Author: Bloise, Francesco; Tancioni, Massimiliano
                    Title: Predicting the spread of COVID-19 in Italy using machine learning: Do socio-economic factors matter?  Cord-id: qfrn3v3s  Document date: 2021_1_21
                    ID: qfrn3v3s
                    
                    Snippet: We exploit the provincial variability of COVID-19 cases registered in Italy to select the territorial predictors of the pandemic. Absent an established theoretical diffusion model, we apply machine learning to isolate, among 77 potential predictors, those that minimize the out-of-sample prediction error. We first estimate the model considering cumulative cases registered before the containment measures displayed their effects (i.e. at the peak of the epidemic in March 2020), then cases registere
                    
                    
                    
                     
                    
                    
                    
                    
                        
                            
                                Document: We exploit the provincial variability of COVID-19 cases registered in Italy to select the territorial predictors of the pandemic. Absent an established theoretical diffusion model, we apply machine learning to isolate, among 77 potential predictors, those that minimize the out-of-sample prediction error. We first estimate the model considering cumulative cases registered before the containment measures displayed their effects (i.e. at the peak of the epidemic in March 2020), then cases registered between the peak date and when containment measures were relaxed in early June. In the first estimate, the results highlight the dominance of factors related to the intensity and interactions of economic activities. In the second, the relevance of these variables is highly reduced, suggesting mitigation of the pandemic following the lockdown of the economy. Finally, by considering cases at onset of the “second waveâ€, we confirm that the territorial distribution of the epidemic is associated with economic factors.
 
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