A NEW HYBRID ADAPTIVE OPTIMIZATION ALGORITHM BASED WAVELET NEURAL NETWORK FOR SEVERITY LEVEL PREDICTION FOR LUNG CANCER DATASET
dc.contributor.author | Divya, T | |
dc.contributor.author | Gripsy J, Viji | |
dc.date.accessioned | 2024-12-03T08:07:33Z | |
dc.date.available | 2024-12-03T08:07:33Z | |
dc.date.issued | 2024 | |
dc.description.abstract | This study proposes three contributions focused on lung cancer detection and severity level identification. The absence of non-invasive technologies for predicting lung cancer necessitates faster, more efficient, and more accurate classification procedures due to the absence of non-invasive technologies for predicting lung cancer. Creating an automated and intelligent prediction system is crucial for identifying phases and predicting the possibility of a recurrence. The objective is to create an automated detection system for identifying lung cancer using an optimizationfocused deep learning model. We develop an adaptive multi-swarm PSO and combine it with the firefly algorithm to determine the ideal weight values for the Wavelet Neural Network (WNN) model. We use the HAPSO-FFA-WNN method to explore problems with multiple optimal solutions. This study evaluated two lung cancer datasets, and the proposed HAPSO-FFA-WNN model achieved 97.58% accuracy for dataset 1 and 98.54% accuracy for dataset 2. Furthermore, the proposed model achieved better precision, recall, and MCC performance metrics. | en_US |
dc.identifier.issn | 2185310X | |
dc.identifier.uri | https://inass.org/wp-content/uploads/2024/02/2024063062-2.pdf | |
dc.language.iso | en_US | en_US |
dc.publisher | Intelligent Network and Systems Society | en_US |
dc.subject | Risk analysis | en_US |
dc.subject | Optimization | en_US |
dc.subject | Lung cancer | en_US |
dc.subject | Prediction | en_US |
dc.subject | Wavelet neural network | en_US |
dc.title | A NEW HYBRID ADAPTIVE OPTIMIZATION ALGORITHM BASED WAVELET NEURAL NETWORK FOR SEVERITY LEVEL PREDICTION FOR LUNG CANCER DATASET | en_US |
dc.type | Article | en_US |
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