Advanced Deep Learning Course Material and Project Grading

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Explore the comprehensive course material covering topics such as machine learning, deep learning, image recognition, and adversarial attacks. Engage in hands-on assignments and a group project involving deep learning implementation in Keras. Present your project findings at the end of the semester for grading. Dive into the realm of neural networks, convolutions, and text data representation to enhance your knowledge in the field.

  • Deep Learning
  • Machine Learning
  • Image Recognition
  • Neural Networks
  • Project Grading

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  1. Deep learning Usman Roshan

  2. Course material Machine learning background Basic data representations Basic algorithms Coding in Python scikit-learn Parallel programming: CUDA and OpenCL for GPUs OpenMP for multi-core CPUs Neural networks Basic multi-layer perceptrons

  3. Course material Machine learning for image recognition Classifying images with conventional methods Convolutions for image analysis Effect of fixed convolutions on images Deep learning for image recognition Convolutional neural networks (CNN) Optimization of CNNs

  4. Course material Adversarial attacks Black box and white box attacks on image classification systems Deep learning for text Representation of text data: bag of words and word2vec CNNs for text

  5. Grading One GPU assignment, one OpenMP assignment, One Keras assignment One mid-term Students in groups of two will do a project and submit it towards the end of the semester. Project summaries and results will be presented in 10-15 min slots. Project will involve deep learning implementation in Keras on a dataset connected to a paper.

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