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Model selection and averaging in the assessment of the drivers of household food waste to reduce the probability of false positives

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  • Matthew James Grainger
  • Lusine Aramyan
  • Simone Piras
  • Thomas Edward Quested
  • Simone Righi
  • Marco Setti
  • Matteo Vittuari
  • Gavin Bruce Stewart

Abstract

Food waste from households contributes the greatest proportion to total food waste in developed countries. Therefore, food waste reduction requires an understanding of the socio-economic (contextual and behavioural) factors that lead to its generation within the household. Addressing such a complex subject calls for sound methodological approaches that until now have been conditioned by the large number of factors involved in waste generation, by the lack of a recognised definition, and by limited available data. This work contributes to food waste generation literature by using one of the largest available datasets that includes data on the objective amount of avoidable household food waste, along with information on a series of socio-economic factors. In order to address one aspect of the complexity of the problem, machine learning algorithms (random forests and boruta) for variable selection integrated with linear modelling, model selection and averaging are implemented. Model selection addresses model structural uncertainty, which is not routinely considered in assessments of food waste in literature. The main drivers of food waste in the home selected in the most parsimonious models include household size, the presence of fussy eaters, employment status, home ownership status, and the local authority. Results, regardless of which variable set the models are run on, point toward large households as being a key target element for food waste reduction interventions.

Suggested Citation

  • Matthew James Grainger & Lusine Aramyan & Simone Piras & Thomas Edward Quested & Simone Righi & Marco Setti & Matteo Vittuari & Gavin Bruce Stewart, 2018. "Model selection and averaging in the assessment of the drivers of household food waste to reduce the probability of false positives," PLOS ONE, Public Library of Science, vol. 13(2), pages 1-16, February.
  • Handle: RePEc:plo:pone00:0192075
    DOI: 10.1371/journal.pone.0192075
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    References listed on IDEAS

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    Cited by:

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    2. Nkiruka C. Atuegwu & Cheryl Oncken & Reinhard C. Laubenbacher & Mario F. Perez & Eric M. Mortensen, 2020. "Factors Associated with E-Cigarette Use in U.S. Young Adult Never Smokers of Conventional Cigarettes: A Machine Learning Approach," IJERPH, MDPI, vol. 17(19), pages 1-16, October.
    3. Lea Kubíčková & Lucie Veselá & Marcela Kormaňáková, 2021. "Food Waste Behaviour at the Consumer Level: Pilot Study on Czech Private Households," Sustainability, MDPI, vol. 13(20), pages 1-24, October.
    4. Piras, Simone & Pancotto, Francesca & Righi, Simone & Vittuari, Matteo & Setti, Marco, 2021. "Community social capital and status: The social dilemma of food waste," Ecological Economics, Elsevier, vol. 183(C).
    5. Malefors, Christopher & Secondi, Luca & Marchetti, Stefano & Eriksson, Mattias, 2022. "Food waste reduction and economic savings in times of crisis: The potential of machine learning methods to plan guest attendance in Swedish public catering during the Covid-19 pandemic," Socio-Economic Planning Sciences, Elsevier, vol. 82(PA).
    6. Efrat Elimelech & Eyal Ert & Ofira Ayalon, 2019. "Exploring the Drivers behind Self-Reported and Measured Food Wastage," Sustainability, MDPI, vol. 11(20), pages 1-19, October.
    7. Vaneesha Dusoruth & Hikaru Hanawa Peterson, 2020. "Food waste tendencies: Behavioral response to cosmetic deterioration of food," PLOS ONE, Public Library of Science, vol. 15(5), pages 1-22, May.
    8. Matteo Vittuari & Luca Falasconi & Matteo Masotti & Simone Piras & Andrea Segrè & Marco Setti, 2020. "‘Not in My Bin’: Consumer’s Understanding and Concern of Food Waste Effects and Mitigating Factors," Sustainability, MDPI, vol. 12(14), pages 1-23, July.
    9. Garre, Alberto & Ruiz, Mari Carmen & Hontoria, Eloy, 2020. "Application of Machine Learning to support production planning of a food industry in the context of waste generation under uncertainty," Operations Research Perspectives, Elsevier, vol. 7(C).

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