406706

ARTIFICIAL INTELLIGENCE TECHNIQUES IN VISUAL FIELD ASSESSMENT USING HUMPHREY FIELD ANALYSIS - A SURVEY

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Last updated: 01 Feb 2025

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Abstract

Abstract: Visual field assessment is a critical component in the diagnosis and management of various ocular and neurological conditions. The Humphrey Field Analyzer (HFA) is a widely used instrument for this purpose, providing accurate and reliable measurements of the visual field. This review explores the principles, methodologies and clinical applications of Humphrey field analysis in visual field assessment and pre-diagnosis of glaucoma using Artificial Intelligence and deep learning. The clinical utility of HFA is demonstrated by its application in the diagnosis and monitoring of diseases such as glaucoma, retinal diseases, and neuro-ophthalmic disorders. In this comprehensive review, the models considered include CascadeNet-5 and Linear Regression, RGC-AC. Each model was trained on a labeled dataset and evaluated using standard performance metrics. Our results demonstrate that CascadeNet-5 outperforms other models in terms of predictive accuracy and sensitivity, while Linear Regression and RGC-AC exhibit comparable performance.
Keywords: Artificial Intelligence; Deep Learning; Visual Field; Glaucoma; Humphrey Field Analyzer.

DOI

10.21608/ijicis.2025.345323.1369

Keywords

Keywords: artificial intelligence, Deep learning, visual field, Glaucoma, Humphrey Field Analyzer

Authors

First Name

Tasneem

Last Name

Abdalgadir

MiddleName

Idris Abdallah

Affiliation

Computer Science Department, Faculty of Computer and Information Science, Ain Shams University, Cairo, Egypt

Email

tasneem.idris@cis.asu.edu.eg

City

Cairo

Orcid

0009-0008-7917-9897

First Name

Salsabil

Last Name

Amin

MiddleName

-

Affiliation

Faculty of Computers and Information Sciences

Email

salsabil_amin@cis.asu.edu.eg

City

-

Orcid

-

First Name

Thanaa

Last Name

Mohamed

MiddleName

Helmy

Affiliation

Ophthalmology Department, Faculty of Medicine, Ain Shams University, Cairo, Egypt

Email

thanaa@med.asu.edu.eg

City

Cairo

Orcid

0000-0001-7692-1672

First Name

El-Sayed

Last Name

El-Horabty

MiddleName

M.

Affiliation

Computer Science Department, Faculty of Computer and Information Sciences, Ain Shams University

Email

shorbaty@cis.asu.edu.eg

City

Cairo

Orcid

0000-0003-1066-4807

Volume

24

Article Issue

4

Related Issue

52576

Issue Date

2024-12-01

Receive Date

2024-12-17

Publish Date

2024-12-01

Page Start

82

Page End

98

Print ISSN

1687-109X

Online ISSN

2535-1710

Link

https://ijicis.journals.ekb.eg/article_406706.html

Detail API

http://journals.ekb.eg?_action=service&article_code=406706

Order

406,706

Type

Original Article

Type Code

494

Publication Type

Journal

Publication Title

International Journal of Intelligent Computing and Information Sciences

Publication Link

https://ijicis.journals.ekb.eg/

MainTitle

ARTIFICIAL INTELLIGENCE TECHNIQUES IN VISUAL FIELD ASSESSMENT USING HUMPHREY FIELD ANALYSIS - A SURVEY

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Article

Created At

01 Feb 2025