Fuzzy Systems in Bioinformatics and Computational Biology
Biological systems are inherently stochastic and uncertain. Thus, research in bioinformatics, biomedical engineering and computational biology has to deal with a large amount of uncertainties. Fuzzy logic has shown to be a powerful tool in capturing different uncertainties in engineering systems. In...
Corporate Author: | |
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Other Authors: | , |
Format: | Electronic |
Language: | English |
Published: |
Berlin, Heidelberg :
Springer Berlin Heidelberg,
2009.
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Series: | Studies in Fuzziness and Soft Computing,
242 |
Subjects: | |
Online Access: | https://ezaccess.library.uitm.edu.my/login?url=http://dx.doi.org/10.1007/978-3-540-89968-6 |
Table of Contents:
- Induction of Fuzzy Rules by Means of Artificial Immune Systems in Bioinformatics
- Fuzzy Genome Sequence Assembly for Single and Environmental Genomes
- A Hybrid Promoter Analysis Methodology for Prokaryotic Genomes
- Fuzzy Vector Filters for cDNA Microarray Image Processing
- Microarray Data Analysis Using Fuzzy Clustering Algorithms
- Fuzzy Patterns and GCS Networks to Clustering Gene Expression Data
- Gene Expression Analysis by Fuzzy and Hybrid Fuzzy Classification
- Detecting Gene Regulatory Networks from Microarray Data using Fuzzy Logic
- Fuzzy System Methods in Modeling Gene Expression and Analyzing Protein Networks
- Evolving a Fuzzy Rulebase to Model Gene Expression
- Infer Genetic / Transcriptional Regulatory Networks by Recognition of Microarray Gene Expression Patterns using Adaptive Neuro-Fuzzy Inference Systems
- Scalable Dynamic Fuzzy Biomolecular Network Models for Large Scale Biology
- Fuzzy C-means Techniques for Medical Image Segmentation
- Monitoring and Control of Anesthesia Using Multivariable Self-Organizing Fuzzy Logic Structure
- Interval Type-2 Fuzzy System for ECG Arrhythmic Classification
- Fuzzy Logic in Evolving in silico Oscillatory Dynamics for Gene Regulatory Networks.