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    SpicyMags.xyz

    Computer Vision Course

    Posted By: ELK1nG
    Computer Vision Course

    Computer Vision Course
    MP4 | Video: h264, 1280x720 | Audio: AAC, 44.1 KHz
    Language: English | Size: 6.20 GB | Duration: 16h 43m

    Learn Deep Learning & Computer Vision with Python, Tensorflow 2.0, OpenCV, FastAI. Object Detection & GAN and much more!


    What you'll learn
    Using Latest Tools & Techniques in Deep Learning & Computer Vision
    Learning how to used the latest Tensorflow 2.0
    How to apply Transfer Learning, Ensemble Learning, using GPUs & TPUs
    How to work & win Kaggle Competitions
    Learning to use FastAI
    How to use Generative Adversarial Networks
    How to use Weights & Biases for recording Experiments
    Learning to use Detectron2 for Object Detection
    Making Machine Learning Web Application from Scratch
    Learn how to use OpenCV for Computer Vision
    How to make Real World Applications & Deploy into Cloud
    Learning Techniques like Object Detection, Classification & Generation
    Learning how to use Heroku for deploying ML models
    Working on Kaggle Competitions & Kaggle Kernels
    Exploring & Visualizing Datasets using popular libraries like Matplotlib & Plotly.
    Learinng how to use libraries like Pandas, Sklearn, Numpy
    Creating Advance Data Pipelines using Tensorflow for training Deep Learning Models
    Setting up Environment & Project for Deep Learning & Computer Vision

    Requirements
    Basic Python programming knowledge
    A Computer with Internet Connection
    All tools used in this course are free to use
    Description
    This Brand New and Modern Deep Learning & Computer Vision Course will teach you everything you will need to know to learn the fundamentals of computer vision.

    Deep Learning & Computer Vision is currently one of the most increasing fields of Artificial Intelligence and Companies like Google, Apple,

    Facebook, Amazon are highly investing in this field. Deep Learning & Computer Vision jobs are increasing day by day & provide some of the highest paying jobs all over the world.

    If We Want Machines to Think, We Need to Teach Them to See.-Fei Fei Li, Director of Stanford AI Lab and Stanford Vision Lab

    Computer Vision allows us to see the world & process digital images & videos to extract useful information to do a certain task from classification, object detection, and much more. Python is one of the most popular used programming language in Deep Learning and Computer Vision.

    All the tools, techniques & technologies used in this course -

    Learning Computer Vision & Deep Learning Fundamentals

    Setting up Anaconda, Installing Libraries & Jupyter Notebook

    Learning fundamentals of OpenCV & Numpy - Reading images, Colorspaces, Drawing & Callbacks

    Advanced OpenCV - Image Preprocessing, Geometrical transformations, Perspective transformations & affine transformations, image blending & pyramids, image gradients & thresholding, Canny Edge Detector and contours

    Working with videos in OpenCV - Using webcam, Haar Cascades & Object Detection, Lane Detection

    Deep Learning & How Neural Network Works? - Artificial neural networks, Convolution Neural Networks & Transfer Learning

    Image Classification - Plant leaf Classification

    Working on very recent Kaggle Competitions

    Using Google Colab & Kaggle Kernels

    Using the latest Tensorflow 2.0 & Keras

    Using Keras Data Generators & Data Argumentation

    Using Transfer Learning & Ensemble learning

    Using State of The Art Deep Learning Models

    Using GPU & TPU for Model Training

    Hyperparameter Tuning

    Using Weights & Biases for recording Deep Learning experimentations

    Saving & Loading Models

    Creating a Weights & Biases Report & Showcasing the Project!

    Object Detection - Wheat heads Detection

    Working on Kaggle Competitions, again!

    Using Facebook's Detectron2 for Object Detection

    Creating COCO Dataset from scratch

    Training Faster RCNN Model and Custom Weights & Biases callback

    Using Retinanet

    Saving & Loading Detectron2 models

    Generative Adversarial Networks - Creating Fake Leaf Images

    Learning How Generative Adversarial Networks works

    Using FastAI

    Creating & Training Generative Adversarial Networks

    Making Fake Images using GAN

    Making ML Web Application

    Getting started with Streamlit

    Creating an ML Web Application from scratch using Streamlit

    making a React Web Application

    Deploying ML Applications

    Learning how to use Cloud Services to Deploy Models & Applications

    Using Heroku

    Learning how to Open Source Projects on GitHub

    How to showcase your projects to impress boss & employees & Get Hired!

    A lot of bonus lectures!

    This is what included in the package

    All lecture codes are available for downloadable for free

    110+ HD video lectures ( over 50 more to come very soon! )

    Free support in course Q/A

    All videos with English captions available

    This course is for you if..

    … you want to learn the Latest Tools & Techniques used in Deep Learning & Computer Vision

    … you want to get more experience to Win Kaggle Competitions

    … you want to get started with Computer Vision to become a Computer Vision Engineer

    .. you are interested in learning Image Classification, Object Detection, Generative Adversarial Networks, Making & Deploying Machine Learning Applications

    Who this course is for
    You want to become a Computer Vision Engineer & Get Hired
    Anyone who want to learn latest tools & techniques used in Computer Vision
    You are already a Programmer and what to extend your skills by learning Computer Vision
    Who want to learn new Tools & Techniques used in Computer Vision
    You want to get more experience for winning Kaggle Competitions