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python - How to derive equation from Numpy's polyfit?

Given an array of x and y values, the following code will calculate a regression curve for these data points.

# calculate polynomial
z = np.polyfit(x, y, 5)
f = np.poly1d(z)

# calculate new x's and y's
x_new = np.linspace(x[0], x[-1], 50)
y_new = f(x_new)

plt.plot(x,y,'o', x_new, y_new)
plt.xlim([x[0]-1, x[-1] + 1 ])
plt.show()

How can I use the above to derive the actual equation for this curve?

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If you want to show the equation, you can use sympy to output latex:

from sympy import S, symbols, printing
from matplotlib import pyplot as plt
import numpy as np

x=np.linspace(0,1,100)
y=np.sin(2 * np.pi * x)

p = np.polyfit(x, y, 5)
f = np.poly1d(p)

# calculate new x's and y's
x_new = np.linspace(x[0], x[-1], 50)
y_new = f(x_new)

x = symbols("x")
poly = sum(S("{:6.2f}".format(v))*x**i for i, v in enumerate(p[::-1]))
eq_latex = printing.latex(poly)

plt.plot(x_new, y_new, label="${}$".format(eq_latex))
plt.legend(fontsize="small")
plt.show()

the result:

enter image description here


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