Stock index trend prediction method based on Laplace operator
A Laplacian operator and trend forecasting technology, applied in the field of computer technology and intelligent forecasting, can solve the problems of weak nonlinear fitting ability of series, unable to capture nonlinear relationship, poor model interpretability, etc., to enhance market flow. performance, simple parameter design, and improved performance
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[0064] The present invention will be further described below in conjunction with the accompanying drawings.
[0065] Such as figure 1 As shown, a stock index trend prediction method based on the Laplacian operator includes the following steps:
[0066] Step1, intraday MACD (smoothed moving average of similarities and differences) calculation
[0067] (1) Calculate the exponentially smoothed moving average:
[0068]
[0069] Among them, EMA(n) t is the smooth moving average within the n tick window before the tth moment, p t is the stock index market value at time t. EMA(n) t-1 It is the smoothed moving average in n tick windows before the t-1th time, tick refers to the value of market data at one moment, and n tick windows refer to the time window containing n moments.
[0070] (2) Calculate the average of similarities and differences:
[0071] DIF(n) t =EMA(n) t -EMA(n+10) t (2)
[0072]
[0073] Among them, EMA(n) t is the smooth moving average within the ...
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