2020
DOI: 10.1177/1475090220960562
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Risk-based integrity model for offshore pipelines subjected to impact loads from falling objects

Abstract: Impacts from falling objects can pose a major risk of failure for offshore pipelines. Appropriate protection measures are required to reduce this risk. To achieve this goal, a risk-based integrity model is proposed. Based on the surrogate model of genetic programming, the finite element analysis is cooperated with the probabilistic method to consider nonlinear effects on the failure probability. The required validations are performed to demonstrate the accuracy. The cumulative prospect theory is introduced to … Show more

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Cited by 2 publications
(2 citation statements)
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“…39,42 Collision damage probability and spill volume to chemical tankers have been estimated by a logistic regression metamodel proposed in Sormunen et al 43 Metamodels can help decision-makers to consider risk associated with failure probability. 44 Among various metamodels, Deep Neural Network (DNN), also known as Artificial Neural Network, is a quite promising approach for the current objectives. Papanikolaou 47 proposed a DNN to predict collision damage.…”
Section: Metamodelingmentioning
confidence: 99%
See 1 more Smart Citation
“…39,42 Collision damage probability and spill volume to chemical tankers have been estimated by a logistic regression metamodel proposed in Sormunen et al 43 Metamodels can help decision-makers to consider risk associated with failure probability. 44 Among various metamodels, Deep Neural Network (DNN), also known as Artificial Neural Network, is a quite promising approach for the current objectives. Papanikolaou 47 proposed a DNN to predict collision damage.…”
Section: Metamodelingmentioning
confidence: 99%
“…39,42 Collision damage probability and spill volume to chemical tankers have been estimated by a logistic regression metamodel proposed in Sormunen et al 43 Metamodels can help decision-makers to consider risk associated with failure probability. 44…”
Section: Literature Reviewmentioning
confidence: 99%