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Results for “"Nabil Ibtehaz"”

16+ results

MultiResUNet : Rethinking the U-Net architecture for multimodal biomedical image segmentation

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Nabil Ibtehaz, M. Sohel Rahman

Journal: Neural NetworksYear: 2019Citations: 2251

In recent years Deep Learning has brought about a breakthrough in Medical Image Segmentation. In this regard, U-Net has been the most popular architecture in the medical imaging community. Despite outstanding overall performance in segmenting multimodal medical images, through extensive experimentat...

Physical SciencesComputer ScienceArtificial IntelligenceOpen Access
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COVID-19 infection localization and severity grading from chest X-ray images

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Anas Tahir, Muhammad E. H. Chowdhury, Amith Khandakar, Tawsifur Rahman et al.

Journal: Qatar University QSpace (Qatar University)Year: 2022Citations: 194

The immense spread of coronavirus disease 2019 (COVID-19) has left healthcare systems incapable to diagnose and test patients at the required rate. Given the effects of COVID-19 on pulmonary tissues, chest radiographic imaging has become a necessity for screening and monitoring the disease. Numerous...

Health SciencesMedicineRadiology, Nuclear Medicine and Imaging
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Detection and Severity Classification of COVID-19 in CT Images Using Deep Learning

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Yazan Qiblawey, Anas Tahir, Muhammad E. H. Chowdhury, Amith Khandakar et al.

Journal: MDPI (MDPI AG)Year: 2021Citations: 129

Detecting COVID-19 at an early stage is essential to reduce the mortality risk of the patients. In this study, a cascaded system is proposed to segment the lung, detect, localize, and quantify COVID-19 infections from computed tomography images. An extensive set of experiments were performed using E...

Health SciencesMedicineRadiology, Nuclear Medicine and ImagingOpen Access
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PPG2ABP: Translating Photoplethysmogram (PPG) Signals to Arterial Blood Pressure (ABP) Waveforms

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Nabil Ibtehaz, Sakib Mahmud, Muhammad E. H. Chowdhury, Amith Khandakar et al.

Journal: BioengineeringYear: 2022Citations: 116

Cardiovascular diseases are one of the most severe causes of mortality, annually taking a heavy toll on lives worldwide. Continuous monitoring of blood pressure seems to be the most viable option, but this demands an invasive process, introducing several layers of complexities and reliability concer...

Physical SciencesEngineeringBiomedical EngineeringOpen Access
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An Agent-Based Modeling of COVID-19: Validation, Analysis, and Recommendations

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Md. Salman Shamil, Farhanaz Farheen, Nabil Ibtehaz, Irtesam Mahmud Khan et al.

Journal: Cognitive ComputationYear: 2021Citations: 95

The coronavirus disease 2019 (COVID-19) has resulted in an ongoing pandemic worldwide. Countries have adopted non-pharmaceutical interventions (NPI) to slow down the spread. This study proposes an agent-based model that simulates the spread of COVID-19 among the inhabitants of a city. The agent-base...

Physical SciencesMathematicsModeling and SimulationOpen Access
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A Shallow U-Net Architecture for Reliably Predicting Blood Pressure (BP) from Photoplethysmogram (PPG) and Electrocardiogram (ECG) Signals

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Sakib Mahmud, Nabil Ibtehaz, Amith Khandakar, Anas Tahir et al.

Journal: SensorsYear: 2022Citations: 87

Cardiovascular diseases are the most common causes of death around the world. To detect and treat heart-related diseases, continuous blood pressure (BP) monitoring along with many other parameters are required. Several invasive and non-invasive methods have been developed for this purpose. Most exis...

Physical SciencesEngineeringBiomedical EngineeringOpen Access
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NABNet: A Nested Attention-guided BiConvLSTM network for a robust prediction of Blood Pressure components from reconstructed Arterial Blood Pressure waveforms using PPG and ECG signals

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Sakib Mahmud, Nabil Ibtehaz, Amith Khandakar, M. Sohel Rahman et al.

Journal: Biomedical Signal Processing and ControlYear: 2022Citations: 54
Physical SciencesEngineeringBiomedical EngineeringOpen Access
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EDITH : ECG Biometrics Aided by Deep Learning for Reliable Individual Authentication

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Nabil Ibtehaz, Muhammad E. H. Chowdhury, Amith Khandakar, Serkan Kıranyaz et al.

Journal: IEEE Transactions on Emerging Topics in Computational IntelligenceYear: 2021Citations: 54

In recent years, physiological signal-based authentication has shown great promises, for its inherent robustness against forgery. Electrocardiogram (ECG) signal, being the most widely studied biosignal, has also received the highest level of attention in this regard. It has been proven with numerous...

Health SciencesMedicineCardiology and Cardiovascular MedicineOpen Access
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RamanNet: a generalized neural network architecture for Raman spectrum analysis

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Nabil Ibtehaz, Muhammad E. H. Chowdhury, Amith Khandakar, Serkan Kıranyaz et al.

Journal: Neural Computing and ApplicationsYear: 2023Citations: 45

Abstract Raman spectroscopy provides a vibrational profile of the molecules and thus can be used to uniquely identify different kinds of materials. This sort of molecule fingerprinting has thus led to the widespread application of Raman spectrum in various fields like medical diagnosis, forensics, m...

Life SciencesBiochemistry, Genetics and Molecular BiologyBiophysicsOpen Access
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Development and Validation of an Early Scoring System for Prediction of Disease Severity in COVID-19 Using Complete Blood Count Parameters

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Tawsifur Rahman, Amith Khandakar, Md Enamul Hoque, Nabil Ibtehaz et al.

Journal: IEEE AccessYear: 2021Citations: 44

The coronavirus disease 2019 (COVID-19) after outbreaking in Wuhan increasingly spread throughout the world. Fast, reliable, and easily accessible clinical assessment of the severity of the disease can help in allocating and prioritizing resources to reduce mortality. The objective of the study was ...

Health SciencesMedicineInfectious DiseasesOpen Access
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Robust biometric system using session invariant multimodal EEG and keystroke dynamics by the ensemble of self-ONNs

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Arafat Rahman, Muhammad E. H. Chowdhury, Amith Khandakar, Anas Tahir et al.

Journal: Computers in Biology and MedicineYear: 2022Citations: 38

Harnessing the inherent anti-spoofing quality from electroencephalogram (EEG) signals has become a potential field of research in recent years. Although several studies have been conducted, still there are some vital challenges present in the deployment of EEG-based biometrics, which is stable and c...

Life SciencesNeuroscienceCognitive Neuroscience
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VFPred: A fusion of signal processing and machine learning techniques in detecting ventricular fibrillation from ECG signals

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Nabil Ibtehaz, Mohammad Saifur Rahman, M. Sohel Rahman

Journal: Biomedical Signal Processing and ControlYear: 2018Citations: 29

Ventricular Fibrillation (VF), one of the most dangerous arrhythmias, is responsible for sudden cardiac arrests. Thus, various algorithms have been developed to predict VF from electrocardiogram (ECG), which is a binary classification problem. In the literature, we find a number of algorithms based ...

Health SciencesMedicineCardiology and Cardiovascular MedicineOpen Access
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Revisiting segmentation of lung tumors from CT images

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Farhanaz Farheen, Md. Salman Shamil, Nabil Ibtehaz, M. Sohel Rahman

Journal: Computers in Biology and MedicineYear: 2022Citations: 26

Lung cancer is a leading cause of death throughout the world. Because the prompt diagnosis of tumors allows oncologists to discern their nature, type, and mode of treatment, tumor detection and segmentation from CT scan images is a crucial field of study. This paper investigates lung tumor segmentat...

Health SciencesMedicineRadiology, Nuclear Medicine and Imaging
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A contour property based approach to segment nuclei in cervical cytology images

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Iram Tazim Hoque, Nabil Ibtehaz, Saumitra Chakravarty, Md. Saifur Rahman et al.

Journal: BMC Medical ImagingYear: 2021Citations: 18

Abstract Background Segmentation of nuclei in cervical cytology pap smear images is a crucial stage in automated cervical cancer screening. The task itself is challenging due to the presence of cervical cells with spurious edges, overlapping cells, neutrophils, and artifacts. Methods After the initi...

Physical SciencesComputer ScienceArtificial IntelligenceOpen Access
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A Regression based Sensor Data Prediction Technique to Analyze Data Trustworthiness in Cyber-Physical System

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Satter Abdus, Nabil Ibtehaz

Journal: International Journal of Information Engineering and Electronic BusinessYear: 2018Citations: 15

A Cyber-Physical System strongly depends on the sensor data to understand the current condition of the environment and act on that. Due to network faults, insufficient power supply, and rough environment, sensor data become noisy and the system may perform unwanted operations causing severe damage. ...

Physical SciencesComputer ScienceComputer Networks and CommunicationsOpen Access
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