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Residential buildings conceptual cost estimates with the use of support vector regression

机译:使用支持向量回归的住宅建筑概念成本估算

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Cost analyses, and the conceptual cost estimates among them, are of the key importance for the construction projects successes. Implementation of neural networks or machine learning methods provides broad possibilities for this specific type of cost. The aim of the paper is to present some results of the studies on the use of support vector regression as a machine learning tool for conceptual cost estimates of residential buildings. Results for three models based on support vector regression and radial basis kernel functions are introduced.
机译:成本分析以及其中的概念性成本估算对于建设项目的成功至关重要。神经网络或机器学习方法的实现为这种特定类型的成本提供了广泛的可能性。本文的目的是提出一些关于使用支持向量回归作为住宅建筑物概念成本估算的机器学习工具的研究结果。介绍了基于支持向量回归和径向基核函数的三个模型的结果。

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