A Traffic Flow Forecasting Method Based on Sliding Window Averaging
A traffic flow and prediction method technology, applied in the field of intelligent transportation science, can solve problems such as low prediction accuracy and increased data flow volatility, and achieve the goals of improving accuracy and reliability, reducing prediction data errors, and eliminating random fluctuations Effect
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[0028] Embodiment 1: as figure 1 As shown, a traffic flow prediction method based on sliding window average includes the following steps:
[0029] 1) Collect historical traffic flow data and forecast day traffic flow data;
[0030] 2) Set the window threshold and train the parameters of the traffic flow prediction model; the traffic flow prediction model is:
[0031] X ^ = C · Φ T - - - ( 1 )
[0032] in, Represents the predicted traffic flow data matrix in a continuous interval; C represents the parameter matrix; Φ is the eigenvector matrix describing the changing trend of traffic flow in the corresponding interval;
[0033] The specific calculation process of the parameters of the training traffic flow forecasting model is as follows:
[0034] 2.1) Define the data in M rows and ω colu...
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