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141.
In this paper, we propose a cluster-MDS model for two-way one-mode continuous rating dissimilarity data. The model aims at
partitioning the objects into classes and simultaneously representing the cluster centers in a low-dimensional space. Under
the normal distribution assumption, a latent class model is developed in terms of the set of dissimilarities in a maximum
likelihood framework. In each iteration, the probability that a dissimilarity belongs to each of the blocks conforming to
a partition of the original dissimilarity matrix, and the rest of parameters, are estimated in a simulated annealing based
algorithm. A model selection strategy is used to test the number of latent classes and the dimensionality of the problem.
Both simulated and classical dissimilarity data are analyzed to illustrate the model. 相似文献
142.
The CHIC Model: A Global Model for Coupled Binary Data 总被引:1,自引:0,他引:1
Often problems result in the collection of coupled data, which consist of different N-way N-mode data blocks that have one or more modes in common. To reveal the structure underlying such data, an integrated modeling
strategy, with a single set of parameters for the common mode(s), that is estimated based on the information in all data blocks,
may be most appropriate. Such a strategy implies a global model, consisting of different N-way N-mode submodels, and a global loss function that is a (weighted) sum of the partial loss functions associated with the different
submodels. In this paper, such a global model for an integrated analysis of a three-way three-mode binary data array and a
two-way two-mode binary data matrix that have one mode in common is presented. A simulated annealing algorithm to estimate
the model parameters is described and evaluated in a simulation study. An application of the model to real psychological data
is discussed.
T. Wilderjans is a Research Assistant of the Fund for Scientific Research—Flanders (Belgium). The research reported in this
paper was partially supported by the Research Council of K.U. Leuven (GOA/2005/04). We are grateful to Kristof Vansteelandt
for providing us with an interesting data set. We also thank three anonymous reviewers for their useful comments. 相似文献
143.
The clustering of hyperspectral images is a challenging task because of the high dimensionality of the data. Sparse subspace clustering (SSC) algorithm is one of the popularly used clustering algorithm for high dimensionality data. However, SSC has not fully used the spectral and spatial information during similarity matrix construction based on single sparse representation coefficient for hyperspectral Imagery (HSI) clustering. In this paper, two novel similarity matrix construction methods named as Cosine-Euclidean similarity matrix (abbreviated as CE) and Cosine-Euclidean dynamic weighting similarity matrix (abbreviated as CEDW) are proposed for HSI clustering. They can combine the high spectral information and rich spatial information. Firstly, CE utilizes the cosine similarity of spectral information based on overall sparse representation vectors and classical Euclidean distance of spatial information to construct a novel similarity matrix. Secondly, inheriting CE merits, dynamic weighting adjustment method is introduced to CEDW for some external influence factors to the HSI information. Several experiments on HSI demonstrated that the proposed algorithms are effective for HSI clustering. 相似文献
144.
The Local Minima Problem in Hierarchical Classes Analysis: An Evaluation of a Simulated Annealing Algorithm and Various Multistart Procedures 总被引:2,自引:1,他引:1
Hierarchical classes models are quasi-order retaining Boolean decomposition models for N-way N-mode binary data. To fit these models to data, rationally started alternating least squares (or, equivalently, alternating
least absolute deviations) algorithms have been proposed. Extensive simulation studies showed that these algorithms succeed
quite well in recovering the underlying truth but frequently end in a local minimum. In this paper we evaluate whether or
not this local minimum problem can be mitigated by means of two common strategies for avoiding local minima in combinatorial
data analysis: simulated annealing (SA) and use of a multistart procedure. In particular, we propose a generic SA algorithm
for hierarchical classes analysis and three different types of random starts. The effectiveness of the SA algorithm and the
random starts is evaluated by reanalyzing data sets of previous simulation studies. The reported results support the use of
the proposed SA algorithm in combination with a random multistart procedure, regardless of the properties of the data set
under study.
Eva Ceulemans is a post-doctoral fellow of the Fund for Scientific Research Flanders (Belgium). Iwin Leenen is a post-doctoral
researcher of the Spanish Ministerio de Educación y Ciencia (programa Ramón y Cajal). The research reported in this paper
was partially supported by the Research Council of K.U. Leuven (GOA/05/04). 相似文献
145.
Hierarchical Classes Modeling of Rating Data 总被引:2,自引:1,他引:1
Hierarchical classes (HICLAS) models constitute a distinct family of structural models for N-way N-mode data. All members of the family include N simultaneous and linked classifications of the elements of the N modes implied by the data; those classifications are organized in terms of hierarchical, if–then-type relations. Moreover,
the models are accompanied by comprehensive, insightful graphical representations. Up to now, the hierarchical classes family
has been limited to dichotomous or dichotomized data. In the present paper we propose a novel extension of the family to two-way
two-mode rating data (HICLAS-R). The HICLAS-R model preserves the representation of simultaneous and linked classifications
as well as of generalized if–then-type relations, and keeps being accompanied by a comprehensive graphical representation.
It is shown to bear interesting relationships with classical real-valued two-way component analysis and with methods of optimal
scaling.
The research reported in this paper was supported by the Research Fund of the University of Leuven (GOA/00/02 and GOA/05/04)
and by the Fund for Scientific Research-Flanders (project G.0146.06). Eva Ceulemans is a Post-doctoral Researcher supported
by the Fund for Scientific Research, Flanders. The authors gratefully acknowledge the help of Gert Quintiens and Kaatje Bollaerts
in collecting the data used in Section 4 and of Jan Schepers in additional analyses of these data. 相似文献
146.
This paper presents a new theory of vagueness, which is designed to retain the virtues of the fuzzy theory, while avoiding the problem of higher-order vagueness. The theory presented here accommodates the idea that for any statement S
1 to the effect that Bob is bald is x true, for x in [0,1], there should be a further statement S
2 which tells us how true S
1 is, and so on – that is, it accommodates higher-order vagueness – without resorting to the claim that the metalanguage in which the semantics of vagueness is presented is itself vague, and without requiring us to abandon the idea that the logic – as opposed to the semantics – of vague discourse is classical. I model the extension of a vague predicate P as a blurry set, this being a function which assigns a degree of membership or degree function to each object o, where a degree function in turn assigns an element of [0,1] to each finite sequence of elements of [0,1]. The idea is that the assignment to the sequence 0.3,0.2, for example, represents the degree to which it is true to say that it is 0.2 true that o is P to degree 0.3. The philosophical merits of my theory are discussed in detail, and the theory is compared with other extensions and generalisations of fuzzy logic in the literature. 相似文献
147.
148.
149.
Mathematical Fuzzy Control. A Survey of Some Recent Results 总被引:1,自引:0,他引:1
150.
A Generalized Concept Lattice 总被引:2,自引:0,他引:2