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Prediction of outcome of construction dispute claims using multilayer perceptron neural network model

机译:基于多层感知器神经网络模型的施工纠纷索赔结果预测

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The occurrence of disputes in Indian construction contracts results in damaging the relationship between the parties apart from the time and cost overruns. However, if the parties to a dispute can predict the outcome of the dispute with some certainty, they are more likely to settle the matter out of court resulting in the avoidance of expenses and aggravation associated with adjudication. Dispute resolution process is mainly based upon the facts about the case like conditions of the contracts; actual situations on site; documents presented during arbitrational proceedings, etc., which are termed as 'intrinsic factors' in this research. These facts and evidences being intrinsic to the cases have been explored by researchers to develop dispute resolution mechanisms. This study focuses on determining the intrinsic factors for construction disputes related to claims raised due to variation from 72 arbitration awards through Case Study approach and furthermore statistically proving their importance in arbitral decision making by seeking professional cognizance through a questionnaire survey. It also further asserts the feasibility of the multilayer perceptron neural network approach based on the intrinsic factors existing in the construction dispute case for predicting the outcome of a dispute. Data from 204 variation claims from the awards is employed for developing the model. A three-layer multilayer perceptron neural network was appropriate in building this model, which has been trained, validated, and tested. The tool so developed would result in dispute avoidance, to some extent, and would reduce the pressure on the Indian judiciary. (C) 2015 Elsevier Ltd. APM and IPMA. All rights reserved.
机译:印度建筑合同中发生纠纷会导致双方之间的关系受损,除了时间和成本超支之外。但是,如果争端各方可以确定地预测争端的结果,则他们更有可能在庭外解决此事,从而避免了因审判而引起的费用和加重负担。解决争端的过程主要是基于诸如合同条件之类的事实。现场实际情况;在仲裁程序等期间提出的文件,在本研究中被称为“内在因素”。研究人员已探究了案件固有的这些事实和证据,以发展争议解决机制。这项研究的重点是通过案例研究方法确定与因72项仲裁裁决而产生的索偿有关的施工纠纷的内在因素,并通过问卷调查寻求专业人士的统计证明其在仲裁决策中的重要性。它还断言了基于构造纠纷案例中存在的内在因素的多层感知器神经网络方法用于预测纠纷结果的可行性。来自奖项的204个变更声明的数据被用于开发模型。三层多层感知器神经网络适用于构建该模型,该模型已经过训练,验证和测试。这样开发的工具将在某种程度上避免争端,并减轻印度司法机构的压力。 (C)2015 Elsevier Ltd. APM和IPMA。版权所有。

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