# 数学模型（插值、拟合和微分方程）-python实现

2020/11/14 08:02

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# 问题1 车辆数量估计

## python 实现(关键程序)

def get_line(xn, yn):
def line(x):
index = -1
# 找出x所在的区间
for i in range(1, len(xn)):
if x <= xn[i]:
index = i - 1
break
else:
i += 1
if index == -1:
return -100
# 插值
result = (x - xn[index + 1]) * yn[index] / float((xn[index] - xn[index + 1])) + (x - xn[index]) * yn[
index + 1] / float((xn[index + 1] - xn[index]))
return result
return line
time = [0, 2, 4, 5, 6, 7, 8,
9, 10.5, 11.5, 12.5, 14, 16, 17,
18, 19, 20, 21, 22, 23, 24]
num = [2, 2, 0, 2, 5, 8, 25,
12, 5, 10, 12, 7, 9, 28,
22, 10, 9, 11, 8, 9, 3]
# 分段线性插值函数
lin = get_line(time, num)
# time_n = np.arange(0, 24, 1/60)
time_n = np.linspace(0, 24, 24*60+1)
num_n = [lin(i) for i in time_n]
sum_num = sum(num_n)
print("估计一天通过的车辆：%d" % sum_num)


# 问题2 旧车平均价格

## Python 实现(关键程序)

from scipy.optimize import curve_fit
def func(x, a, b, c):  # 指数函数拟合
return a * (b**(x-1)) + c

year = np.arange(1, 11, 1)
price = [2615, 1943, 1494, 1087, 765, 538, 484, 290, 226, 204]

popt, pcov = curve_fit(func, year, price)
a = popt[0]
b = popt[1]
c = popt[2]
price_fit = func(year, a, b, c)


# 问题3 微分方程组求解

## 题目描述

{ d 3 f d η 3 + 3 f d 2 f d η 2 − 2 ( d f d η ) 2 + T = 0 d 2 T d η 2 + 2.1 f d T d η = 0 \left\{\begin{array}{l}\frac{\mathrm{d}^{3} f}{\mathrm{d} \eta^{3}}+3 f \frac{\mathrm{d}^{2} f}{\mathrm{d} \eta^{2}}-2\left(\frac{\mathrm{d} f}{\mathrm{d} \eta}\right)^{2}+T=0 \\ \frac{\mathrm{d}^{2} T}{\mathrm{d} \eta^{2}}+2.1 f \frac{\mathrm{d} T}{\mathrm{d} \eta}=0\end{array}\right. dη3d3f+3fdη2d2f2(dηdf)2+T=0dη2d2T+2.1fdηdT=0

## Python实现(关键程序)

from scipy.integrate import solve_ivp
def natural_convection(eta, y):  # 将含有两个未知函数的高阶微分方程降阶，得到由2+3个一阶微分方程组成的方程组
T1 = y[0]
T2 = y[1]
f1 = y[2]
f2 = y[3]
f3 = y[4]
return T2, -2.1*f1*T2, f2, f3, -3*f1*f3 + 2*(f2**2)-T1

eta = np.linspace(0, 10, 1000)
eta_span = [0, 10]
init = np.array([ 1, -0.5, 0, 0, 0.68])

curve = solve_ivp(natural_convection, eta_span, init, t_eval=eta)


# 问题4 野兔数量

## Python实现(关键程序)

import numpy as np

year = np.arange(0, 9, 1)
num = [5, 5.9945, 7.0932, 8.2744, 9.5073, 10.7555, 11.9804, 13.1465, 14.2247]

fit = np.polyfit(year, num, 1)
print("线性拟合表达式：", np.poly1d(fit))
num_fit = np.polyval(fit, year)
plt.plot(year, num, 'ro', label='原始数据')
plt.plot(year, num_fit, 'b-',label='拟合曲线')
year_later = np.arange(8, 11, 0.5)
num_fit_curve = fit[0] * year_later + fit[1]


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