2019
DOI: 10.35940/ijeat.b4074.129219
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Feedback Based Adaptive Recurrent Neural Network for Cancer Detection using Gene Data Pattern

P. Priyadharshini,
B. S. E. Zoraida

Abstract: Cancer detecting technology plays a vital role in the medical community. Researches have shown that patients that are affected by cancer carry same type of genetic patterns in their DNA. With this in mind, this research work concentrates on analysing gene pattern for detecting cancer using deep learning algorithms. The Feedback based Adaptive Recurrent Neural Network (FA-RNN) approach is designed to classify and analyse the gene pattern recognition. The data augmentation is done to improve the quality of the i… Show more

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Cited by 1 publication
(2 citation statements)
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References 15 publications
(22 reference statements)
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“…Priyadharshini and Zoraida [ 32 ] developed Bat-inspired Metaheuristic Convolutional Neural Network Algorithms for CAD-based Lung Cancer Forecast. The Discrete Wavelet Transform (DWT) that decomposed the image as input was able to decompose the image into a set sub-band, one of which was the Low (LL) band.…”
Section: Related Workmentioning
confidence: 99%
See 1 more Smart Citation
“…Priyadharshini and Zoraida [ 32 ] developed Bat-inspired Metaheuristic Convolutional Neural Network Algorithms for CAD-based Lung Cancer Forecast. The Discrete Wavelet Transform (DWT) that decomposed the image as input was able to decompose the image into a set sub-band, one of which was the Low (LL) band.…”
Section: Related Workmentioning
confidence: 99%
“…Several algorithms have been applied to medical image classification problems using CNN for feature extraction. Priyadharshini and Zoraida [ 32 ] developed Bat-inspired Metaheuristic Convolutional Neural Network Algorithms for CAD-based Lung Cancer Forecast. Li et al [ 33 ] used metaheuristic techniques to optimize the rebalancing of the imbalanced class of feature selection method for dimension reduction in clinical X-ray image datasets.…”
Section: Introductionmentioning
confidence: 99%