Literature DB >> 29086034

Endoscopic Image Classification and Retrieval using Clustered Convolutional Features.

Jamil Ahmad1, Khan Muhammad1, Mi Young Lee1, Sung Wook Baik2.   

Abstract

With the growing use of minimally invasive surgical procedures, endoscopic video archives are growing at a rapid pace. Efficient access to relevant content in such huge multimedia archives require compact and discriminative visual features for indexing and matching. In this paper, we present an effective method to represent images using salient convolutional features. Convolutional kernels from the first layer of a pre-trained convolutional neural network (CNN) are analyzed and clustered into multiple distinct groups, based on their sensitivity to colors and textures. Dominant features detected by each cluster are collected into a single, layout-preserving feature map using a spatial maximal activator pooling (SMAP) approach. A moving window based structured pooling method then captures spatial layout features and global shape information from the aggregated feature map to populate feature histograms. Finally, individual histograms for each cluster are combined into a single comprehensive feature histogram. Clustering convolutional feature space allow extraction of color and texture features of varying strengths. Further, the SMAP approach enable us to select dominant discriminative features. The proposed features are compact and capable of conveniently outperforming several existing features extraction approaches in retrieval and classification tasks on endoscopy images dataset.

Keywords:  Classification; Convolution; Endoscopy; Features extraction; Image retrieval; Spatial pooling

Mesh:

Year:  2017        PMID: 29086034     DOI: 10.1007/s10916-017-0836-y

Source DB:  PubMed          Journal:  J Med Syst        ISSN: 0148-5598            Impact factor:   4.460


  7 in total

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4.  Automated bleeding detection in capsule endoscopy videos using statistical features and region growing.

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Journal:  J Med Syst       Date:  2014-04-03       Impact factor: 4.460

5.  SiNC: Saliency-injected neural codes for representation and efficient retrieval of medical radiographs.

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6.  Medical Image Retrieval Using Vector Quantization and Fuzzy S-tree.

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Journal:  J Med Syst       Date:  2016-12-15       Impact factor: 4.460

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  7 in total
  8 in total

Review 1.  Medical Image Analysis using Convolutional Neural Networks: A Review.

Authors:  Syed Muhammad Anwar; Muhammad Majid; Adnan Qayyum; Muhammad Awais; Majdi Alnowami; Muhammad Khurram Khan
Journal:  J Med Syst       Date:  2018-10-08       Impact factor: 4.460

2.  Medical Image Retrieval with Compact Binary Codes Generated in Frequency Domain Using Highly Reactive Convolutional Features.

Authors:  Jamil Ahmad; Khan Muhammad; Sung Wook Baik
Journal:  J Med Syst       Date:  2017-12-19       Impact factor: 4.460

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5.  Proposing Novel Data Analytics Method for Anatomical Landmark Identification from Endoscopic Video Frames.

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7.  HyperKvasir, a comprehensive multi-class image and video dataset for gastrointestinal endoscopy.

Authors:  Hanna Borgli; Vajira Thambawita; Pia H Smedsrud; Steven Hicks; Debesh Jha; Sigrun L Eskeland; Kristin Ranheim Randel; Konstantin Pogorelov; Mathias Lux; Duc Tien Dang Nguyen; Dag Johansen; Carsten Griwodz; Håkon K Stensland; Enrique Garcia-Ceja; Peter T Schmidt; Hugo L Hammer; Michael A Riegler; Pål Halvorsen; Thomas de Lange
Journal:  Sci Data       Date:  2020-08-28       Impact factor: 6.444

8.  Disease Detection in Plum Using Convolutional Neural Network under True Field Conditions.

Authors:  Jamil Ahmad; Bilal Jan; Haleem Farman; Wakeel Ahmad; Atta Ullah
Journal:  Sensors (Basel)       Date:  2020-09-28       Impact factor: 3.576

  8 in total

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