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Tahsin Mostafiz

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Research Interests

Machine Learning, Deep Learning, Computer Vision, Natural Language Processing

Education

  • Graduate Research Assistant, FICS Lab, ECE, University of Florida (Spring 2021 -)

  • Master of Science, Electrical and Electronic Engineering, Bangladesh University of Engineering and Technology (BUET) (2019-2020)

  • Bachelor of Science, Electrical and Electronic Engineering Bangladesh University of Engineering and Technology (BUET) (2012-2017)

Honors and Awards

Work Experience

  • Machine Learning Engineer, AI Samurai (2019-2020)
  • Machine Learning Researcher, Semion Limited (2017-2019)

Research Articles

  • EVHA: Explainable Vision System for Hardware Testing and Assurance - An Overview" MD Mahfuz Al Hasan, Tahsin Mostafiz, Thomas An Le, Jake Julia, Nidish Vashistha, Shayan Taheri, and Dr. Navid Asadizanjani

  • Pathology Extraction from Chest X-Ray Radiological Reports: A Performance Comparison" Tahsin Mostafiz, Dr. Khalid Ashraf

  • Retinal Blood Vessel Segmentation using Residual Block Incorporated U-Net Architecture and Fuzzy Inference System" Tahsin Mostafiz, Ismat Jarin, Dr. Shaikh A. Fattah and Dr. Celia Shahnaz; IEEE WIECON-ECE 2018.

  • Photoplay: An Android Application to Stimulate Children’s Cognitive Development" Avijit Mitra, Tahsin Mostafiz, Raihan Ur Rashid; Humanitarian Technology Conference (R10-HTC), 2017 IEEE Region 10, Dhaka.

Professional Projects

  • Algorithm

    • Head and Neck Cancer staging via lymph node segmentation using Convolutional Neural Network (CNN) and volumetric CT images.

    • Computed Tomography (CT) image reconstruction for Printed Circuit Boards (PCB) with semi-supervised denoising and artifact suppression techniques.

    • Counterfeit IC detection from SEM images of IC backsides using image processing and CNN.

    • Co-development of a semi-supervised CNN model for abnormality detection in dairy product images.

    • Backend deep learning algorithm development of , a web application for the detection and localization of Intracranial Hemorrhage from brain CT images.

    • Sentiment level analysis using transformer based language models for product review task.

    • Identification of Risk Factors for Heart Disease from i2b2 dataset Using a Bidirectional LSTM network with 50 Dimensional Glove Word Embedding.

  • Application

    • Co-development of a flutter based android app for electric pole detection from images captured using car dashboard cameras.

    • Co-development of SemRad, an inference tool and a class activation mapping (CAM) Tool Using ResNet101 for Detection and Localization of Abnormalities in Chest X-ray Images for this software.

    • semDDX, an Android app was designed to help the users navigate the vast landscape of differential diagnoses (DD) and help medical students to learn DD easily.

    • Differential Diagnoses, an Amazon Alexa skill was designed to help the users find all differential diagnoses for a symptom.

    • Symptom Checker an Amazon Alexa skill was designed to help the users detect disease from symptoms.

  • Deep Learning Competitions

    • Silver Medal in APTOS 2019 Blindness Detection

    • Bronze Medal in SIIM-ISIC Melanoma Classification

  • Student Supervising

    • Mentored an undergraduate student in his thesis work titled "COVID Infection Analysis via Lung Lobe Segmentation using Deep Learning".

    • Supervised two high-school students to get them familiar with research work in hardware security and machine learning under the Student Science Training Program (SSTP).

My Scores:

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Tahsin Mostafiz's Projects

convlstm icon convlstm

Convolutional LSTM for video segmentation with Keras

convolutional-lstm-in-tensorflow icon convolutional-lstm-in-tensorflow

An implementation of convolutional lstms in tensorflow. The code is written in the same style as the basiclstmcell function in tensorflow

keras-gan icon keras-gan

Keras implementations of Generative Adversarial Networks.

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