2019
DOI: 10.3390/pr7100704
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Sustainable Synthesis Processes for Carbon Dots through Response Surface Methodology and Artificial Neural Network

Abstract: Nowadays, to ensure sustainability of smart materials, it is imperative to eliminate or reduce carbon footprint related to nano material production. The concept of design of experiment to provide an optimal synthesis process, with a desired yield, is indispensable. It is the researcher’s goal to get optimum value for experiments that requires multiple runs and multiple inputs. Herein, is a reliable approach of utilizing design of experiment (DOE) for response surface methodology (RSM). Thus, to optimize a faci… Show more

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Cited by 25 publications
(10 citation statements)
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References 40 publications
(47 reference statements)
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“…Several studies [16,28,[33][34][35][36][37][38] defined t j = 0 to verify that the HNN always leads to a decrease in energy monotonically. Each time neuron was connected with U jk , the value of the synaptic connection will be preserved as a stored pattern in an interconnected vector where U ð1Þ ¼ ½U ð1Þ jk n  n and U ð2Þ ¼ ½U [16,20] that the constraint of synaptic weight matrix U (1) and does not allow self-loop neuron connection U jk . The HNN energy dynamics function and CAM offers a versatile system with high capacity, error tolerance, rapid memory recovery and partial inputs [20,31,32].…”
Section: Mathematical Model Of Discrete Hopfield Neural Networkmentioning
confidence: 99%
See 1 more Smart Citation
“…Several studies [16,28,[33][34][35][36][37][38] defined t j = 0 to verify that the HNN always leads to a decrease in energy monotonically. Each time neuron was connected with U jk , the value of the synaptic connection will be preserved as a stored pattern in an interconnected vector where U ð1Þ ¼ ½U ð1Þ jk n  n and U ð2Þ ¼ ½U [16,20] that the constraint of synaptic weight matrix U (1) and does not allow self-loop neuron connection U jk . The HNN energy dynamics function and CAM offers a versatile system with high capacity, error tolerance, rapid memory recovery and partial inputs [20,31,32].…”
Section: Mathematical Model Of Discrete Hopfield Neural Networkmentioning
confidence: 99%
“…Artificial neural networks (ANNs) belong to the family of the computational architectural-based model, viewed as equivalent to a brains' programming by imitating its design and attempts to mimic nervous system activity through which information is handled by the brains [1]. It consists of many basic processing components (called artificial neurons) that are loosely based on biological neurons.…”
Section: Introductionsmentioning
confidence: 99%
“…Several studies [28,[42][43][44][45][46][47][48] defined 0 j  = to verify that the HNN always leads to a decrease in energy monotonically. Each time neuron was connected with jk U ,the value of the connection will be preserved as a stored pattern in an interconnected vector where [36,60] that the constraint of synaptic weight matrix (1) U and does not allow self-loop neuron connection…”
Section: Discrete Hopfield Neural Networkmentioning
confidence: 99%
“…The ICA consists of two primary phases, the movement of the colonies and imperialist competi tion. The ICA begins by generating a random population of countries in the solution space in the form of a variable vector i S where ( ) [ 1,1] i St− is initiated. Select best countries in the solution space to serve as imperialists and the remaining becomes the colonies of the imperialist.…”
Section: Imperialist Competitive Algorithm (Ica)mentioning
confidence: 99%
“…By original process, we mean processes that are rarely studied from a process point of view and/or that recently emerged. Among these, the process synthesis of carbon dots studied by Pudza et al [16] can be ranked. A part of the article deals with the chemical synthesis of these carbon dots and has little connection with process engineering.…”
Section: Original Processesmentioning
confidence: 99%