Incorporating safety-first constraints in linear programming production models

A recent survey indicated that many producers view risk in a safety-first context. Traditional methods used to impose safety-first constraints in optimization models have often been difficult to implement. This is particularly true when endogenous decisions affect the distribution of the chance-cons...

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Veröffentlicht in:Western Journal of Agricultural Economics 1988-07, Vol.13 (1), p.29-36
Hauptverfasser: Atwood, J.A. (Montana State University), Watts, M.J, Helmers, G.A, Held, L.J
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Sprache:eng
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Zusammenfassung:A recent survey indicated that many producers view risk in a safety-first context. Traditional methods used to impose safety-first constraints in optimization models have often been difficult to implement. This is particularly true when endogenous decisions affect the distribution of the chance-constrained random variable. This paper presents a method whereby probabilistic constraints can be easily imposed upon finitely discrete random variables. The procedure uses a linear version of the lower partial moment stochastic inequality. The resulting solutions are somewhat conservative but are less so than the results using the previously published mean income-absolute deviation stochastic inequality.
ISSN:0162-1912
1068-5502
2327-8277
2327-8285