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| import numpy as np
class RK4Solver: def __init__(self, dt: float, y0, tspan: list): self.dt = dt if type(y0) is list: k = len(y0) y11 = np.zeros([1, k]) for w in range(k): y11[0, w] = y0[w] y0 = y11 self.y0 = y0 self.tspan = tspan self.t_list = np.arange(min(self.tspan), max(self.tspan), self.dt) self.M = np.shape(self.t_list)[0] self.N = max(np.shape(y0)) self.y_list = np.zeros([self.M, self.N]) for w in range(self.N): self.y_list[0, w] = self.y0[0, w] self.value_list = np.zeros([self.M, 1]) self.break_point = self.M
def func(self, t, y): x0 = y[0, 0] y0 = y[0, 1] z0 = y[0, 2] dydt = np.zeros([1, 3]) dydt[0, 0] = x0 dydt[0, 1] = y0 dydt[0, 2] = z0 return dydt
def break_func(self, t, y): value = y[0] - 10 isterminal = 1 direction = 1 return value, isterminal, direction
def RK4step(self, t, y): if type(y) is list: raise ValueError('The function return must be numpy.array!') yi = np.zeros([1, self.N]) for i in range(self.N): yi[0, i] = y[i] y = yi dydt1 = self.func(t, y)
dydt2 = self.func(t + self.dt / 2, y + dydt1 / 2 * self.dt)
dydt3 = self.func(t + self.dt / 2, y + dydt2 / 2 * self.dt)
dydt4 = self.func(t + self.dt, y + dydt3 * self.dt)
dydt = (dydt1 + 2 * dydt2 + 2 * dydt3 + dydt4) / 6
return dydt
def calculate(self): for i in range(1, self.M): dydti = self.RK4step(self.t_list[i - 1], self.y_list[i - 1, :]) yi = self.y_list[i, :] + dydti self.y_list[i] = yi if i == 1: valuei0, _, _ = self.break_func(self.t_list[i - 1], self.y_list[i - 1, :]) self.value_list[i - 1] = valuei0 value, isterminal, direction = self.break_func(self.t_list[i], self.y_list[i, :]) self.value_list[i] = value if isterminal == 1: checkvalue = self.value_list[i] * self.value_list[i - 1] if checkvalue <= 0: if direction > 0: if self.value_list[i - 1] <= 0 and self.value_list[i] >= 0: self.break_point = i break else: if self.value_list[i - 1] >= 0 and self.value_list[i] <= 0: self.break_point = i break else: continue return self.y_list
def run(self): y_list = self.calculate() t_list = self.t_list[:self.break_point] return t_list, y_list[:self.break_point, :]
if __main__ == '__main__': Y = RK4Solver(0.1, [1, 1, 1], [0, 10]) t, y = Y.run()
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