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Unduh "Deep Learning Full Course - Learn Deep Learning in 6 Hours | Deep Learning Tutorial | Edureka"

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Daftar isi

3:59
Why Artificial Intelligence?
5:46
What Is Artificial Intelligence?
6:51
Applications of Artificial Intelligence
7:43
Subsets Of Artificial Intelligence
10:30
Types Of Machine Learning - Unsupervised Learning
13:06
Types Of Machine Learning - Reinforcement Learning
14:45
Limitations of Machine Learning
16:08
Deep Learning To The Rescue
22:55
Deep Learning Example
24:28
Deep Learning Applications
27:05
What Is Deep Learning?
29:58
How Deep Learning Works?
31:14
Why We Need Artificial Neuron?
32:55
Perceptron Learning Algorithm
36:16
Activation Function
41:34
Single Layer Perceptron-Use Case
42:21
What Is Tensorflow?
44:18
TensorFlow Code Basics
49:08
Tensorflow Example
59:14
What Is A Computational Graph?
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Deep Learning Full Course
Deep Learning Tutorial
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tensorflow tutorial
tensorflow tutorial for beginners
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deep learning complete tutorial
deep learning algorithms
deep learning applications
deep learning frameworks
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edureka
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🔥 AI & Deep Learning with TensorFlow (Use Code "𝐘𝐎𝐔𝐓𝐔𝐁𝐄𝟐𝟎"): https://www.edureka.co/advanced-artificial-intelligence-course-python This Edureka Deep Learning Full Course video will help you understand and learn Deep Learning & Tensorflow in detail. This Deep Learning Tutorial is ideal for both beginners as well as professionals who want to master Deep Learning Algorithms. Below are the topics covered in this Deep Learning tutorial video: 00:00 Introduction 3:11 What is Deep Learning 3:55 Why Artificial Intelligence? 5:48 What is AI? 6:53 Applications of AI 8:43 Machine Learning 10:28 Types of Machine Learning 10:33 Supervised Learning 11:43 Unsupervised Learning 13:08 Reinforcement Learning 14:38 Limitations of Machine Learning 16:08 Deep Learning to the Rescue 19:28 What is Deep Learning? 22:58 Deep Learning Example 24:28 Deep Learning Applications 25:48 Deep Learning Tutorial 27:08 Understanding Deep Learning With an Analogy 29:58 How Deep Learning works? 31:12 Why We need Artificial Neuron? 32:58 Perceptron Learning Algorithm 36:13 Types of Activation Functions 41:33 Single Layer Perceptron Use-case 42:33 What is TensorFlow? 44:18 Tensorflow Code Basics 49:08 TensorFlow Example 59:13 What is a Computational Graph? 1:27:08 Limitations of Single Layer Perceptron 1:28:08 Multilayer Perceptron 1:29:18 How it works? 1:29:23 What is Backpropagation? 1:30:23 Backpropagation Learning Algorithm 1:34:43 Multilayer Perceptron Use-case 1:37:48 Top 8 Deep Learning Frameworks 1:38:18 Chainer 1:39:18 CNTK 1:40:48 Caffe 1:42:28 MXNet 1:43:33 Deeplearning4j 1:45:23 Keras 1:46:58 PyTorch 1:48:23 TensorFlow 1:50:23 TensorFlow Tutorial 1:50:43 Rock or Mine Prediction Use-case 1:52:53 How to Create This Model? 1:54:13 What are Tensors? 1:54:38 Tensor Rank 1:55:58 What is TensorFlow? 2:02:28 Graph Visualization 2:05:10 Constant, Placeholder & Variables 2:08:55 Creating A Model 2:17:06 Reducing The Loss 2:18:31 Batch Gradient Descent 2:22:01 Implementing Rock or Mine Prediction Use-case 2:36:24 Artificial Neural Network Tutorial 2:39:29 Why Neural Network? 2:40:29 Problems Before Neural Network 2:42:09 What is Artificial Neural Network? 2:44:04 How It Works? 2:46:24 Perceptron Learning Algorithm - Beer Analogy 2:52:24 Multilayer Perceptron 2:53:34 Artificial Neutral Network 2:54:24 Training A Neural Network 3:05:54 Applications of Network Networks 3:09:04 Backpropagation & Gradient Descent Tutorial 3:09:49 Perceptron 3:10:44 How does the Network Learn? 3:11:09 MNIST Dataset 3:11:59 Cost Function 3:13:54 Finding Local Minima 3:16:09 Gradient Descent Learning 3:17:19 Back Propagation 3:21:29 Recurrent Neural Networks 3:22:04 Why not Feedforward Network? 3:24:29 What is Recurrent Neural Networks? 3:29:24 Training A Recurrent Neural Network 3:29:49 Vanishing & Exploding Gradient Problem 3:34:09 Long Short Term Memory Networks 3:51:04 Convolutional Neural Network 3:51:29 How A Computer Reads An Image? 3:52:14 Why Not Fully Connected Network? 3:53:29 What Convolutional Neural Network? 3:54:04 How CNN Works? 3:54:39 Convolution Layer 3:59:04 ReLU Layer 4:03:49 Fully Connected Layer 4:11:59 Autoencoders Tutorial 4:13:49 PCA vs Autoencoders 4:15:14 Introduction to Autoencoders 4:17:09 Properties of Autoencoders 4:18:09 Training Autoencoders 4:19:14 Architecture of Autoencoders 4:23:49 Types of Autoencoders 4:25:49 Convolutional Autoencoders 4:26:44 Sparse Autoencoders 4:28:29 Deep Autoencoders 4:30:29 Contractive Autoencoders 4:31:54 Demo 4:35:09 Restricted Boltzmann Machine 4:38:54 Working of RBMs 4:40:29 RBM: Energy-Based Model 4:42:34 RBM: Probabilistic Model 4:42:54 RBM Training 4:44:09 RBM: Training to Prediction 4:44:39 RBM: Example 4:46:29 TensorFlow Object Detection 4:47:34 What is Object Detection? 4:48:24 Object Detection Applications 4:51:04 Workflow of Object Detection 4:52:49 Object Detection in TensorFlow 4:53:59 Object Detection Demo 5:10:44 Creating Chatbots Using Tensorflow 5:12:14 What is Chatbots? 5:12:19 How Does ChatBot Works? 5:14:44 Applications of Chatbot 5:15:54 Layers of Chatbot 5:16:14 Natural Language Processing 5:19:59 Demo 5:21:44 Layers of Chatbot 5:21:59 Deep Learning Interview Questions -------------------------------------------------------------------------------------------------------- PG in Artificial Intelligence and Machine Learning with NIT Warangal : https://www.edureka.co/executive-programs/advanced-certification-course-data-science-ai-iit-guwahati Post Graduate Certification in Data Science with IIT Guwahati - https://www.edureka.co/executive-programs/advanced-certification-course-data-science-ai-iit-guwahati (450+ Hrs || 9 Months || 20+ Projects & 100+ Case studies) Instagram: https://www.facebook.com/unsupportedbrowser Facebook: https://www.facebook.com/unsupportedbrowser Twitter: https://twitter.com/edurekain LinkedIn: https://www.linkedin.com/company/edureka For more information, please write back to us at [email protected] or call us at IND: 9606058406 / US: 18338555775 (toll-free).

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