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Convolutional Neural Networks with TensorFlow in Python

Convolutional Neural Networks with TensorFlow in Python

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Description
Description

Are you a Deep Learning enthusiast who is now looking for their next challenge?

Are you interested in the field of Computer Vision and the ability of machines to extract insightful information from visuals and images?

Do you want to learn a valuable skill to put yourself ahead of the competition in this AI-driven world?

If you answered with “yes” to any of these questions, you have come to the right place and at the right time!

Here are 5 reasons this is the right course for you:

We have 1,170,000 students on Udemy and we know how to teach a complex topic in an easy to understand way
It contains numerous practical exercises
A real-life case study with 16,000 images
Save time – our course will get you there faster than the average courses on the topic
Notebook files, course notes, quiz questions, practice materials – all materials are inside the course

This course is a fantastic training opportunity to help you gain insights into the rapidly expanding field of Machine Learning and Computer Vision through the use of Convolutional Neural Networks.

Convolutional Neural Networks, or CNNs in short, are a subtype of deep neural networks that are extensively used in the field of Computer Vision. These networks specialize in inferring information from spatial-structure data to help computers gain high-level understanding from digital images and videos. That can be as simple a task as classifying an image to be a dog or a cat, but it can also explode in complexity as is the case with self-driving cars, for example.

This is where most of the active Machine Learning research is concentrated right now, and CNNs are a crucial part of it. So, it is high time to up your game and master this piece of the Deep Learning puzzle.

To do just that, we have devised this wonderful and engaging course for you. Although a general understanding of TensorFlow and the main deep learning concepts is required, we will start from the CNNs basics and build our way to proficiency. Moreover, we are firm believers that practice makes perfect, that’s why this course offers a comprehensive practical example of a real-world project. What’s more, it contains plenty of exercises, homework, downloadable files and notebooks, as well as quiz questions and course notes.

We’ll start this course by taking a look at Kernels in the context of image processing. Kernels are an essential tool for working with and understanding Convolutional Neural Networks. We’ll explore how to achieve different image transformations and help you understand the role of the mathematical operation of convolution in this process. This will be the basis for our next topic – convolutional layers.

Armed with all that knowledge, we will introduce the main subject of the course: Convolutional Neural Networks. Here, we’ll discuss intriguing concepts such as feature maps and pooling. In addition, we’ll inspect how such a network transforms the dimensions of the tensors.

Then, what follows is a short and optional neural networks revision. CNNs are simply a subtype of deep neural networks, so a general knowledge of NNs is required. That’s why we’ll revise the basics: activation functions, early stopping, and optimizers.

Once we’ve covered all that, you will have the minimum required knowledge to start putting all this theory to practice – by building your first Convolutional Neural Network.

Working on the MNIST dataset, we’ll help you grasp the general workflow of creating a CNN architecture and build one from scratch. You are going to train it to recognize handwritten digits – a very useful tool in the real world. At this point, you will get the hands-on opportunity to tinker and change the network and see the results for yourself.

And we won’t stop at creating the CNNs. We will also spend a good amount of time exploring them through TensorBoard – the go-to visualization and logging tool when working with TensorFlow. This will make your journey and experimentation in the field more straightforward and definitely more memorable. Neural networks are notorious for their difficult interpretation, so we will examine the Confusion Matrix as a tool to help you understand and interpret the results of your networks. Finally, we’ll show you how to easily tune the hyperparameters of your networks.

But there’s more.

We will show you how to master 3 common techniques to improve the performance of your models. In fact, you will have the opportunity to apply those techniques to the networks we create for the next practical section.

You heard that right! The idea of this course is to give you the real CNN experience. We will have an enormous practical exercise so you can work on a real-world project.

To do that, we’ve created our very own custom data set that comes from the fashion industry. It consists of more than 16,000 images of trousers, jeans, shoes, glasses, and sunglasses. And we will be using these for numerous practical examples and problems. We’ve devised a task to classify the different items with a corresponding label. Not only that, but we will also determine other characteristics, such as the items’ subtype and gender. Given the nature of these, we will be able to try out different techniques to achieve our goal and compare how these approaches fare against each other. You’ll get a taste of the real-world challenges of solving such a task, and gain experience with a real project that you can later add to your portfolio.

Finally, to cap it all off, we end this course with a review of the timeline of Convolutional Neural Networks professional research. We will dive into the workings of some popular CNN architectures, and all-stars like AlexNet, GoogLeNet, as well as ResNet will all make an appearance.

By the end of this course, you will be completely equipped with all the tools you need to confidently work on CNN projects!

We, at the 365 Data Science Team are committed to providing only the highest quality content to you – our students. That’s why we have teamed up with a true industry expert – Iskren Vankov. Iskren is a very capable Software developer and Computer Scientist with a Bachelor’s degree in Computer Science and Physics from The University of Edinburgh, and a Master’s degree in Computer Science from The University of Oxford. Iskren has also been engaged in Deep Learning programming for more than 5 years with a focus on Recurrent Neural Networks.

As with all of our courses, you have a 30-day money-back guarantee, if at some point you decide that the training isn’t the best fit for you.

What’s more, the course comes with plenty of exercises, homework, downloadable files, quiz questions, and course notes. Everything you need for a perfect learning experience.

So, what are you waiting for?

Click the ‘Buy now’ button and let’s explore CNNs together!
Who this course is for:

Anyone seeking to advance their skills in Machine Learning and Computer Vision
This course is for you if you want to learn how Convolutional Neural Networks work
Anyone who wants to make a career in Deep Learning
Individuals who are curious and passionate about AI

Requirements

Python 3 and the Anaconda distribution
Basic to Intermediate Python knowledge
Understanding of Feed-forward neural networks
Basic familiarity with TensorFlow 2
Curiosity and enthusiasm to learn and practice

Last Updated 12/2020

File list
  • Convolutional Neural Networks with TensorFlow in Python
  • TutsNode.com.txt 63 B
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/01 Introduction to the course/001 What does the course cover_.en.srt 9.3 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/01 Introduction to the course/001 What does the course cover_.mp4 57.9 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/01 Introduction to the course/002 Why CNNs_.en.srt 5.7 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/01 Introduction to the course/002 Why CNNs_.mp4 38.1 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/02 Kernels/003 Introduction to image kernels.en.srt 4.3 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/02 Kernels/003 Introduction to image kernels.mp4 27.9 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/02 Kernels/004 How do image transformations work_.en.srt 10.6 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/02 Kernels/004 How do image transformations work_.mp4 52.7 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/02 Kernels/005 Kernels as matrices.en.srt 3.4 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/02 Kernels/005 Kernels as matrices.mp4 21.8 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/02 Kernels/006 Convolution - applying kernels.en.srt 3.5 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/02 Kernels/006 Convolution - applying kernels.mp4 26.3 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/02 Kernels/007 Edge handling.en.srt 4 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/02 Kernels/007 Edge handling.mp4 19.2 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/03 CNN Introduction/008 CNNs motivation.en.srt 11.8 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/03 CNN Introduction/008 CNNs motivation.mp4 61.3 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/03 CNN Introduction/009 Feature maps.en.srt 11.2 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/03 CNN Introduction/009 Feature maps.mp4 67.6 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/03 CNN Introduction/010 Pooling and Stride.en.srt 9 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/03 CNN Introduction/010 Pooling and Stride.mp4 57.9 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/03 CNN Introduction/011 Dimensions.en.srt 4.4 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/03 CNN Introduction/011 Dimensions.mp4 28.7 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/04 Neural networks techniques (revision)/012 Activation functions.en.srt 7.1 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/04 Neural networks techniques (revision)/012 Activation functions.mp4 39.3 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/04 Neural networks techniques (revision)/013 Overfitting and early stopping.en.srt 3.1 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/04 Neural networks techniques (revision)/013 Overfitting and early stopping.mp4 19.3 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/04 Neural networks techniques (revision)/014 Optimizers.en.srt 4.1 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/04 Neural networks techniques (revision)/014 Optimizers.mp4 27.5 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/05 Setting up the environment/015 Setting up the environment - Do not skip, please!.en.srt 1.4 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/05 Setting up the environment/015 Setting up the environment - Do not skip, please!.mp4 5.3 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/05 Setting up the environment/016 Why Python and why Jupyter_.en.srt 6.6 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/05 Setting up the environment/016 Why Python and why Jupyter_.mp4 32 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/05 Setting up the environment/017 Installing Anaconda.en.srt 5.3 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/05 Setting up the environment/017 Installing Anaconda.mp4 28.1 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/05 Setting up the environment/018 Jupyter Dashboard - Part 1.en.srt 3.1 KB
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  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/05 Setting up the environment/019 Jupyter Dashboard - Part 2.en.srt 7.1 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/05 Setting up the environment/019 Jupyter Dashboard - Part 2.mp4 18.8 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/05 Setting up the environment/020 Installing the packages.en.srt 2 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/05 Setting up the environment/020 Installing the packages.mp4 15.1 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/06 CNN assembling - MNIST/021 Road plan.en.srt 5.1 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/06 CNN assembling - MNIST/021 Road plan.mp4 24.1 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/06 CNN assembling - MNIST/022 A simple CNN architecture.en.srt 16.4 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/06 CNN assembling - MNIST/022 A simple CNN architecture.mp4 69.6 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/06 CNN assembling - MNIST/023 Preprocessing the data.en.srt 16.2 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/06 CNN assembling - MNIST/023 Preprocessing the data.mp4 62.1 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/06 CNN assembling - MNIST/024 Building and training the CNN.en.srt 19.4 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/06 CNN assembling - MNIST/024 Building and training the CNN.mp4 87.6 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/06 CNN assembling - MNIST/025 Testing the trained CNN.en.srt 8.6 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/06 CNN assembling - MNIST/025 Testing the trained CNN.mp4 45.1 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/06 CNN assembling - MNIST/external-assets-links.txt 556 B
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/07 Tensorboard_ Visualization tool for TensorFlow/026 Tensorboard on the MNIST example.en.srt 17.2 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/07 Tensorboard_ Visualization tool for TensorFlow/026 Tensorboard on the MNIST example.mp4 83.6 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/07 Tensorboard_ Visualization tool for TensorFlow/027 Confusion matrix and visualizing it with Tensorboard.en.srt 20.5 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/07 Tensorboard_ Visualization tool for TensorFlow/027 Confusion matrix and visualizing it with Tensorboard.mp4 109.5 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/07 Tensorboard_ Visualization tool for TensorFlow/028 Using Tensorboard to tune hyperparameters.en.srt 14.1 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/07 Tensorboard_ Visualization tool for TensorFlow/028 Using Tensorboard to tune hyperparameters.mp4 82.9 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/07 Tensorboard_ Visualization tool for TensorFlow/external-assets-links.txt 519 B
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/08 Common techniques for better performance of NN/029 Introduction.en.srt 3.5 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/08 Common techniques for better performance of NN/029 Introduction.mp4 20.3 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/08 Common techniques for better performance of NN/030 Regularization.en.srt 7.1 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/08 Common techniques for better performance of NN/030 Regularization.mp4 42.1 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/08 Common techniques for better performance of NN/031 L2 Regularization and Weight Decay.en.srt 6.8 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/08 Common techniques for better performance of NN/031 L2 Regularization and Weight Decay.mp4 39 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/08 Common techniques for better performance of NN/032 Dropout.en.srt 5.2 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/08 Common techniques for better performance of NN/032 Dropout.mp4 36.3 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/08 Common techniques for better performance of NN/033 Data augmentation.en.srt 5.9 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/08 Common techniques for better performance of NN/033 Data augmentation.mp4 42.2 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/034 Introduction to the problem.en.srt 5.2 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/034 Introduction to the problem.mp4 27.7 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/035 The objective and the images.en.srt 6.6 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/035 The objective and the images.mp4 47.2 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/036 Converting images to arrays.en.srt 5.3 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/036 Converting images to arrays.mp4 23.8 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/037 Getting started with the code concepts.en.srt 4.7 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/037 Getting started with the code concepts.mp4 27.1 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/038 Primary classification task - Part 1.en.srt 8.5 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/038 Primary classification task - Part 1.mp4 35.5 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/039 Primary classification task - Part 2.en.srt 13.7 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/039 Primary classification task - Part 2.mp4 60.5 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/040 Primary classification task - Part 3.en.srt 7.5 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/040 Primary classification task - Part 3.mp4 33.9 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/041 Trousers and Jeans - discussion of approaches.en.srt 8.5 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/041 Trousers and Jeans - discussion of approaches.mp4 53.5 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/042 Trousers and Jeans - All.en.srt 15.8 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/042 Trousers and Jeans - All.mp4 85.6 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/043 Trousers and Jeans - Gender + Type.en.srt 6.2 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/043 Trousers and Jeans - Gender + Type.mp4 26.3 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/044 Trousers and Jeans - comparing the methods.en.srt 11.7 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/044 Trousers and Jeans - comparing the methods.mp4 34.9 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/045 L2 regularization and Dropout.en.srt 15.2 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/045 L2 regularization and Dropout.mp4 81.5 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/046 Data augmentation - Shoes All.en.srt 7 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/046 Data augmentation - Shoes All.mp4 32.8 MB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/09 A practical project_ Labelling fashion items/external-assets-links.txt 1.2 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/10 Understanding CNNs/047 Unexpected failures.en.srt 10.9 KB
  • [TutsNode.com] - Convolutional Neural Networks with TensorFlow in Python/10 Understanding CNNs/047 Unexpected failures.mp4 72.9 MB

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