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The general issues of the computer system topology were analyzed earlier.
Analysis of heat system topology modification depending on energy prices is conducted.
A procedure, which determines the maximal reliability of series parallel electrical power system topology is proposed.
In this paper, we propose a component-oriented formulation of noninterference that enables compositional security verification driven by system topology.
The concept of homological area is defined and a graph-based method is used to analyse system topology change.
The design of a novel system topology which is centred around a Beckhoff computer, as well as the specifications of the various transducers used, is detailed.
Nevertheless, until now, "which system topology can be maintained and how to manage maintenance more efficiently and effectively" have been open questions.
First, the mechanism analysis and synthesis method based on multibody system dynamics is carried out through the analysis of the system topology and connectivity.
The role of dimensionality (Euclidean vs. fractal), spatial extent, boundary effects and system topology on the efficiency of diffusion-reaction processes involving two simultaneously diffusing reactants is analyzed.
This aspect is important in designing the power system topology, to be more economical and compatible with all the power consumers.
This problem is strictly related to the synthesis of different components into system topology, i.e. with the definition of the optimal system configuration according to specified objectives.
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