نتایج جستجو برای: fuzzy c means

تعداد نتایج: 1451268  

Journal: :Journal of Japan Society for Fuzzy Theory and Systems 1997

روش‌های طبقه‌بندی از مهم‌ترین روش‌های استخراج اطلاعات از تصاویر سنجش از دوری می‌باشند که به طور مرسوم به دو دسته نظارت‌شده و نظارت‌نشده تقسیم می‌شوند. روش‌های نظارت‌شده نیازمند جمع‌آوری داده‌های آموزشی بوده و مستلزم صرف هزینه و زمان می‌باشند. در مقابل، روش‌های نظارت‌نشده فقط متکی بر داده‌های تصویری بوده و اغلب به صورت اتوماتیک انجام می‌شوند. روش‌های نظارت‌نشده نسبت به روش‌های نظارت‌شده اگر چه م...

As customers are the main asset of any organization, customer churn management is becoming a major task for organizations to retain their valuable customers. In the previous studies, the applicability and efficiency of hierarchical data mining techniques for churn prediction by combining two or more techniques have been proved to provide better performances than many single techniques over a nu...

This paper presents an efficient hybrid method, namely fuzzy particleswarm optimization (FPSO) and fuzzy c-means (FCM) algorithms, to solve the fuzzyclustering problem, especially for large sizes. When the problem becomes large, theFCM algorithm may result in uneven distribution of data, making it difficult to findan optimal solution in reasonable amount of time. The PSO algorithm does find ago...

Journal: :IEICE Transactions 2009
Makoto Yasuda Takeshi Furuhashi

This article explains how to apply the deterministic annealing (DA) and simulated annealing (SA) methods to fuzzy entropy based fuzzy c-means clustering. By regularizing the fuzzy c-means method with fuzzy entropy, a membership function similar to the Fermi-Dirac distribution function, well known in statistical mechanics, is obtained, and, while optimizing its parameters by SA, the minimum of t...

2012
Yang Yu Bingbing Zhang Bing Rao Liang Chen

Abstract The priori knowledge of the radar can not be used by the traditional fuzzy C-means clustering algorithm, which leads a poor accuracy of the data association. An improved fuzzy C-means clustering algorithm is proposed in this paper. The real-time change rate of the track slope of moving targets measured by radar is used to update the weight. Then the objective function of fuzzy C-means ...

2009
Binu Thomas

In data mining, the conventional clustering algorithms have difficulties in handling the challenges posed by the collection of natural data which is often vague and uncertain. Fuzzy clustering methods have the potential to manage such situations efficiently. This paper introduces the limitations of conventional clustering methods through k-means and fuzzy c-means clustering and demonstrates the...

2013
Nour-Eddine el Harchaoui Mounir Ait Kerroum Ahmed Hammouch Mohamed Ouadou Driss Aboutajdine

The analysis and processing of large data are a challenge for researchers. Several approaches have been used to model these complex data, and they are based on some mathematical theories: fuzzy, probabilistic, possibilistic, and evidence theories. In this work, we propose a new unsupervised classification approach that combines the fuzzy and possibilistic theories; our purpose is to overcome th...

2013
Asha Gowda Karegowda Seema Kumari

Data mining is the process of extracting hidden patterns from huge data. Among the various clustering algorithms, k-means is the one of most widely used clustering technique in data mining. The performance of k-means clustering depends on the initial clusters and might converge to local optimum. K-means does not guarantee the unique clustering because it generates different results with randoml...

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