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While the thermodynamic efficiency of the BTX process is 0.4%pointt higher than the conventional system, the efficiency of the aliphatic compound mixture process is 0.3% point lower.
As stated above, BASS attempts to obtain the original isolated sources s k (t) present in a certain signal x t), when the mixture process is unknown.
This is in contrast with mixture models, where the mixture process is less intuitive.
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Those of the side-stripper DWC for the aliphatic compound mixture process are 10.2% and 10.8% less, respectively.
The BASS techniques try to recover source signals from a mixture, when the mixing process is unknown.
Two example processes, the BTX and aliphatic compound mixture processes, are utilized for the evaluation.
Four representative noise models, namely, α-stable, generalized Gaussian, Student׳s t and Gaussian mixture processes, are investigated, and the corresponding variance expressions are derived for linear and nonlinear parameter estimation problems at p≥1.
In addition the amount of water trapped in the mixture after the mixing process was determined using thermogravimetric analysis.
To better understand the origin of methane slip, in-depth knowledge of the turbulent mixture formation process is required.
An adjustment to the mixture model process is required for a probe whose distribution can be modeled with a pair of gaussian distributions in multiple ways, or when the components are broken intervals.
Like a chemical peel, this method removes the outermost layer of dead skin from the abraded area; however, instead of a chemical mixture, the process is completed with a flow of fine, medical-grade crystals.
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