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M-IVC grounds on a new co-optimization model which formulates both the NBTI-induced delay degradation and the average standby leakage as the function of duty cycle.
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This paper systematically studies a hybrid predator prey economic model, which is formulated by differential-difference-algebraic equations.
The FE strengths are compared with the available design model which was formulated based on limited research results.
We utilize the cross-entropy as the cost function of part-based feature learning model which is formulated as: {L_{V}}=-sum_{i=1}^{2}{p_{i} text{log} {y_{i}}} (3).
The model is to be included in a population balance model which is formulated such as to facilitate the direct future implementation into a full multifluid CFD model.
The study is performed, employing a dynamic high time-resolution optimal power generation mix model which is formulated as a large-scale linear programming model.
To obtain an optimal design of the IUHSN reflecting the reality, we develop a mathematical model which is formulated as multi-period stochastic mixed integer linear programming concerning uncertain raw material prices.
The analysis is based on a new relatively simple population balance model, which is formulated on a mass basis, and provides first qualitative insights into the nonlinear dynamic behavior of continuous fluidized bed spray granulation processes.
This paper presents a new path-dependent multi-axial fatigue damage model which is formulated based on an incremental form of Moment of Load Path (MLP) on either σ−√βτ stress plane or ε−√βεγ strain plane.
The model, which is formulated to conform with qualitative descriptions of the mechanism of segregation, yields solutions displaying the unusual features of the steady state solids concentration profiles found experimentally and enables appraisals to be made of the relative importance of the contributary mechanisms.
The relationship between the inert environment crack growth rate and crack tip hydrogen uptake is established through the development of an analytical model, which is formulated based on the assumption that oxygen coverage can be quantified from the balance between the rates of new crack tip surface creation and diffusion-limited oxygen transport through the crack channel to this surface.
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