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321072

Relevant Image Ranking Based on Transfer RetinaNet Learning

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Last updated: 05 Jan 2025

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Abstract

Computer vision and deep learning are intrinsic applications in the machine learning field that become smarter day by day. The significant challenge in deep learning tasks converges on extracting the deepest and the most semantic features of the image. So, the promotion of deep learning techniques has enormous leverage in the retrieval of deep image ranking. This research has tackled an essential task of relevant deep image ranking based on learning from the RetinaNet superior detection technique. RetinaNet learning technique is employed to learn deep semantic features embeddings from the imaging dataset. Transfer of learning is a powerful scheme that proposes hyper-parameterization of the RetinaNet network for relevant image ranking. It transfers RetinaNet detector learning (weights) for deep relevant image ranking systems. Thus, we achieved the best accuracy. Our experimental results manifest that our deep learning procedure enhances the retrieval results efficiently and accurately and focuses on inhibiting the learning time of a deep relevant ranking task. As compared with other state-of-the-art object detectors, the RetinaNet detector accomplished more than a 97% mean average precision (MAP). This results in outperformed tested work. These superior results pretend the effective impact of our proposed procedure learning that drives the more efficient and relevant result of the deep ranking task.

DOI

10.21608/mjcis.2020.321072

Keywords

RetinaNet Deep Learning, Feature Pyramids Network Extractor, Focal Loss for class imbalance, Transfer Of Learning, Triplet Embedding Sampling, Ranking Loss

Authors

First Name

Hoda

Last Name

El-Batrawy

MiddleName

-

Affiliation

Information Technology Department, Faculty of Computers and Information, Mansoura University, Mansoura, Egypt

Email

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City

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Orcid

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First Name

Ahmed

Last Name

Atwan

MiddleName

-

Affiliation

Information Technology Department, Faculty of Computers and Information, Mansoura University, Mansoura, Egypt

Email

atwan@mans.edu.eg

City

-

Orcid

-

First Name

Hassan

Last Name

Soliman

MiddleName

-

Affiliation

Information Technology Department, Faculty of Computers and Information, Mansoura University, Mansoura, Egypt

Email

hsoliman@mans.edu.eg

City

-

Orcid

-

First Name

Mohammed

Last Name

Elmogy

MiddleName

-

Affiliation

Information Technology Department, Faculty of Computers and Information, Mansoura University, Mansoura, Egypt

Email

melmogy@mans.edu.eg

City

-

Orcid

0000-0002-2504-6051

Volume

16

Article Issue

2

Related Issue

43903

Issue Date

2020-12-01

Receive Date

2023-10-11

Publish Date

2020-12-01

Page Start

11

Page End

24

Print ISSN

2090-1666

Online ISSN

2090-1674

Link

https://mjcis.journals.ekb.eg/article_321072.html

Detail API

https://mjcis.journals.ekb.eg/service?article_code=321072

Order

321,072

Type

Original Research Articles.

Type Code

1,784

Publication Type

Journal

Publication Title

Mansoura Journal for Computer and Information Sciences

Publication Link

https://mjcis.journals.ekb.eg/

MainTitle

Relevant Image Ranking Based on Transfer RetinaNet Learning

Details

Type

Article

Created At

28 Dec 2024