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A perspective on use of neural-net computing in training simulator design

机译:关于培养模拟器设计中神经网络计算的透视

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The authors explore and demonstrate the feasibility of combined artificial intelligence/neural-net methodology for carrying out dynamic power system analysis in real-time. This methodology will be capable of characterizing the near term transient stability of the system, as well as perform mid-term and long term dynamic security analyses. In the transient stability analysis, the authors are principally concerned with a question whether the system can return to the steady state. In the mid-term and long-term-security analysis, they are also concerned with a manner in which the final steady state is reached, whether system performance constraints are violated on the way and whether further protective actions might be triggered unexpectedly with undesired actions.
机译:作者探讨并证明了人工智能/神经净方法的可行性实时进行动态电力系统分析。该方法能够表征系统的近期暂停瞬态稳定性,以及执行中期和长期动态安全分析。在瞬态稳定性分析中,作者主要关注一个问题,系统是否可以返回稳定状态。在中期和长期安全分析中,它们也涉及到达到最终稳态的方式,是否违反了系统性能约束以及是否可能出乎意料地触发了系统性能约束以及进一步保护行动是否因不期望的行为而触发。

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