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Hi there 👋, I am Mohammad Abdo - aka Jimmy, I am originally from Egypt 🇪🇬

I am a Ph.D., a research scientist, and used to be an instructor.

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My honest friends and superiors agreed that my biggest weekness is software development, so that's what I picked as a part of my career 😎


  • 🔭 I’m currently a Modeling and simulation specialist, a machine learning staff scientist at Idaho National Laboratory, and a member of RAVEN development team, working on several projects including -but not limited to- Surrogate Construction, Reduced Order Modeling, sparse sensing, metamodeling of porous materials, scaling interpolation and representativity of mockup experiments to target real-world plants, data-driven discovery of governing physics and system identification, digital twins, Time series analysis, Koopman theory, agile software development, and more.

  • 🌱 I’d love to learn in the near future: MLOps, R, Cafee, mongoDB, MySQL,NoSQL, SCALA, Julia, SAS, SPSS, ApacheSpark, Kafka, Hadoop, Hive, MapReduce, Casandra, Weka.

  • 🧑‍🤝‍🧑 I’m looking to collaborate on Physics-based neural networks.

  • 💬 Ask me about ROM, uncertainty quantification, sensitivity analysis, active subspaces, probabilistic error bounds, dynamic mode decomposition (DMD).
  • ⚡ Fun fact: I like basketball, volleyball, and soccer.

  • 🏡 website | 👔 linkedin | researchgate |

  • 🐦 [twitter][twitter] | 📺 [youtube][youtube] | 📷 [instagram][instagram] |

Skills:


  • 🤖👽 Machine Learning: regression, regularization, classification, clustering, collaborative filtering, support vector machines, naive Bayes, decision trees, random forests, anomaly detection, recommender systems, artificial data synthesis, ceiling analysis, Artificial Neural Networks (ANNs), Deep Neural Networks (DNNs), Convolutional Neural Networks (CNNs), Recurrent Neural Networks (RNNs), Long Short Term Memory (LSTMs), Natural Language Processing (NLP), Transformer models, Attention Mechanisms.

  • Reduced Order Modeling: PCA, PPCA, KPCA, isomap, laplacian eigenmaps, LLE, HLLE, LTSA, surrogate modeling, Koopman theory, time-delayed embeddings, dynamic mode decomposition (DMD), dynamical systems and control, data-driven (equation-free) modeling, sparse identification of dynamical systems (Sindy), compressive sensing for full map recovery from sparse measurements, time-series analysis, ARMA, ARIMA.

  • Sensitivity Analysis (SA): Sobol indices, morris screenning, PAWN, moment-independent SA.

  • Uncertainty Quantification (UQ): Forward UQ, adjoint UQ, invers UQ.

  • Optimization: Gradient-Based Optimizers, conjugate gradient, Metaheuristic: Simulated Annealing, Genetic Algorithms.

  • 🖥️ Programming Languages and Packages: Bash scripting, MATLAB, Python: numpy, scipy, matplotlib, plotly, bokeh, seaborn, pandas, Jupyter notebook, ScikitLearn, Keras, Tensorflow.

  • ** High Performance Computing (HPC)**

Languages and Tools:

canvasjs vscode github git python jupyter numpy scipy matplotlib seaborn pandas plotly bokeh altair scikit_learn tensorflow keras pytorch linux matlab



Certificates


  • 🕯️ Machine Learning - Stanford|Online | Intro to ML. (i) Supervised learning (parametric/non-parametric algorithms, support vector machines, kernels, neural networks). (ii) Unsupervised learning (clustering, dimensionality reduction, recommender systems, deep learning). (iii) Best practices in machine learning (bias/variance delimma)
  • 🕯️ Neural Networks and Deep Learning - DeepLearning.AI | Build, train, and apply fully connected deep neural networks; implement efficient (vectorized) neural networks; identify key parameters in a neural network’s architecture
  • 🕯️ Improving Deep Neural Networks: Hyperparameter Tuning, Regularization and Optimization - DeepLearning.AI | L2 and dropout regularization, hyperparameter tuning, batch normalization, and gradient checking; optimization algorithms such as mini-batch gradient descent, Momentum, RMSprop and Adam, implement a neural network in TensorFlow.
  • 🕯️ Structuring Machine Learning Projects - DeepLearning.AI | Diagnose errors in a machine learning system; prioritize strategies for reducing errors; understand complex ML settings, such as mismatched training/test sets, and comparing to and/or surpassing human-level performance; and apply end-to-end learning, transfer learning, and multi-task learning.
  • 🕯️ Convolution Neural Networks - DeepLearning.AI | Build a convolutional neural network, including recent variations such as residual networks; apply convolutional networks to visual detection and recognition tasks; and use neural style transfer to generate art and apply these algorithms to a variety of image, video, and other 2D or 3D data.
  • 🕯️ Sequence Models - DeepLearning.AI | Natural Language Processing, Long Short Term Memory (LSTM), Gated Recurrent Unit (GRU), Recurrent Neural Network, Attention Models
  • 🕯️ Deep Learning Specialization - DeepLearning.AI |


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Connect with me:

mohammad abdo mohammad abdo researchgate mohammad abdo

jimmy-inl's Projects

imdb-rnn-attention icon imdb-rnn-attention

Bidirectional GRU with attention mechanism on imdb sentimental analysis dataset

importance_sampling_presentation icon importance_sampling_presentation

A quick collection of jupyter notebooks explaining importance sampling techniques for reducing variance and improving the runtime of Monte Carlo integration

informer2020 icon informer2020

The GitHub repository for the paper accepted by AAAI 2021.

insulated-lm-elastomer-conductivity icon insulated-lm-elastomer-conductivity

The codes, datasets, and results of our paper titled "A Supervised Machine Learning Approach for Accelerating the Design of Particulate Composites: Application to Thermal Conductivity"

ion-channel-abc icon ion-channel-abc

Approximate Bayesian computation for cardiac electrophysiology cell models

iot icon iot

IoT, 这是一个最小Internet of Things ,一个Internet of Things相关的毕业设计产生的一个简化的物联网系统。 。

iot-1 icon iot-1

A repository dedicated to IoT(internet of things ) and python scripts

iot-predictive-analytics icon iot-predictive-analytics

Method for Predicting failures in Equipment using Sensor data. Sensors mounted on devices like IoT devices, Automated manufacturing like Robot arms, Process monitoring and Control equipment etc., collect and transmit data on a continuous basis which is Time stamped.

ipyvolume icon ipyvolume

3d plotting for Python in the Jupyter notebook based on IPython widgets using WebGL

itkisotropicwavelets icon itkisotropicwavelets

External Module for ITK, implementing Isotropic Wavelets and Riesz Filter for multiscale phase analysis.

jarvis icon jarvis

Joint Automated Repository for Various Integrated Simulations (JARVIS) is an integrated framework for computational science using density functional theory, classical force-field/molecular dynamics and machine-learning.

jax icon jax

Composable transformations of Python+NumPy programs: differentiate, vectorize, JIT to GPU/TPU, and more

jax-md icon jax-md

Differentiable, Hardware Accelerated, Molecular Dynamics

jetbot icon jetbot

An educational AI robot based on NVIDIA Jetson Nano.

jimmy-inl icon jimmy-inl

This is the personal profile for Mohammad Abdo (aka, Jimmy)

jmetalpy icon jmetalpy

A framework for single/multi-objective optimization with metaheuristics

jopenshowvar icon jopenshowvar

Allows reading and writing variables to KUKA robots using a TCP/IP connection

jp_doodle icon jp_doodle

Tools for drawing 2d and 3d interactive visualizations using Jupyter proxy widgets

jp_proxy_widget icon jp_proxy_widget

Generic Jupyter/IPython widget implementation that will support many types of javascript libraries and interactions.

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