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"The unexpected and premature passing away of Professor Ebrahim H. "Abe" Mamdani on January, 22, 2010, was a big shock to the scientific community, to all his friends and colleagues around the world, and to his close relatives. Professor Mamdani was a remarkable figure in the academic world, as he contributed to so many areas of science and technology. Of great relevance are his latest thoughts and ideas on the study of language and its handling by computers.
The fuzzy logic community is particularly indebted to Abe Mamdani (1941-2010) who, in 1975, in his famous paper An Experiment in Linguistic Synthesis with a Fuzzy Logic Controller, jointly written with his student Sedrak Assilian, introduced the novel idea of fuzzy control. This was an elegant engineering approach to the modeling and control of complex processes for which mathematical models were unknown or too difficult to build, yet they could effectively and efficiently be controlled by human operators. This ground-breaking idea has found innumerable applications and can be considered as one of the main factors for the proliferation and adoption of fuzzy logic technology.
This book constitutes a posthumous homage to Abe Mamdani. It is a collection of original papers related in some way to his works, ideas and vision, and especially written by researchers directly acquainted with him or with his work. "
Berlin: [Springer, Springer], 2012
e20398021
eBooks  Universitas Indonesia Library
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Hanif Rasyidi
"Dalam ilmu forensik, gigi merupakan bagian tubuh yang digunakan untuk melakukan pengenalan seseorang ketika bagian tubuh lain telah rusak dan sulit dikenali. Pengenalan gigi dilakukan dengan membandingkan fitur yang ada pada gigi korban dengan fitur-fitur yang ada pada data gigi yang tersimpan. Pengenalan dengan cara tersebut memerlukan waktu yang lama, sehingga pengadaan metode pengenalan otomatis dengan menggunakan mesin sangat dibutuhkan.
Saat ini, beberapa metode pengenalan telah dikembangkan untuk mengenali gambar gigi yang berbentuk citra dental radiograph. Sayangnya, beberapa metode yang dikembangkan membutuhkan kualitas citra dental radiograph yang baik, sehingga penggunaannya masih sangat terbatas pada citra dengan kualitas tertentu. Oleh karena itu, peneliti mengajukan sebuah metode pengenalan yang dapat mengenali citra dental radiograph meskipun citra tersebut memiliki kualitas yang kurang baik. Metode yang dikembangkan akan meningkatkan kualitas citra dengan bantuan sistem inferensi fuzzy. Citra yang telah ditingkatkan kualitasnya tersebut kemudian akan dicari bentuknya dan dibandingkan dengan bentuk-bentuk gigi yang ada. Dari perbandingan tersebut akan dibuat peringkat kesamaan bentuk antara sebuah gigi dengan data yang tersimpan. Peringkat tersebut akan berguna untuk membantu seorang ahli forensik dalam mengenali seseorang

In forensic science, dental records are used to recognize someone when his/her body has been damaged and difficult to identify. Dental identification is done by matching the entire feature of victim?s dental condition and dental record from the police database. This process needs long time to finish, so procurement of automatic dental recognition method is very required.
Today, some automatic recognition methods have been developed to recognize dental record in form of dental radiograph image. Unfortunately, the methods need high quality dental radiograph image, which means it cannot be used to recognize all kind of image. Therefore, the researcher proposed a new method which can recognize all kind of dental radiograph images; even the image is a low quality image. The method proposed using fuzzy inference system to improve the quality of the dental radiograph image, before extract the shape of the dental and compare the extracted shape with some other extracted shape in police database. The methods measure the similarity of the image, and rank it based on the similarity value that help the forensic expert to indentify the victim."
2009
S-Pdf
UI - Skripsi Open  Universitas Indonesia Library
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Andry Sunandar
"Telah dilakukan penelitian terhadap pengembangan algoritma FNGLVQ sehingga memiliki karakteristik adaptif terhadap data input sehingga besaran perubahan vektor referensi memiliki besaran nilai yang adaptif. Karakteristik adaptif didapatkan dengan melakukan modifikasi terhadap perubahan update bobot dengan melakukan penurunan fungsi keanggotaan fuzzy tidak hanya terhadap parameter mean (yang dilakukan pada FNGLVQ awal) namun penurunan dilakukan terhadap kedua nilai min dan max sehingga besaran perubahan nilai min dan max akan bervariasi (tidak konstan seperti FNGLVQ) yang tergantung dari besaran input yang digunakan.
Karakteristik ini dapat meningkatkan akurasi dalam percobaan dalam ketiga jenis data, yakni data EKG Aritmia, data pengenalan Aroma dengan 3 campuran, serta data Sleep secara keseluruhan, namun perbedaan nilai akurasi terbesar didapatkan dari pengujian data pengenalan aroma 3 campuran. Pengembangan karakteristik adaptif terhadap algoritma FNGLVQ dilakukan dengan kedua jenis fungsi keanggotaan yakni fungsi keanggotaan segitiga dan fungsi keanggotaan PI, dan FNGLVQ adaptif dengan fungsi keanggotaan PI sedikit lebih baik dibandingkan FNGLVQ adaptif dengan fungsi keanggotaan segitiga.

This research has been conducted on the development of FNGLVQ algorithms which have adaptive characteristics to the input data so that the amount of change in the reference vector has a magnitude of adaptive value. Adaptive characteristics are obtained by modifying the update changes the weight by doing a fuzzy membership function derivation. This is not only performed on the parameters of the mean (which is done at the beginning FNGLVQ) but they are derivated to both min and max values so that the amount of change in the weight and is continued with min and max values will vary (not constant as in the case of FNGLVQ) which in turn depends on the amount of inputs used.
These characteristics may increase the accuracy of the experiment in all three types of data, including data Arrhythmia ECG, data recognition Aroma with 3 mix, as well as overall Sleep data, but the biggest difference is the accuracy of values which have obtained from the test for 3 mixed aroma data recognition. Development of adaptive characteristics of the algorithm FNGLVQ has been performed with both types of membership functions namely triangular membership functions and PI membership functions, and FNGLVQ PI adaptive membership functions has been found to be slightly better than FNGLVQ adaptive triangular membership functions.
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Depok: Fakultas Ilmu Komputer Universitas Indonesia, 2013
T-pdf
UI - Tesis Membership  Universitas Indonesia Library
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Scherer, Rafal
"The present book discusses the three fields, fuzzy systems, rough sets and ensemble techniques. As the trained ensemble should represent a single hypothesis, a lot of attention is placed on the possibility to combine fuzzy rules from fuzzy systems being members of classification ensemble. Furthermore, an emphasis is placed on ensembles that can work on incomplete data, thanks to rough set theory."
Berlin: [Springer, ], 2012
e20398565
eBooks  Universitas Indonesia Library
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P. Hendarwan Budiarta
"Sistem simulasi yang diketengahkan dalam Tugas Akhir ini menggunakan algoritma pengaturan berbasis logika fuzzy. Logika fuzzy digunakan untuk mengatasi kesulitan pengendalian pada sistem yang memiliki sifat non-linieritas tinggi, di antaranya adalah pengemudian mobil. Akan dijelaskan model asli model yang disederhanakan, serta penentuan model fuzzy Takagi-Sugeno mobil. Sebagai pengendali digunakan kontroler fuzzy yang dioptimasi dengan persamaan Riccati. Dibahas juga pengujian kestabilan pengendalian. Dalam hal ini, logika fuzzy tidak hanya digunakan pada pengendali (kontroller) tetapi juga untuk memodelkan mobil (model fuzzy Takagi-Sugeno). Pada bagian akhir diberikan flowchart program simulasi dan Basil-hasil simulasi pada beberapa kondisi untuk menunjukkan pengaruh - kecepat:an, waktu cuplik, panjang mobil, dan besainya state feedback gain, K terhadap kinerja pemarkiran."
Depok: Fakultas Teknik Universitas Indonesia, 1996
S38856
UI - Skripsi Membership  Universitas Indonesia Library
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Castillo, Oscar
"This book reviews current state of the art methods for building intelligent systems using type-2 fuzzy logic and bio-inspired optimization techniques. Combining type-2 fuzzy logic with optimization algorithms, powerful hybrid intelligent systems have been built using the advantages that each technique offers. This book is intended to be a reference for scientists and engineers interested in applying type-2 fuzzy logic for solving problems in pattern recognition, intelligent control, intelligent manufacturing, robotics and automation. "
Heidelberg : Springer, 2012
e20398732
eBooks  Universitas Indonesia Library
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Chang, Xiao-Heng
"This book investigates the problem of non-fragile H-infinity filter design for Takagi-Sugeno (T-S) fuzzy systems. Given a T-S fuzzy system, the objective of this book is to design an H-infinity filter with the gain variations such that the filtering error system guarantees a prescribed H-infinity performance level. Furthermore, it demonstrates that the solution of non-fragile H-infinity filter design problem can be obtained by solving a set of linear matrix inequalities (LMIs). "
Berlin: Springer, 2012
e20398900
eBooks  Universitas Indonesia Library
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"The present book includes a set of selected extended papers from the second International Joint Conference on Computational Intelligence (IJCCI 2010), held in Valencia, Spain, from 24 to 26 October 2010. The conference was composed by three co-located conferences: The International Conference on Fuzzy Computation (ICFC), the International Conference on Evolutionary Computation (ICEC), and the International Conference on Neural Computation (ICNC). Recent progresses in scientific developments and applications in these three areas are reported in this book. IJCCI received 236 submissions, from 49 countries, in all continents. After a double blind paper review performed by the Program Committee, only 30 submissions were accepted as full papers and thus selected for oral presentation, leading to a full paper acceptance ratio of 13%. Additional papers were accepted as short papers and posters. A further selection was made after the Conference, based also on the assessment of presentation quality and audience interest, so that this book includes the extended and revised versions of the very best papers of IJCCI 2010."
New York: Springer, 2012
e20395520
eBooks  Universitas Indonesia Library
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Castillo, Oscar
"This book, hybrid intelligent systems based mainly on type-2 fuzzy logic for intelligent control. Hybrid intelligent systems combine several intelligent computing paradigms, including fuzzy logic, and bio-inspired optimization algorithms, which can be used to produce powerful automatic control systems. The book is organized in three main parts, which contain a group of chapters around a similar subject. The first part consists of chapters with the main theme of theory and design algorithms, which are basically chapters that propose new models and concepts, which can be the basis for achieving intelligent control with interval type-2 fuzzy logic. The second part of the book is comprised of chapters with the main theme of evolutionary optimization of type-2 fuzzy systems in intelligent control with the aim of designing optimal type-2 fuzzy controllers for complex control problems in diverse areas of application, including mobile robotics, aircraft dynamics systems and hardware implementations. The third part of the book is formed with chapters dealing with the theme of bio-inspired optimization of type-2 fuzzy systems in intelligent control, which includes the application of particle swarm intelligence and ant colony optimization algorithms for obtaining optimal type-2 fuzzy controllers."
Berlin: Springer, 2012
e20398992
eBooks  Universitas Indonesia Library
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Med Irzal
"Tesis ini membahas tentang sebuah metoda Principal Component Analysis untuk data yang terbentuk dari bilangan fuzzy. Metoda ini akan mentransformasi data fuzzy yang berada dalam ruang data berdimensi d ke sebuah ruang eigen yang berdimensi p dengan p < d, menggunakan sebuah Jaringan Neural Buatan Autoassociative Neural Network. Pengujian menggunakan data aroma dan data citra yang memiliki noise. Hasil dari percobaan menunjukkan bahwa metoda ini telah berhasil melakukan pemetaan terhadap data-data tersebut. Hasil percobaan juga menunjukkan bahwa metode ini lebih cocok digunakan pada data fuzzy berdimensi besar dan memiliki banyak dimensi yang berisi data redundant."
Depok: Fakultas Ilmu Komputer Universitas Indonesia, 2008
T-Pdf
UI - Tesis Open  Universitas Indonesia Library
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