A Study on the Number of Domestic Food Delivery Services

  • Kwon J
  • Kim S
  • Park E
  • et al.
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Abstract

Food delivery services are well developed in the Republic of Korea, The increase of one person households and the success of app applications influence delivery services these days. We consider a prediction model for the food delivery service based on weather and dates to predict the number of food delivery services in 2014 using various data mining techniques. We use linear regression, random forest, gradient boosting, support vector machines, neural networks, and logistic regression to find the best prediction model. There are four categories of food delivery services and we consider two methods. For the first method, we estimate the total number of delivery services and the posterior probabilities of each delivery service. For the second method, we use different models for each category and combine them to estimate the total number of delivery services. The neural network and linear regression model perform best in the first method, this is followed by the neural network which is the best for the second method. The result shows that we can estimate the number of deliveries accurately based on dates and weather information.

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APA

Kwon, J., Kim, S., Park, E., & Song, J. (2015). A Study on the Number of Domestic Food Delivery Services. Korean Journal of Applied Statistics, 28(5), 977–990. https://doi.org/10.5351/kjas.2015.28.5.977

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