如何解决在Python中绘制椭圆轨道使用numpy,matplotlib
问题是每个有效x都有y的2个值,并且在椭圆跨度x的范围之外没有(或虚数)y个解
下面是3.5代码,sympy 1.0应该可以,但是可以打印,列表组合可能无法向后兼容2.x
from numpy import linalg
from numpy import linspace
import numpy as np
from numpy import meshgrid
import random
import matplotlib.pyplot as plt
from scipy import optimize
from sympy import *
xs = [1.02, 0.95, 0.87, 0.77, 0.67, 0.56, 0.44, 0.30, 0.16, 0.01]
ys = [0.39, 0.32, 0.27, 0.22, 0.18, 0.15, 0.13, 0.12, 0.12, 0.15]
b = [i ** 2 for i in xs] # That is the list that contains the results that are given as x^2 from the equation.
def fxn(x, y): # That is the function that solves the given equation to find each parameter.
my_list = [] #It is the main list.
for z in range(len(x)):
w = [0] * 5
w[0] = y[z] ** 2
w[1] = x[z] * y[z]
w[2] = x[z]
w[3] = y[z]
w[4] = 1
my_list.append(w)
return my_list
t = linalg.lstsq(fxn(xs, ys), b)
def ysolv(coeffs):
x,y,a,b,c,d,e = symbols('x y a b c d e')
ellipse = a*y**2 + b*x*y + c*x + d*y + e - x**2
y_sols = solve(ellipse, y)
print(*y_sols, sep='\n')
num_coefs = [(a, f) for a, f in (zip([a,b,c,d,e], coeffs))]
y_solsf0 = y_sols[0].subs(num_coefs)
y_solsf1 = y_sols[1].subs(num_coefs)
f0 = lambdify([x], y_solsf0)
f1 = lambdify([x], y_solsf1)
return f0, f1
f0, f1 = ysolv(t[0])
y0 = [f0(x) for x in xs]
y1 = [f1(x) for x in xs]
plt.scatter(xs, ys)
plt.scatter(xs, y0, s=100, color = 'red', marker='+')
plt.scatter(xs, y1, s=100, color = 'green', marker='+')
plt.show()
在Spyder中运行以上命令时:
runfile('C:/Users/john/mypy/mySE_answers/ellipse.py', wdir='C:/Users/john/mypy/mySE_answers')
(-b*x - d + sqrt(-4*a*c*x - 4*a*e + 4*a*x**2 + b**2*x**2 + 2*b*d*x + d**2))/(2*a)
-(b*x + d + sqrt(-4*a*c*x - 4*a*e + 4*a*x**2 + b**2*x**2 + 2*b*d*x + d**2))/(2*a)
f0(0.1), f1(0.1)
Out[5]: (0.12952825130864626, 0.6411040771593166)
f0(2)
Traceback (most recent call last):
File "<ipython-input-6-9ce260237dcd>", line 1, in <module>
f0(2)
File "<string>", line 1, in <lambda>
ValueError: math domain error
In [7]:
域错误将需要尝试/执行才能“感觉”到有效的x范围或更多数学运算
像下面的try / except一样:(编辑为“关闭”图纸,重新注释)
def feeloutxrange(f, midx, endx):
fxs = []
x = midx
while True:
try: f(x)
except:
break
fxs.append(x)
x += (endx - midx)/100
return fxs
midx = (min(xs) + max(xs))/2
xpos = feeloutxrange(f0, midx, max(xs))
xnegs = feeloutxrange(f0, midx, min(xs))
xs_ellipse = xnegs[::-1] + xpos[1:]
y0s = [f0(x) for x in xs_ellipse]
y1s = [f1(x) for x in xs_ellipse]
ys_ellipse = y0s + y1s[::-1] + [y0s[0]] # add y start point to end to close drawing
xs_ellipse = xs_ellipse + xs_ellipse[::-1] + [xs_ellipse[0]] # added x start point
plt.scatter(xs, ys)
plt.scatter(xs, y0, s=100, color = 'red', marker='+')
plt.scatter(xs, y1, s=100, color = 'green', marker='+')
plt.plot(xs_ellipse, ys_ellipse)
plt.show()
ys_ellipse = y0s + y1s[::-1] + [y0s[0]] # add y start point to end to close drawing
xs_ellipse = xs_ellipse + xs_ellipse[::-1] + [xs_ellipse[0]] # added x start point
解决方法
我想知道如何通过使用方程ay 2 + bxy + cx + dy + e = x 2来绘制椭圆轨道吗?
我首先确定了a,b,c,d,e常数,现在我假设通过给定x值,我将获得y,这将给我想要的图形,但我不能通过使用matplotlib来完成。
如果您能帮助我,我将不胜感激!
编辑:我在这里添加了代码。
from numpy import linalg
from numpy import linspace
import numpy as np
from numpy import meshgrid
import random
import matplotlib.pyplot as plt
from scipy import optimize
x = [1.02,0.95,0.87,0.77,0.67,0.56,0.44,0.30,0.16,0.01]
y = [0.39,0.32,0.27,0.22,0.18,0.15,0.13,0.12,0.15]
my_list = [] #It is the main list.
b = [0] * len(x) # That is the list that contains the results that are given as x^2 from the equation.
def fxn(): # That is the function that solves the given equation to find each parameter.
global my_list
global b
for z in range(len(x)):
w = [0] * 5
w[0] = y[z] ** 2
w[1] = x[z] * y[z]
w[2] = x[z]
w[3] = y[z]
w[4] = 1
my_list.append(w)
b[z] = x[z] ** 2
t = linalg.lstsq(my_list,b)[0]
print 'List of list representation is',my_list
print 'x^2,the result of the given equation is',b
print '\nThe list that contains the parameters is',t
fxn()
t = linalg.lstsq(my_list,b)[0]
print '\nThe constant a is',t[0]
print 'The constant b is',t[1]
print 'The constant c is',t[2]
print 'The constant d is',t[3]
print 'The constant e is',t[4]
编辑:这是常量值:
a = -4.10267300566
b = 1.10642410023
c = 0.39735696603
d = 3.05101004127
e = -0.370426134994
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