GM (1, 1) model prediction method based on cubic spline
A model prediction and spline technology, applied in special data processing applications, instruments, electrical digital data processing, etc., can solve problems such as large errors, prediction accuracy not meeting requirements, oscillation, etc.
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[0049] Such as figure 1 shown. A kind of GM (1,1) model prediction method based on cubic spline, comprises the following steps:
[0050] (1) According to the goal of data prediction using the GM (1,1) model, based on the theoretical basis of piecewise linear interpolation, cubic spline interpolation and calculation process, the segmentation of the interval [k,k+1] is realized, including The following steps:
[0051] Let the value of the second derivative of S(x) be S″(x k )=M k (k=1,2,…,n), and the second order derivatives at both ends are known, S″(1)=S″(n). Since S(x) is in the interval [x k ,x k+1 ] is a cubic polynomial, so S″(x) is in [x k ,x k+1 ] is a linear function, which can be expressed as:
[0052] S ′ ′ ( x ) = M k x k +...
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