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Scientific Information Database (SID) - Trusted Source for Research and Academic Resources
Scientific Information Database (SID) - Trusted Source for Research and Academic Resources
Scientific Information Database (SID) - Trusted Source for Research and Academic Resources
Scientific Information Database (SID) - Trusted Source for Research and Academic Resources
Scientific Information Database (SID) - Trusted Source for Research and Academic Resources
Scientific Information Database (SID) - Trusted Source for Research and Academic Resources
Scientific Information Database (SID) - Trusted Source for Research and Academic Resources
Scientific Information Database (SID) - Trusted Source for Research and Academic Resources
Issue Info: 
  • Year: 

    2007
  • Volume: 

    4
  • Issue: 

    1
  • Pages: 

    89-101
Measures: 
  • Citations: 

    1
  • Views: 

    446
  • Downloads: 

    258
Abstract: 

The object of this paper is to introduce the notion of intuitionistic fuzzy continuous mappings and intuitionistic fuzzy bounded linear operators from one intuitionistic fuzzy n-normed linear space to another. Relation between intuitionistic fuzzy continuity and intuitionistic fuzzy bounded linear operators are studied and some interesting results are obtained.

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Author(s): 

پدریکز و.

Issue Info: 
  • Year: 

    1386
  • Volume: 

    4
  • Issue: 

    1
  • Pages: 

    1-19
Measures: 
  • Citations: 

    0
  • Views: 

    507
  • Downloads: 

    0
Keywords: 
Abstract: 

در این مقاله به معرفی و بررسی مفهوم مدلسازی توزیع شده فازی می پردازیم. مدلسازی فازی تا کنون اساسا از یک طبیعت متمرکز برخوردار بوده و براساس تکیه بر یک مجموعه داده استوار است، هر چند بر خلاف این روش، الگوی مدلسازی شده و تعاونی با مدل های پراکنده ای که به صورت کاملا مرتبط طراحی شده اند سروکار دارد. به طور خلاصه، مدلسازی توزیع شده، یافته های مدل های فازی مبتنی بر داده های موضعی را یک جا جمع بندی می کند که در آن این مدل های مجزا به نحوی کاملا مرتبط و هماهنگ طراحی می شوند. با توجه به این حقیقت که مدل های فازی به طور ذاتی ساختارهایی هستند که بر پایه واحدهای اطلاعاتی (مجموعه های فازی) بنا می شوند، این روش کلا یک فرایند بسیار عمومی را پیش رو قرار می دهد.در طراحی سامانه های توزیع شده کلا دو مساله اصلی مد نظر هستند که یکی ایجاد واحدهای اطلاعاتی براساس اطلاعات موضعی و ارتباط بین آنهاست و دیگری ساخت و طراحی مدل های موضعی است که باید براساس ارتباط های از پیش طراحی شده مرتبط شوند.در این مقاله ما به بررسی مفاهیم اصلی این روش پرداخته و همچنین جزییات توسعه چنین سامانه هایی را بررسی خواهیم کرد، که در آن تفکیک اطلاعات به واحدهای مجزا به وسیله دسته بندی فازی صورت می پذیرد و مدل های محلی به صورت سامانه هایی با بانک قوانین ظاهر می شدند.همچنین در این مقاله به بررسی روش هایی برای پیاده سازی ارتباط دو نوع از دسته های داده افقی و عمودی خواهیم پرداخت. همچنین ارتباط بین داده هایی را که در دو سطح مختلف (از لحاظ رده بندی) قرار می گیرند را نیز بررسی خواهیم کرد و نشان می دهیم که چگونه الگوریتم های متفاوت جهت ارتباط به طراحی مدل های فازی که براساس واحدهای فازی که در سطوح بالاتری، نظیر مجموعه های فازی نوع دوم تعریف شده اند، منجر می شوند.

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Author(s): 

PEDRYCZ W. |

Issue Info: 
  • Year: 

    2007
  • Volume: 

    4
  • Issue: 

    1
  • Pages: 

    1-19
Measures: 
  • Citations: 

    0
  • Views: 

    1717
  • Downloads: 

    361
Abstract: 

In this study, we introduce and study a concept of distributed fuzzy modeling. Fuzzy modeling encountered so far is predominantly of a centralized nature by being focused on the use of a single data set. In contrast to this style of modeling, the proposed paradigm of distributed and collaborative modeling is concerned with distributed models which are constructed in a highly collaborative fashion. In a nutshell, distributed models reconcile and aggregate findings of the individual fuzzy models produced on a basis of local data sets. The individual models are formed in a highly synergistic, collaborative manner. Given the fact that fuzzy models are inherently granular constructs that dwell upon collections of information granules - fuzzy sets, this observation implies a certain general development process. There are two fundamental design issues of this style of modeling, namely (a) a formation of information granules carried out on a basis of locally available data and their collaborative refinement, and (b) construction of local models with the use of properly established collaborative linkages. We discuss the underlying general concepts and then elaborate on their detailed development. Information granulation is realized in terms of fuzzy clustering. Local models emerge in the form of rule-based systems. The paper elaborates on a number of mechanisms of collaboration offering two general categories of so-called horizontal and vertical clustering. The study also addresses an issue of collaboration in cases when such interaction involves information granules formed at different levels of specificity (granularity). It is shown how various algorithms of collaboration lead to the emergence of fuzzy models involving information granules of higher type such as e.g., type-2 fuzzy sets.

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Issue Info: 
  • Year: 

    2007
  • Volume: 

    4
  • Issue: 

    1
  • Pages: 

    21-36
Measures: 
  • Citations: 

    0
  • Views: 

    800
  • Downloads: 

    185
Abstract: 

This paper considers the automatic design of fuzzy rule-based classification systems based on labeled data. The classification performance and interpretability are of major importance in these systems. In this paper, we utilize the distribution of training patterns in decision subspace of each fuzzy rule to improve its initially assigned certainty grade (i.e. rule weight). Our approach uses a punishment algorithm to reduce the decision subspace of a rule by reducing its weight, such that its performance is enhanced. Obviously, this reduction will cause the decision subspace of adjacent overlapping rules to be increased and consequently rewarding these rules. The results of computer simulations on some well-known data sets show the effectiveness of our approach.

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Issue Info: 
  • Year: 

    2007
  • Volume: 

    4
  • Issue: 

    1
  • Pages: 

    37-51
Measures: 
  • Citations: 

    0
  • Views: 

    1098
  • Downloads: 

    202
Abstract: 

Prompt detection and diagnosis of faults in industrial systems are essential to minimize the production losses, increase the safety of the operator and the equipment. Several techniques are available in the literature to achieve these objectives. This paper presents fuzzy based control and fault detection for a 6/4 switched reluctance motor. The fuzzy logic control performs like a classical proportional plus integral control, giving the current reference variation based on speed error and its change. Also, the fuzzy inference system is created and rule base are evaluated relating the parameters to the type of the faults. These rules are fired for specific changes in system parameters and the faults are diagnosed. The feasibility of fuzzy based fault diagnosis and control scheme is demonstrated by applying it to a simulated system.

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Issue Info: 
  • Year: 

    2007
  • Volume: 

    4
  • Issue: 

    1
  • Pages: 

    53-64
Measures: 
  • Citations: 

    0
  • Views: 

    1673
  • Downloads: 

    374
Abstract: 

In this paper we define intuitionistic fuzzy metric and normed spaces. We first consider finite dimensional intuitionistic fuzzy normed spaces and prove several theorems about completeness, compactness and weak convergence in these spaces. In section 3 we define the intuitionistic fuzzy quotient norm and study completeness and review some fundamental theorems. Finally, we consider some properties of approximation theory in intuitionistic fuzzy metric spaces.

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Author(s): 

YAN C.H. | FANG J.X.

Issue Info: 
  • Year: 

    2007
  • Volume: 

    4
  • Issue: 

    1
  • Pages: 

    65-73
Measures: 
  • Citations: 

    0
  • Views: 

    850
  • Downloads: 

    199
Abstract: 

The purpose of this paper is to introduce the concept of L-fuzzy bilinear operators. We obtain a decomposition theorem for L-fuzzy bilinear operators and then prove that a L-fuzzy bilinear operator is the same as a powerset operator for the variable-basis introduced by S.E.Rodabaugh (1991). Finally we discuss the continuity of L-fuzzy bilinear operators.

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Author(s): 

SHYAMAL A.K. | PAL M.

Issue Info: 
  • Year: 

    2007
  • Volume: 

    4
  • Issue: 

    1
  • Pages: 

    75-87
Measures: 
  • Citations: 

    0
  • Views: 

    2626
  • Downloads: 

    1091
Abstract: 

In this paper, some elementary operations on triangular fuzzy numbers (TFNs) are defined. We also define some operations on triangular fuzzy matrices (TFMs) such as trace and triangular fuzzy determinant (TFD). Using elementary operations, some important properties of TFMs are presented. The concept of adjoints on TFM is discussed and some of their properties are. Some special types of TFMs (e.g. pure and fuzzy triangular, symmetric, pure and fuzzy skew-symmetric, singular, semi-singular, constant) are defined and a number of properties of these TFMs are presented.

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