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1 – 10 of 26
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Book part
Publication date: 25 July 2011

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Genetically Modified Food and Global Welfare
Type: Book
ISBN: 978-0-85724-758-2

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Article
Publication date: 6 June 2016

Rosa Caiazza, Tiziana Volpe and John L Stanton

826

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British Food Journal, vol. 118 no. 6
Type: Research Article
ISSN: 0007-070X

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Book part
Publication date: 18 July 2022

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Big Data Analytics in the Insurance Market
Type: Book
ISBN: 978-1-80262-638-4

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Book part
Publication date: 24 January 2022

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Insurance and Risk Management for Disruptions in Social, Economic and Environmental Systems: Decision and Control Allocations within New Domains of Risk
Type: Book
ISBN: 978-1-80117-140-3

Open Access
Article
Publication date: 26 July 2012

J. Anke M. van Eekelen, Justine A. Ellis, Craig E. Pennell, Richard Saffery, Eugen Mattes, Jeff Craig and Craig A. Olsson

Genetic risk for depressive disorders is poorly understood despite consistent suggestions of a high heritable component. Most genetic studies have focused on risk associated with…

Abstract

Genetic risk for depressive disorders is poorly understood despite consistent suggestions of a high heritable component. Most genetic studies have focused on risk associated with single variants, a strategy which has so far only yielded small (often non-replicable) risks for depressive disorders. In this paper we argue that more substantial risks are likely to emerge from genetic variants acting in synergy within and across larger neurobiological systems (polygenic risk factors). We show how knowledge of major integrated neurobiological systems provides a robust basis for defining and testing theoretically defensible polygenic risk factors. We do this by describing the architecture of the overall stress response. Maladaptation via impaired stress responsiveness is central to the aetiology of depression and anxiety and provides a framework for a systems biology approach to candidate gene selection. We propose principles for identifying genes and gene networks within the neurosystems involved in the stress response and for defining polygenic risk factors based on the neurobiology of stress-related behaviour. We conclude that knowledge of the neurobiology of the stress response system is likely to play a central role in future efforts to improve genetic prediction of depression and related disorders.

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Mental Illness, vol. 4 no. 2
Type: Research Article
ISSN: 2036-7465

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Open Access
Article
Publication date: 28 July 2020

Harleen Kaur and Vinita Kumari

Diabetes is a major metabolic disorder which can affect entire body system adversely. Undiagnosed diabetes can increase the risk of cardiac stroke, diabetic nephropathy and other…

11349

Abstract

Diabetes is a major metabolic disorder which can affect entire body system adversely. Undiagnosed diabetes can increase the risk of cardiac stroke, diabetic nephropathy and other disorders. All over the world millions of people are affected by this disease. Early detection of diabetes is very important to maintain a healthy life. This disease is a reason of global concern as the cases of diabetes are rising rapidly. Machine learning (ML) is a computational method for automatic learning from experience and improves the performance to make more accurate predictions. In the current research we have utilized machine learning technique in Pima Indian diabetes dataset to develop trends and detect patterns with risk factors using R data manipulation tool. To classify the patients into diabetic and non-diabetic we have developed and analyzed five different predictive models using R data manipulation tool. For this purpose we used supervised machine learning algorithms namely linear kernel support vector machine (SVM-linear), radial basis function (RBF) kernel support vector machine, k-nearest neighbour (k-NN), artificial neural network (ANN) and multifactor dimensionality reduction (MDR).

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Article
Publication date: 1 February 2002

66

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Kybernetes, vol. 31 no. 1
Type: Research Article
ISSN: 0368-492X

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Article
Publication date: 13 October 2021

Mitchell N. Sarkies, Joanna Moullin, Teralynn Ludwick and Suzanne Robinson

325

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Journal of Health Organization and Management, vol. 35 no. 7
Type: Research Article
ISSN: 1477-7266

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Book part
Publication date: 11 November 2019

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Man-Eating Monsters
Type: Book
ISBN: 978-1-78769-528-3

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196

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Library Hi Tech News, vol. 18 no. 9
Type: Research Article
ISSN: 0741-9058

1 – 10 of 26