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The purpose of the Journal of Intelligent & Fuzzy Systems: Applications in Engineering and Technology is to foster advancements of knowledge and help disseminate results concerning recent applications and case studies in the areas of fuzzy logic, intelligent systems, and web-based applications among working professionals and professionals in education and research, covering a broad cross-section of technical disciplines.
The journal will publish original articles on current and potential applications, case studies, and education in intelligent systems, fuzzy systems, and web-based systems for engineering and other technical fields in science and technology. The journal focuses on the disciplines of computer science, electrical engineering, manufacturing engineering, industrial engineering, chemical engineering, mechanical engineering, civil engineering, engineering management, bioengineering, and biomedical engineering. The scope of the journal also includes developing technologies in mathematics, operations research, technology management, the hard and soft sciences, and technical, social and environmental issues.
Authors: Fang, HaiFeng | Cao, Jin | Cai, LiHua | Zhou, Ta | Wang, MingQiang
Article Type: Research Article
Abstract: Both classification rate and accuracy are crucial for the recyclable PET bottles, and the existing combination methods of SVM all simply use SVM as the unit classifier, ignoring the improvement of SVM’s classification performance in the training process of deep learning. A linear multi hierarchical deep structure based on Support Vector Machine (SVM) is proposed to cover this problem. A novel definition of the input matrix in each layer enhances the optimization of Lagrange multipliers in Sequential Minimal Optimization (SMO) algorithm, thus the datapoint in maximum interval of SVM hyperplane could be recognized, improving the classification performance of SVM classifier …in this layer. The loss function defined in this paper could control the depth of Linear Multi Hierarchical SVM (LMHSVM), the generalization parameters are added in the loss function and the input matrix to enhance the generalization performance of LMHSVM. The process of creating Bottle dataset by Histogram of Oriented Gradient (HOG) and Principal Component Analysis (PCA) is introduced meanwhile, reducing the data size of bottles. Experiments are conducted on LMHSVM and multiple typical classification algorithms with Bottle dataset and UCI datasets, the results indicated that LMHSVM has excellent classification performances than FNN classifier, LIBSVM (Gaussian) and GFS-AdaBoost-C in KEEL. Show more
Keywords: Recycling plastic bottles, deep learning structure, SVM, Linear multi hierarchical, extract dataset
DOI: 10.3233/JIFS-202729
Citation: Journal of Intelligent & Fuzzy Systems, vol. 40, no. 6, pp. 11509-11522, 2021
Authors: Fan, Jianping | Yan, Feng | Wu, Meiqin
Article Type: Research Article
Abstract: In this article, the gained and lost dominance score (GLDS) method is extended into the 2-tuple linguistic neutrosophic environment, which also combined the power aggregation operator with the evaluation information to deal with the multi-attribute group decision-making problem. Since the power aggregation operator can eliminate the effects of extreme evaluating data from some experts with prejudice, this paper further proposes the 2-tuple linguistic neutrosophic numbers power-weighted average operator and 2-tuple linguistic neutrosophic numbers power-weighted geometric operator to aggregate the decision makers’ evaluation. Moreover, a model based on the score function and distance measure of 2-tuple linguistic neutrosophic numbers (2TLNNs) is …developed to get the criteria weights. Combing the GLDS method with 2-tuple linguistic neutrosophic numbers and developing a 2TLNN-GLDS method for multiple attribute group decision making, it can express complex fuzzy information more conveniently in a qualitative environment and also consider the dominance relations between alternatives which can get more effective results in real decision-making problems. Finally, an applicable example of selecting the optimal low-carbon logistics park site is given. The comparing results show that the proposed method outperforms the other existing methods, as it can get more reasonable results than others and it is more convenient and effective to express uncertain information in solving realistic decision-making problems. Show more
Keywords: Multiple attribute group decision making, 2-tuple linguistic neutrosophic numbers, power average operator, power geometric operator, the gained and lost dominance score method
DOI: 10.3233/JIFS-202748
Citation: Journal of Intelligent & Fuzzy Systems, vol. 40, no. 6, pp. 11523-11538, 2021
Authors: Zhang, Yongjie | Cao, Kang | Liang, Ke | Zeng, Yongqi
Article Type: Research Article
Abstract: Commonality, a typical commercial feature of serialized civil aircraft study and development, refers to a series of methods of reusing and sharing assets, which were developed based on broad similarity. The common design of serialized civil aircraft is capable of maximally saving R&D, production, operation, and disposal. To maximize the total benefits of manufacturers and operators, the common design of serialized civil aircrafts primarily exploits the commercial experience of serialized products in other fields (e.g., automobiles and mobile phones), whereas a scientific index system and quantitative evaluation model has not been formed. Accordingly, this study proposes a new civil aircraft …commonality index evaluation model in accordance with fuzzy set theory and methods. The model follows two branches, i.e., attribute commonality and structural commonality, to develop a multi-level civil aircraft commonality index system. The proposed model can split the commonality into six commonality sub-intervals and build the corresponding standard fuzzy set with the characteristic attribute parameters of the civil aircraft as the elements. Next, based on considerable civil aircraft sample data, a fuzzy test is designed to yield the membership function of the fuzzy set. Thus, a model of evaluating civil aircraft commonality is constructed, taking the characteristic parameters of the civil aircraft to be evaluated as input, and selecting the degree of commonality of each level as output. Lastly, this study employs the evaluation model to evaluate the commonality of Boeing 757-200 with other civil aircrafts. Furthermore, the evaluated results well explain the actual situation, which verifies the effectiveness and practicability of the proposed model. Show more
Keywords: Cost benefit analysis, serialized civil aircraft, commonality index, fuzzy set, membership function
DOI: 10.3233/JIFS-202749
Citation: Journal of Intelligent & Fuzzy Systems, vol. 40, no. 6, pp. 11539-11558, 2021
Authors: Li, Chunhua | Xu, Baogen | Huang, Huawei
Article Type: Research Article
Abstract: In this paper, the notion of a fuzzy *–ideal of a semigroup is introduced by exploiting generalized Green’s relations L * and R * , and some characterizations of fuzzy *–ideals on an arbitrary semigroup are obtained. Our main purpose is to establish the relationship between fuzzy *–ideals and abundance for an arbitrary semigroup. As an application of our results, we also give some new necessary and sufficient conditions for an arbitrary semigroup to be regular and inverse, respectively.
Keywords: fuzzy*–ideals, abundant semigroups, abundance, 20M20
DOI: 10.3233/JIFS-202759
Citation: Journal of Intelligent & Fuzzy Systems, vol. 40, no. 6, pp. 11559-11566, 2021
Authors: Wu, Yaoqiang
Article Type: Research Article
Abstract: In this paper, we introduce the concept of weak partial-quasi k-metrics, which generalizes both k-metric and weak metric. Also, we present some examples to support our results. Furthermore, we obtain some fixed point theorems in weak partial-quasi k-metric spaces.
Keywords: weak metric, k-metric, partial-quasi k-metric, weak partial-quasi k-metric, fixed point theorem
DOI: 10.3233/JIFS-202768
Citation: Journal of Intelligent & Fuzzy Systems, vol. 40, no. 6, pp. 11567-11575, 2021
Authors: Luo, D. | Zhang, G.Z.
Article Type: Research Article
Abstract: The purpose of this paper is to solve the prediction problem of nonlinear sequences with multiperiodic features, and a multiperiod grey prediction model based on grey theory and Fourier series is established. For nonlinear sequences with both trend and periodic features, the empirical mode decomposition method is used to decompose the sequences into several periodic terms and a trend term; then, a grey model is used to fit the trend term, and the Fourier series method is used to fit the periodic terms. Finally, the optimization parameters of the model are solved with the objective of obtaining a minimum mean …square error. The novel model is applied to research on the loss rate of agricultural droughts in Henan Province. The average absolute error and root mean square error of the empirical analysis are 0.3960 and 0.5086, respectively. The predicted results show that the novel model can effectively fit the loss rate sequence. Compared with other models, the novel model has higher prediction accuracy and is suitable for the prediction of multiperiod sequences. Show more
Keywords: Nonlinear sequences, multiperiod, grey model, empirical mode decomposition, Fourier series
DOI: 10.3233/JIFS-202775
Citation: Journal of Intelligent & Fuzzy Systems, vol. 40, no. 6, pp. 11577-11586, 2021
Authors: Yang, Xu | Guo, Yu | Liu, Qiang | Zhang, Deming
Article Type: Research Article
Abstract: Effective enterprise quality immune response can grasp the “pathogenesis”, “clinical manifestations” and “treatment” of enterprise quality dissident factors, which is the goal pursued continuously by enterprise quality management. Drawing on the theory of enterprise immunity, construct the evaluation index system of enterprise quality immune response effect, and use the evaluation model of interval binary semantic grey target decision based on two-dimensional association sampling (EMIBSGTD-TAS) to evaluate the quality immune response effect of the selected target company. The boundary and internal distribution situation weaken the influence of the extreme value of the index on the decision result, and introduce the interval …binary semantic set value statistical method to determine the index weight, reduce the information loss and fuzzy error. It can be seen from the evaluation results that the model has practicability and feasibility, and provides a new idea for the evaluation of the effect of enterprise quality immune response. Show more
Keywords: Quality Immune Response, Two-dimensional Association Sampling (TAS), Interval Binary Semantics (IBS), Gray Target Decision (GTD)
DOI: 10.3233/JIFS-202794
Citation: Journal of Intelligent & Fuzzy Systems, vol. 40, no. 6, pp. 11587-11606, 2021
Authors: Ya-Na, Wang | Guo-Hua, Zhou
Article Type: Research Article
Abstract: The aim of this paper is to investigate a profit-maximization firm how to determine the composition and prices of multiple bundles. Bundles are sets of components that must meet some technical constraints; furthermore, customers differ in their quality valuations and choose the bundle that maximizes their utility. A mixed integer non-linear program is proposed to solve this problem. First, a two-step approach is employed to obtain the firm’s optimal decision. The result indicates that when the firm faces deterministic demand, the optimal set of bundles it offers is independent of the distribution of customer valuations and does not contain any …dominated bundle. In addition, dominated components cannot be used to construct the optimal bundles. Second, the impact of demand uncertainty on the firm’s performance is explored. The results suggest that disregarding the demand risk may result in broader assortment and suboptimal prices. Finally, numerical experiments and sensitive analysis are conducted to provide managerial insights for the pricing and composition of multiple bundles. Show more
Keywords: Vertical differentiation, uncertain demand, pricing, composition of bundle, consumer choice model
DOI: 10.3233/JIFS-202799
Citation: Journal of Intelligent & Fuzzy Systems, vol. 40, no. 6, pp. 11607-11623, 2021
Authors: Norouzi, Ashraf | hajiagha, Hossein Razavi
Article Type: Research Article
Abstract: Multi criteria decision-making problems are usually encounter implicit, vague and uncertain data. Interval type-2 fuzzy sets (IT2FS) are widely used to develop various MCDM techniques especially for cases with uncertain linguistic approximation. However, there are few researches that extend IT2FS-based MCDM techniques into qualitative and group decision-making environment. The present study aims to adopt a combination of hesitant and interval type-2 fuzzy sets to develop an extension of Best-Worst method (BWM). The proposed approach provides a flexible and convenient way to depict the experts’ hesitant opinions especially in group decision-making context through a straightforward procedure. The proposed approach is called …IT2HF-BWM. Some numerical case studies from literature have been used to provide illustrations about the feasibility and effectiveness of our proposed approach. Besides, a comparative analysis with an interval type-2 fuzzy AHP is carried out to evaluate the results of our proposed approach. In each case, the consistency ratio was calculated to determine the reliability of results. The findings imply that the proposed approach not only provides acceptable results but also outperforms the traditional BWM and its type-1 fuzzy extension. Show more
Keywords: Best-worst method (BWM), hesitant fuzzy linguistic term set, hesitant interval type-2 Fuzzy BWM, interval type-2 fuzzy set, multi-attribute decision-making, qualitative decision-making
DOI: 10.3233/JIFS-202801
Citation: Journal of Intelligent & Fuzzy Systems, vol. 40, no. 6, pp. 11625-11652, 2021
Authors: Nguyen, Trang T.D. | Nguyen, Loan T.T. | Nguyen, Anh | Yun, Unil | Vo, Bay
Article Type: Research Article
Abstract: Spatial clustering is one of the main techniques for spatial data mining and spatial data analysis. However, existing spatial clustering methods primarily focus on points distributed in planar space with the Euclidean distance measurement. Recently, NS-DBSCAN has been developed to perform clustering of spatial point events in Network Space based on a well-known clustering algorithm, named Density-Based Spatial Clustering of Applications with Noise (DBSCAN). The NS-DBSCAN algorithm has efficiently solved the problem of clustering network constrained spatial points. When compared to the NC_DT (Network-Constraint Delaunay Triangulation) clustering algorithm, the NS-DBSCAN algorithm efficiently solves the problem of clustering network constrained spatial …points by visualizing the intrinsic clustering structure of spatial data by constructing density ordering charts. However, the main drawback of this algorithm is when the data are processed, objects that are not specifically categorized into types of clusters cannot be removed, which is undeniably a waste of time, particularly when the dataset is large. In an attempt to have this algorithm work with great efficiency, we thus recommend removing edges that are longer than the threshold and eliminating low-density points from the density ordering table when forming clusters and also take other effective techniques into consideration. In this paper, we develop a theorem to determine the maximum length of an edge in a road segment. Based on this theorem, an algorithm is proposed to greatly improve the performance of the density-based clustering algorithm in network space (NS-DBSCAN). Experiments using our proposed algorithm carried out in collaboration with Ho Chi Minh City, Vietnam yield the same results but shows an advantage of it over NS-DBSCAN in execution time. Show more
Keywords: Spatial data mining, spatial data clustering, NS-DBSCAN, network spatial analysis
DOI: 10.3233/JIFS-202806
Citation: Journal of Intelligent & Fuzzy Systems, vol. 40, no. 6, pp. 11653-11670, 2021
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