Review of computer‐assisted diagnosis model to classify follicular lymphoma histology

Author:

Saxena Pranshu1,Aggarwal Sahil Kumar2,Sinha Amit2,Saxena Sandeep3ORCID,Singh Arun Kumar3ORCID

Affiliation:

1. School of Computer Science Engineering & Technology Bennett University Greater Noida Uttar Pradesh India

2. Department of Information Technology ABES Engineering College Ghaziabad India

3. Greater Noida Institute of Technology Greater Noida India

Abstract

AbstractThe field of image processing is experiencing significant advancements to support professionals in analyzing histological images obtained from biopsies. The primary objective is to enhance the process of diagnosis and prognostic evaluations. Various forms of cancer can be diagnosed by employing different segmentation techniques followed by postprocessing approaches that can identify distinct neoplastic areas. Using computer approaches facilitates a more objective and efficient study of experts. The progressive advancement of histological image analysis holds significant importance in modern medicine. This paper provides an overview of the current advances in segmentation and classification approaches for images of follicular lymphoma. This research analyzes the primary image processing techniques utilized in the various stages of preprocessing, segmentation of the region of interest, classification, and postprocessing as described in the existing literature. The study also examines the strengths and weaknesses associated with these approaches. Additionally, this study encompasses an examination of validation procedures and an exploration of prospective future research roads in the segmentation of neoplasias.

Publisher

Wiley

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