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Using GeTLS EXIN learning for the Life Cycle Inventory problem

机译:使用Getls Exin学习生命周期库存问题

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Life cycle assessment (LCA) is a method used to quantify the environmental impacts of a product, process, or service across its whole life cycle. One of the problems occurring when the system at hand involves processes delivering more than one valuable output {multi-functional processes) is the allotment of resources consumption and environmental burdens in the correct proportion amongst the products. Mathematically, this is represented by the solution of an over-determined system of linear equations. In the matrix method for the solution of the inventory problem, the system is solved by resorting to mathematical tricks to transform its rectangular coefficients matrix into a square and invertible one, inevitably introducing uncertainty in the solution. The paper describes the application of an iterative algorithm (called GeTLS) for the implementation of Total Least Square (TLS) regression to solve this kind of over-determined system directly in its rectangular form. The solutions obtained with the iterative method are compared with the direct TLS solutions obtained using Singular Value Decomposition (SVD) and with the classical Ordinary Least Square (OLS) solutions. The results obtained showed that in most cases the iterative method had a higher stability with respect to perturbations of the coefficients matrix.
机译:生命周期评估(LCA)是一种方法,用于量化其整个生命周期的产品,过程或服务的环境影响。当系统的系统涉及提供多于一个有价值的输出{多功能流程的过程时发生的问题是资源消费和环境负担在产品之间的正确比例分配。在数学上,这是由确定的线性方程的解决方案的解决方案表示。在用于解决库存问题的矩阵方法中,通过求助于数学技巧来解决其矩形系数矩阵将其矩形系数矩阵转换为正方形和可逆的,不可避免地引入解决方案中的不确定性。本文介绍了迭代算法(称为GETL)的应用,以实现总量最小平方(TLS)回归,以直接以矩形形式求解这种过度确定的系统。将用迭代方法获得的溶液与使用奇异值分解(SVD)获得的直接TLS溶液进行比较,并且具有经典普通的最小二乘(OLS)溶液。得到的结果表明,在大多数情况下,迭代方法相对于系数矩阵的扰动具有更高的稳定性。

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