xCenter = np.array([[(self.x_start.x + self.x_goal.x) / 2.0],
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[(self.x_start.y + self.x_goal.y) / 2.0], [0.0]])
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return theta, cMin, xCenter, C
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def planning(self):
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eTheta, cMin, xCenter, C = self.init()
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for k in range(self.iter_max):
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if not self.Tree.QE and not self.Tree.QV:
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self.Prune(self.g_T[self.x_goal])
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m = 200
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self.X_sample.update(self.Sample(m, self.g_T[self.x_goal], cMin, xCenter, C))
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self.Tree.V_old = copy.deepcopy(self.Tree.V)
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self.Tree.QV = copy.deepcopy(self.Tree.V)
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self.Tree.r = self.radius(len(self.Tree.V) + len(self.X_sample))
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while self.BestVertexQueueValue() <= self.BestEdgeQueueValue():
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self.ExpandVertex(self.BestInVertexQueue())
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vm, xm = self.BestInEdgeQueue()
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self.Tree.QE.remove((vm, xm))
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if self.g_T[vm] + self.calc_dist(vm, xm) + self.h_estimated(xm) < self.g_T[self.x_goal]:
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if self.g_estimated(vm) + self.cost(vm, xm) + self.h_estimated(xm) < self.g_T[self.x_goal]:
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if self.g_T[vm] + self.cost(vm, xm) < self.g_T[xm]:
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if xm in self.Tree.V:
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# remove edges
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for vl, vr in self.Tree.E:
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if vl == xm or vr == xm:
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self.Tree.E.remove((vl, vr))
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else:
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self.X_sample.remove(xm)
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self.Tree.V.add(xm)
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self.Tree.QV.add(xm)
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self.Tree.E.add((vm, xm))
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def ExpandVertex(self, v):
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self.Tree.QV.remove(v)
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X_near = {x for x in self.X_sample if self.calc_dist(x, v) <= self.Tree.r}
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for x in X_near:
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if self.g_estimated(v) + self.calc_dist(v, x) + self.h_estimated(x) < self.g_T[self.x_goal]:
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self.Tree.QE.add((v, x))
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if v not in self.Tree.V_old:
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V_near = {w for w in self.Tree.V if self.calc_dist(w, v) <= self.Tree.r}
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for w in V_near:
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if (v, w) not in self.Tree.E and (w, v) not in self.Tree.E and \
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self.g_estimated(v) + self.calc_dist(v, w) + self.h_estimated(w) < self.g_T[self.x_goal] and \
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self.g_T[v] + self.calc_dist(v, w) < self.g_T[w]:
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self.Tree.QE.add((v, w))
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def BestVertexQueueValue(self):
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if not self.Tree.QV:
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return np.inf
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return min(self.g_T[v] + self.h_estimated(v) for v in self.Tree.QV)
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def BestEdgeQueueValue(self):
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if not self.Tree.QE:
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return np.inf
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return min(self.g_T[el] + self.calc_dist(el, er) + self.h_estimated(er)
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for el, er in self.Tree.QE)
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def BestInVertexQueue(self):
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v_value = {v: self.g_T[v] + self.h_estimated(v) for v in self.Tree.QV}
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return min(v_value, key=v_value.get)
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def BestInEdgeQueue(self):
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e_value = {(el, er): self.g_T[el] + self.calc_dist(el, er) + self.h_estimated(er)
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for el, er in self.Tree.QE}
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return min(e_value, key=e_value.get)
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def radius(self, q):
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lambda_X = 0
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sigma = math.pi ** 2
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for x in self.Tree.V:
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if self.f_estimated(x) <= self.g_T[self.x_goal]:
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lambda_X += 1
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return 2 * self.eta * 1.5 ** 0.5 * (lambda_X / sigma * math.log(q) / q) ** 0.5
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def Sample(self, m, cMax, cMin, xCenter, C):
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if cMax < np.inf:
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Sample = self.SampleEllipsoid(m, cMax, cMin, xCenter, C)
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else:
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Sample = self.SampleFreeSpace(m)
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return Sample
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def SampleEllipsoid(self, m, cMax, cMin, xCenter, C):
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r = [cMax / 2.0,
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math.sqrt(cMax ** 2 - cMin ** 2) / 2.0,
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math.sqrt(cMax ** 2 - cMin ** 2) / 2.0]
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L = np.diag(r)
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ind = 0
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delta = self.delta
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Sample = set()
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while ind < m:
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xBall = self.SampleUnitNBall()
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x_rand = C @ L @ xBall + xCenter
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node = Node(x_rand[0], x_rand[1])
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not_in_obs = ~self.utils.is_inside_obs(node)
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in_x_range = self.x_range[0] + delta <= node.x <= self.x_range[1] - delta
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in_y_range = self.y_range[0] + delta <= node.y <= self.y_range[1] - delta
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if not_in_obs and in_x_range and in_y_range:
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Sample.add(node)
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ind += 1
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return Sample
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def SampleFreeSpace(self, m):
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delta = self.utils.delta
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Sample = set()
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ind = 0
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while ind < m:
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node = Node((random.uniform(self.x_range[0] + delta, self.x_range[1] - delta),
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random.uniform(self.y_range[0] + delta, self.y_range[1] - delta)))
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if self.utils.is_inside_obs(node):
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continue
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else:
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Sample.add(node)
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ind += 1
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return Sample
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@staticmethod
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def SampleUnitNBall():
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theta, r = random.uniform(0.0, 2 * math.pi), random.random()
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x = r * math.cos(theta)
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y = r * math.sin(theta)
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return np.array([[x], [y], [0.0]])
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def Prune(self, c):
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for x in self.X_sample:
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if self.f_estimated(x) >= c:
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self.X_sample.remove(x)
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for v in self.Tree.V:
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if self.f_estimated(v) > c:
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self.Tree.V.remove(v)
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for v, w in self.Tree.E:
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if self.f_estimated(v) > c or self.f_estimated(w) > c:
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self.Tree.E.remove((v, w))
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for v in self.Tree.V:
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if v.g_T == np.inf:
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self.X_sample.add(v)
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for v in self.Tree.V:
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if v.g_T == np.inf:
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self.Tree.V.remove(v)
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def cost(self, start, end):
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if self.utils.is_collision(start, end):
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return np.inf
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return self.calc_dist(start, end)
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def f_estimated(self, node):
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return self.g_estimated(node) + self.h_estimated(node)
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def g_estimated(self, node):
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return self.calc_dist(self.x_start, node)
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def h_estimated(self, node):
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return self.calc_dist(node, self.x_goal)
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@staticmethod
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def RotationToWorldFrame(x_start, x_goal, L):
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a1 = np.array([[(x_start.x - x_start.x) / L],
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[(x_goal.y - x_start.y) / L], [0.0]])
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e1 = np.array([[1.0], [0.0], [0.0]])
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M = a1 @ e1.T
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U, _, V_T = np.linalg.svd(M, True, True)
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C = U @ np.diag([1.0, 1.0, np.linalg.det(U) * np.linalg.det(V_T.T)]) @ V_T
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return C
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@staticmethod
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def calc_dist(start, end):
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return math.hypot(start.x - end.x, start.y - end.y)
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@staticmethod
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def calc_dist_and_angle(node_start, node_end):
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dx = node_end.x - node_start.x
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dy = node_end.y - node_start.y
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return math.hypot(dx, dy), math.atan2(dy, dx)
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@@ -123,11 +123,12 @@ class IRrtStar:
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math.sqrt(c_max ** 2 - c_min ** 2) / 2.0,
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math.sqrt(c_max ** 2 - c_min ** 2) / 2.0]
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L = np.diag(r)
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x_ball = self.SampleUnitNBall()
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while True:
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x_ball = self.SampleUnitNBall()
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x_rand = C @ L @ x_ball + x_center
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if self.x_range[0] + self.delta <= x_rand[0] <= self.x_range[1] + self.delta:
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if self.x_range[0] + self.delta <= x_rand[0] <= self.x_range[1] - self.delta and \
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self.y_range[0] + self.delta <= x_rand[1] <= self.y_range[1] - self.delta:
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break
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x_rand = Node((x_rand[0], x_rand[1]))
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else:
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