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vafaeelab's Projects

bloodbased-pancancer-diagnosis icon bloodbased-pancancer-diagnosis

Benchmarking study of feature extraction methods for cancer diagnosis using blood-based biomarkers. Feature extraction methods are compared both in terms of their performance and robustness

bnsl_ga icon bnsl_ga

Machine learning research project: Bayesian Network Structure Learning using Genetic Algorithms.

cfrd_ev_biomarker icon cfrd_ev_biomarker

Biomarker signature identification for Cystic Fibrosis Related Diabetes from miRNAs in ExtraCellular Vesicles

dermatology-ml icon dermatology-ml

Following repository demonstrates machine learning architectures that can correctly classify lesions between LM and AMH. Overall, our methods showcase the potential for computer-aided diagnosis in dermatology, which, in conjunction with remote acquisition can expand the range of diagnostic tools in the community. This code is implemented using Keras and Tensorflow frameworks.

hybridmodel-covid-19-prediction icon hybridmodel-covid-19-prediction

To accurately predict the regional spread of COVID-19 infection, this study proposes a novel hybrid model which combines a Long short-term memory (LSTM) artificial recurrent neural network with dynamic behavioral models. Several factors and control strategies affect the virus spread, and the uncertainty arisen from confounding variables underlying the spread of the COVID-19 infection is substantial. The proposed model considers the effect of multiple factors to enhance the accuracy in predicting the number of cases and deaths across the top ten most-affected countries and Australia. The results show that the proposed model closely replicates test data. It not only provides accurate predictions but also estimates the daily behavior of the system under uncertainty. The hybrid model outperforms the LSTM model accounting for data limitation. The parameters of the hybrid models were optimized using a genetic algorithm for each country to improve the prediction power while considering regional properties. Since the proposed model can accurately predict COVID-19 spread under consideration of containment policies, is capable of being used for policy assessment, planning and decision-making.

psdmat icon psdmat

We present a novel pre-processing method (scPSD) inspired by power spectral density analysis to extract important information from large-scale single-cell omics data and enhance the separation of cellular phenotypes.

psdr icon psdr

Power Spectral Density (psd) preprocessing method in R

safaari icon safaari

Single-cell Annotation and Fusion with Adversarial Open-Set Domain Adaptation Reliable for Data Integration

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