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RBI_CASH_DEMAND_FORCASTING_TIMESERIES

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Problem Statement:

ATMs filled with large amounts of cash may bring low transport/logistic cost but high freezing & high insurance cost. On the other hand, if banks do not have the proper mechanism to track the usage pattern, then frequent re-filling ATMs will reduce freezing and insurance cost but increase logistic cost. This is important, because it will allow the goverment to gain information about the cash flow in the economy, as well as analyze the cash demand required for each ATM banks.

Data Collection:

Data is published on RBI website.

Source: https://www.rbi.org.in/Scripts/BS_PressReleaseDisplay.aspx?prid=49901

https://drive.google.com/file/d/1tu3iisCaOnwgc4Z510xypUGHQt80Vn-k/view?usp=sharing

model Analysis:

•AutoARIMA •FBPROPHET

Future work:

We can extend this model to forecast the cash demand for individual banks. Here, we have the data for ATM withdrawal across bank and so we can forecast the demand in total. However, if an individual bank forecasts the demand for their own ATMs, it can benefit them in following ways:

• Optimizing the logistic and insurance cost,

• Stabilizing the cash freeze,

• Improving the customer goodwill and so on.

Refrences:

https://www.geeksforgeeks.org/time-series-plot-or-line-plot-with-pandas/

https://www.machinelearningplus.com/time-series/time-series-analysis-python/

https://towardsdatascience.com/time-series-analysis-using-pandas-in-python-f726d87a97d8

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