2019年2月22日 星期五

Julia語言 例題1-1 利用Lagrange 已知下列數據 求 xa=1.5 的值並計算誤差值=?

Julia語言 例題1-1 利用Lagrange 已知下列數據 求 xa=1.5 的值並計算誤差值=?
 x       f(x)
==========
1.0     0.0
2.0     0.693

程式
using Printf

function lagrange(x::Array{Float64,1},f::Array{Float64,1},xa::Float64)
    #
    # implements the interpolation algorithm of Newton
    #
    # ON ENTRY :
    # x abscisses, given as a column vector;
    # f ordinates, given as a column vector;
    # xa point where to evaluate the interpolating
    # polynomial through (x[i],f[i]).
    #
    # ON RETURN :
    # d divided differences, computed from and f;
    # p value of the interpolating polynomial at xa.
    #
    # EXAMPLE :
    n = length(x)
    tmp2=0.0
    for k=1:n
        tmp1=1.0
        for i=1:n
            if (i != k)
                tmp1 *= (xa-x[i]) / (x[k]-x[i])
            end 
        end
        tmp2=tmp2+tmp1*f[k] 
    end 
     
    return tmp2
end


x = [1.0 , 2.0 ]
f = [0.0 , 0.693 ]
xa = 1.5
result1 = lagrange(x,f,xa)
println("Lagrange 內插法理則 ")
println("x=    " , x)
println("f(x)= " , f)
 
s = @sprintf("Pn(x)=%0.5f" , result1 )
println(s)
s = @sprintf("f(xa)=%0.5f" , log(xa) )
println(s)
s = @sprintf("誤差 =%0.5f" , abs(log(xa)-result1) )
println(s)
 

輸出畫面
Lagrange 內插法理則 
x=    [1.0, 2.0]
f(x)= [0.0, 0.693]
Pn(x)=0.34650
f(xa)=0.40547
誤差 =0.05897

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