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A review on integration of artificial intelligence into water quality modelling

机译:人工智能融入水质建模研究进展

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摘要

With the development of computing technology, numerical models are often employed to simulate flow and water quality processes in coastal environments. However, the emphasis has conventionally been placed on algorithmic procedures to solve specific problems. These numerical models, being insufficiently user-friendly, lack knowledge transfers in model interpretation. This results in significant constraints on model uses and large gaps between model developers and practitioners. It is a difficult task for novice application users to select an appropriate numerical model. It is desirable to incorporate the existing heuristic knowledge about model manipulation and to furnish intelligent manipulation of calibration parameters. The advancement in artificial intelligence (AI) during the past decade rendered it possible to integrate the technologies into numerical modelling systems in order to bridge the gaps. The objective of this paper is to review the current state-of-the-art of the integration of AI into water quality modelling. Algorithms and methods studied include knowledge-based system, genetic algorithm, artificial neural network, and fuzzy inference system. These techniques can contribute to the integrated model in different aspects and may not be mutually exclusive to one another. Some future directions for further development and their potentials are explored and presented.
机译:随着计算技术的发展,通常采用数值模型来模拟沿海环境中的流量和水质过程。然而,常规上将重点放在解决特定问题的算法过程上。这些数值模型不够友好,在模型解释中缺乏知识转移。这导致对模型使用的显着限制以及模型开发人员和从业人员之间的巨大差距。对于新手应用程序用户来说,选择合适的数值模型是一项艰巨的任务。期望结合关于模型操纵的现有启发式知识并提供对校准参数的智能操纵。在过去十年中,人工智能(AI)的发展使将这些技术集成到数值建模系统中以弥合差距成为可能。本文的目的是回顾当前将AI集成到水质建模中的最新技术。研究的算法和方法包括基于知识的系统,遗传算法,人工神经网络和模糊推理系统。这些技术可以在不同方面为集成模型做出贡献,并且可能不会相互排斥。探索并提出了一些进一步发展的未来方向及其潜力。

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