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Real-Time Forecasting Faceoff: Time Series vs. DNNs // Josh Xi // #305

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Forecasting Models: Autoregressive vs Deep Learning

This chapter explores the effectiveness of time series models versus deep neural networks (DNNs) in real-time forecasting applications, emphasizing their infrastructure and cost implications. It covers the advantages of autoregressive models in adaptability and efficiency compared to DNNs, which require larger datasets and complex retraining processes. The discussion also addresses model optimization techniques and the integration of human insights to enhance accuracy in demand predictions.

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