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Deep Learning Mastery

  • Development
  • Apr 18, 2025
SynopsisDeep Learning Mastery, available at $54.99, has an average ra...
Deep Learning Mastery  No.1

Deep Learning Mastery, available at $54.99, has an average rating of 4.15, with 34 lectures, based on 257 reviews, and has 38362 subscribers.

You will learn about You will learn the complete life cycle of a Data Science Project with Machine Learning and Deep Learning. Learn about different Neural Networks like ANN, CNN and RNN. Learn about pandas, numpy, matplotlib, sklearn, tensorflow that are some of the most important python libraries used in Data Science, ML and DL. You will build practical projects like Gold Price Prediction, Image Class Prediction and Stock Price Prediction using different Neural networks. This course is ideal for individuals who are Anyone who wants to get started with Deep Learning. or Data Science and ML folks who want to learn about Neural Networks and Deep Learning. It is particularly useful for Anyone who wants to get started with Deep Learning. or Data Science and ML folks who want to learn about Neural Networks and Deep Learning.

Enroll now: Deep Learning Mastery

Summary

Title: Deep Learning Mastery

Price: $54.99

Average Rating: 4.15

Number of Lectures: 34

Number of Published Lectures: 34

Number of Curriculum Items: 34

Number of Published Curriculum Objects: 34

Original Price: ?999

Quality Status: approved

Status: Live

What You Will Learn

  • You will learn the complete life cycle of a Data Science Project with Machine Learning and Deep Learning.
  • Learn about different Neural Networks like ANN, CNN and RNN.
  • Learn about pandas, numpy, matplotlib, sklearn, tensorflow that are some of the most important python libraries used in Data Science, ML and DL.
  • You will build practical projects like Gold Price Prediction, Image Class Prediction and Stock Price Prediction using different Neural networks.
  • Who Should Attend

  • Anyone who wants to get started with Deep Learning.
  • Data Science and ML folks who want to learn about Neural Networks and Deep Learning.
  • Target Audiences

  • Anyone who wants to get started with Deep Learning.
  • Data Science and ML folks who want to learn about Neural Networks and Deep Learning.
  • Deep learning is a subfield of machine learning that is focused on building neural networks with many layers, known as deep neural networks. These networks are typically composed of multiple layers of interconnected “neurons” or “units”, which are simple mathematical functions that process information. The layers in a deep neural network are organized in a hierarchical manner, with lower layers processing basic features and higher layers combining these features to represent more abstract concepts.

    Deep learning models are trained using large amounts of data and powerful computational resources, such as graphics processing units (GPUs). Training deep learning models can be computationally intensive, but the models can achieve state-of-the-art performance on a wide range of tasks, including image classification, natural language processing, speech recognition, and many others.

    There are different types of deep learning models, such as feedforward neural networks, convolutional neural networks (CNNs), recurrent neural networks (RNNs), and many more. Each type of model is suited for a different type of problem, and the choice of model will depend on the specific task and the type of data that is available.

    IN THIS COURSE YOU WILL LEARN :

  • Complete Life Cycle of Data Science Project.

  • Important Data Science Libraries like Pandas, Numpy, Matplotlib, Seaborn, sklearn etc

  • How to choose appropriate Machine Learning or Deep Learning Model for your project

  • Machine Learning Fundamentals

  • Regression and Classification in Machine Learning

  • Artificial Neural Networks (ANN)

  • Convolutional Neural Networks (CNN)

  • Recurrent Neural Networks (RNN)

  • Tensorflow and Keras

  • Different projects like Gold Price Prediction, Stock Price Prediction, Image Classification etc

  • ALL THE BEST !!!

    Course Curriculum

    Chapter 1: Introduction

    Lecture 1: Introduction

    Chapter 2: Numpy

    Lecture 1: Introduction to Numpy

    Lecture 2: Creating Arrays

    Lecture 3: Shape and Reshape

    Lecture 4: Indexing

    Lecture 5: Iterating

    Lecture 6: Slicing

    Lecture 7: Searching and Sorting

    Chapter 3: Pandas

    Lecture 1: Introduction to Pandas

    Lecture 2: Pandas Series

    Lecture 3: DataFrame

    Lecture 4: ReadCSV

    Lecture 5: Analyze DataFrames

    Chapter 4: Matplotlib and Seaborn for Data Visualization

    Lecture 1: Introduction to Matplotlib

    Lecture 2: Different Plots in Matplotlib

    Lecture 3: Seaborn

    Chapter 5: Machine Learning Fundamentals

    Lecture 1: Machine Learning Introduction

    Lecture 2: Supervised Machine Learning

    Lecture 3: Unsupervised Machine Learning

    Lecture 4: Train Test Split

    Lecture 5: Machine Learning LifeCycle

    Lecture 6: Working with Missing Values

    Lecture 7: Feature Scaling

    Lecture 8: Feature Encoding

    Lecture 9: Model Evaluation Metrics

    Chapter 6: Artificial Neural Networks (ANN)

    Lecture 1: Introduction to Artificial Neural Networks (ANN)

    Lecture 2: Activation Functions in Artificial Neural Networks

    Lecture 3: Optimizers

    Lecture 4: Gold Price Prediction using Artificial Neural Networks

    Lecture 5: Diabetes Prediction using Artificial Neural Network

    Chapter 7: Convolutional Neural Networks (CNN)

    Lecture 1: CNN Introduction

    Lecture 2: Implementation of CNN using Keras and Tensorflow

    Chapter 8: Recurrent Neural Networks (RNN)

    Lecture 1: RNN Introduction

    Lecture 2: Microsoft Stock Price Prediction using LSTM

    Instructors

  • Deep Learning Mastery  No.2
    Raj Chhabria
    Computer Science Engineer with Specialization in DataScience
  • Rating Distribution

  • 1 stars: 1 votes
  • 2 stars: 10 votes
  • 3 stars: 49 votes
  • 4 stars: 95 votes
  • 5 stars: 102 votes
  • Frequently Asked Questions

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