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Multiple Adaptive Neuro-Fuzzy Inference System with Automatic Features Extraction Algorithm for Cervical Cancer Recognition

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TLDR
The experimental results prove the capability of the AFE algorithm to be as effective as the manual extraction by human experts, while the proposed MANFIS produces a good classification performance with 94.2% accuracy.
Abstract
To date, cancer of uterine cervix is still a leading cause of cancer-related deaths in women worldwide. The current methods (i.e., Pap smear and liquid-based cytology (LBC)) to screen for cervical cancer are time-consuming and dependent on the skill of the cytopathologist and thus are rather subjective. Therefore, this paper presents an intelligent computer vision system to assist pathologists in overcoming these problems and, consequently, produce more accurate results. The developed system consists of two stages. In the first stage, the automatic features extraction (AFE) algorithm is performed. In the second stage, a neuro-fuzzy model called multiple adaptive neuro-fuzzy inference system (MANFIS) is proposed for recognition process. The MANFIS contains a set of ANFIS models which are arranged in parallel combination to produce a model with multi-input-multioutput structure. The system is capable of classifying cervical cell image into three groups, namely, normal, low-grade squamous intraepithelial lesion (LSIL) and high-grade squamous intraepithelial lesion (HSIL). The experimental results prove the capability of the AFE algorithm to be as effective as the manual extraction by human experts, while the proposed MANFIS produces a good classification performance with 94.2% accuracy.

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Journal ArticleDOI

Autonomous mobile robot navigation between static and dynamic obstacles using multiple ANFIS architecture

TL;DR: This paper designs and implements the multiple adaptive neuro-fuzzy inference system (MANFIS) architecture-based sensor-actuator (motor) control technique for mobile robot navigation in different two-dimensional environments with the presence of static and moving obstacles.
Journal ArticleDOI

Diagnosing Parkinson's Diseases Using Fuzzy Neural System.

TL;DR: Simulation results demonstrated that the proposed fuzzy neural system improves the recognition rate of the designed system and allows enhancing the capability of thedesigned system and efficiently distinguishing healthy individuals.
Journal ArticleDOI

Breast Cancer Risk Assessment Using adaptive neuro-fuzzy inference system (ANFIS) and Subtractive Clustering Algorithm

TL;DR: The Adaptive neuro-fuzzy inference system (ANFIS) is a soft computing model based on neural network precision and fuzzy decision-making advantages, which can highly facilitate diagnostic modeling.
Journal ArticleDOI

Fuzzy Neural System Application to Differential Diagnosis of Erythemato-Squamous Diseases

TL;DR: Clinically, patients are evaluated in terms of 12 features, including degree of scaling and erythema; presence or absence of defined lesion borders; itching and koebner phenomenon; papule formation; family history; and involvement of the oral mucosa, knees, elbows, and scalp, which are important indices in the differential diagnosis of erythemato-squamous diseases.
Journal ArticleDOI

Diagnosis of Cervical Cancer and Pre-Cancerous Lesions by Artificial Intelligence: A Systematic Review

TL;DR: A systematic review as mentioned in this paper evaluated the diagnostic performance of artificial intelligence (AI) technologies for the prediction, screening, and diagnosis of cervical cancer and pre-cancerous lesions, and found that the accuracy of the algorithms in predicting cervical cancer varied from 70% to 100%.
References
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Journal ArticleDOI

Designing a dual ISM band implantable antenna for medical monitoring applications using Dy- Sm doped magnesium Nano Ferrite material

TL;DR: D Sm Ferrite was coated over RT DUROID 5880 with dielectric constant of 1.6 and loss tangent of 0.025 to form a new substrate for implantable micro strip patch antenna design.
Posted Content

Ensembles of Radial Basis Function Networks for Spectroscopic Detection of Cervical Pre-Cancer

TL;DR: In this paper, a multivariate statistical algorithm was used to extract clinically useful information from tissue spectra acquired from 361 cervical sites from 95 patients at 337, 380 and 460 nm excitation wavelengths.
Journal ArticleDOI

Automatic Glass-Slide Capturing System for Cervical Cancer Pre-Screening Program

TL;DR: Clinical glass-slide capturing system is becoming an important part of telemedicine, medical database and diagnostic system that involves of microscope and image acquisition device which is digital camera.
Journal Article

Enhanced MAC Parameters to Support Hybrid Dynamic Prioritization in MANETs

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Intelligent Rock Vertical Shaft Impact Crusher Local Database System

TL;DR: A local database system is proposed to store information to store images and aggregates’ recognition and classification data and it will have a simple and easy way of storing and retrieving information.
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