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Titlebook: Design of Embedded Control Systems; Marian Andrzej Adamski,Andrei Karatkevich,Marek We Book 2005 Springer-Verlag US 2005 IC.Programmable L

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Friction Stir Welding and Processing XIing Petri nets and HDL languages. A very important stage of digital circuits design is verification, because it saves time and money. Simulation is the simplest method of verification. In the literature a lot of approaches to circuit simulation are described, but a new technology gives new possibili
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The Minerals, Metals & Materials Seriesr comparison. One of them is exact; i.e., the number of coding variables obtained by this algorithm is minimal. It is based on covering a nonparallelism graph of partial states by complete bipartite subgraphs. Two other algorithms are heuristic. One of the heuristic algorithms uses the same approach
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Yuri Hovanski,Yutaka Sato,Nilesh Kumaring minimal number of coding variables and excluding critical races during automaton operation. Requirements imposing on the partial states codes to eliminate the in-fluence of races are formulated. An exact algorithm to find a minimal solution of the problem of race-free state assignment for parall
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Yuri Hovanski,Yutaka Sato,Nilesh Kumareristics of reactive Petri nets are briefly presented. One graphical hierarchical structuring mechanism named . decomposition is presented. This mechanism relies on the usage of macronodes, which have subnets associated with them and can be seen as a generalization of widely known mechanisms availab
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Graphite and Carbide Friction and Wear, a designed FSM to the selected FPGA. It compares several methods of encoding of the FSM internal states with respect to the space (the number of CLB blocks) and time characteristics. It evaluates the FSM benchmarks and seeks for such qualitative properties to choose the best method for encoding bef
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Verification of Control Paths Using Petri NetsThis work introduces a hardware design methodology based on Petri nets that is applied to the verification of digital control paths. The main purpose is to design control paths that are modeled and verified formally by means of Petri net techniques.
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