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Interpreting Machine Learning datasets

Interpreting Machine Learning datasets

In this 2-hour long project-based course, you will learn how to interpret the dataset for machine learning, how different features impact on a mode and how to evaluate them.

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  • 2 hours
  • English
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Predicting the Weather with Artificial Neural Networks

Predicting the Weather with Artificial Neural Networks

In this one hour long project-based course, you will tackle a real-world prediction problem using machine learning.

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  • 2 hours
  • English
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AI For Everyone

AI For Everyone

AI is not only for engineers. If you want your organization to become better at using AI, this is the course to tell everyone--especially your non-technical colleagues--to take.

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  • 11 hours
  • English
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Diabetes Prediction With Pyspark MLLIB

Diabetes Prediction With Pyspark MLLIB

In this 1 hour long project-based course, you will learn to build a logistic regression model using Pyspark MLLIB to classify patients as either diabetic or non-diabetic. We will use the popular Pima Indian Diabetes data set. Our goal is to use a simple logistic regression classifier from the pyspark Machine learning library for diabetes classification. We will be carrying out the entire project on the Google Colab environment with the installation of Pyspark.You will need a free Gmail account to complete this project.

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  • 3 hours
  • English
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Follow a Machine Learning Workflow

Follow a Machine Learning Workflow

Machine learning is not just a single task or even a small group of tasks; it is an entire process, one that practitioners must follow from beginning to end. It is this process—also called a workflow—that enables the organization to get the most useful results out of their machine learning technologies. No matter what form the final product or service takes, leveraging the workflow is key to the success of the business's AI solution.

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  • 20 hours
  • English
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Unsupervised Learning, Recommenders, Reinforcement Learning

Unsupervised Learning, Recommenders, Reinforcement Learning

In the third course of the Machine Learning Specialization, you will: • Use unsupervised learning techniques for unsupervised learning: including clustering and anomaly detection. • Build recommender systems with a collaborative filtering approach and a content-based deep learning method. • Build a deep reinforcement learning model. The Machine Learning Specialization is a foundational online program created in collaboration between DeepLearning.AI and Stanford Online.

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  • 28 hours
  • English
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Data Science Companion

Data Science Companion

The Data Science Companion provides an introduction to data science. You will gain a quick background in data science and core machine learning concepts, such as regression and classification. You’ll be introduced to the practical knowledge of data processing and visualization using low-code solutions, as well as an overview of the ways to integrate multiple tools effectively to solve data science problems. You will then leverage cloud resources from Amazon Web Services to scale data processing and accelerate machine learning model training.

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  • 2 hours
  • English
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Build a Machine Learning Image Classifier with Python

Build a Machine Learning Image Classifier with Python

In this 1-hour long project-based course, you will learn how to build your own Machine Learning Image Classifier using Python and Colab. You will be able to easily load the data, preview it, process and normalize it, then train and test your model! I hope you enjoy the experience! Note: This course works best for learners who are based in the North America region. We’re currently working on providing the same experience in other regions.

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  • 2 hours
  • English
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Machine Learning Rapid Prototyping with IBM Watson Studio

Machine Learning Rapid Prototyping with IBM Watson Studio

An emerging trend in AI is the availability of technologies in which automation is used to select a best-fit model, perform feature engineering and improve model performance via hyperparameter optimization. This automation will provide rapid-prototyping of models and allow the Data Scientist to focus their efforts on applying domain knowledge to fine-tune models. This course will take the learner through the creation of an end-to-end automated pipeline built by Watson Studio’s AutoAI experiment tool, explaining the underlying technology at work as developed by IBM Research.

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  • 9 hours
  • English
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Python Essentials for MLOps

Python Essentials for MLOps

Python Essentials for MLOps (Machine Learning Operations) is a course designed to provide learners with the fundamental Python skills needed to succeed in an MLOps role. This course covers the basics of the Python programming language, including data types, functions, modules and testing techniques. It also covers how to work effectively with data sets and other data science tasks with Pandas and NumPy. Through a series of hands-on exercises, learners will gain practical experience working with Python in the context of an MLOps workflow.

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  • 23 hours
  • English
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Solving ML Regression Problems with AWS AutoGluon

Solving ML Regression Problems with AWS AutoGluon

Hello everyone and welcome to this new hands-on project on Machine Learning Regression with Amazon Web Services (AWS) AutoGluon. In this project, we will train several regression models using a super powerful library known as AutoGluon. AutoGluon is the library behind AWS SageMaker autopilot and it allows for quick prototyping of several powerful models using a few lines of code.

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  • 3 hours
  • English
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Titanic Survival Prediction Using Machine Learning

Titanic Survival Prediction Using Machine Learning

In this 1-hour long project-based course, we will predict titanic survivors’ using logistic regression and naïve bayes classifiers. The sinking of the Titanic is one of the key sad tragedies in history and it took place on April 15th, 1912. The numbers of survivors were low due to lack of lifeboats for all passengers. This practical guided project, we will analyze what sorts of people were likely to survive this tragedy with the power of machine learning. Note: This course works best for learners who are based in the North America region.

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  • 3 hours
  • English
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Deep-Dive into Tensorflow Activation Functions

Deep-Dive into Tensorflow Activation Functions

You've learned how to use Tensorflow. You've learned the important functions, how to design and implement sequential and functional models, and have completed several test projects. What's next? It's time to take a deep dive into activation functions, the essential function of every node and layer of a neural network, deciding whether to fire or not to fire, and adding an element of non-linearity (in most cases). In this 2 hour course-based project, you will join me in a deep-dive into an exhaustive list of activation functions usable in Tensorflow and other frameworks.

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  • 2 hours
  • English
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Prepare for DP-100: Data Science on Microsoft Azure Exam

Prepare for DP-100: Data Science on Microsoft Azure Exam

Microsoft certifications give you a professional advantage by providing globally recognized and industry-endorsed evidence of mastering skills in digital and cloud businesses.​​ In this course, you will prepare to take the DP-100 Azure Data Scientist Associate certification exam. You will refresh your knowledge of how to plan and create a suitable working environment for data science workloads on Azure, run data experiments, and train predictive models.

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  • 9 hours
  • English
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Supervised Machine Learning: Regression

Supervised Machine Learning: Regression

This course introduces you to one of the main types of modelling families of supervised Machine Learning: Regression. You will learn how to train regression models to predict continuous outcomes and how to use error metrics to compare across different models.

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  • 21 hours
  • English
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Machine Learning: Predict Numbers from Handwritten Digits using a Neural Network, Keras, and R

Machine Learning: Predict Numbers from Handwritten Digits using a Neural Network, Keras, and R

In this 1-hour long project-based course, you will learn how to build a Neural Network Model using Keras and the MNIST Data Set.

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  • 2 hours
  • English
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CUDA at Scale for the Enterprise

CUDA at Scale for the Enterprise

This course will aid in students in learning in concepts that scale the use of GPUs and the CPUs that manage their use beyond the most common consumer-grade GPU installations. They will learn how to manage asynchronous workflows, sending and receiving events to encapsulate data transfers and control signals.

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  • English
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Machine Learning: Concepts and Applications

Machine Learning: Concepts and Applications

This course gives you a comprehensive introduction to both the theory and practice of machine learning. You will learn to use Python along with industry-standard libraries and tools, including Pandas, Scikit-learn, and Tensorflow, to ingest, explore, and prepare data for modeling and then train and evaluate models using a wide variety of techniques.

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  • 38 hours
  • English
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Build Regression, Classification, and Clustering Models

Build Regression, Classification, and Clustering Models

In most cases, the ultimate goal of a machine learning project is to produce a model. Models make decisions, predictions—anything that can help the business understand itself, its customers, and its environment better than a human could. Models are constructed using algorithms, and in the world of machine learning, there are many different algorithms to choose from.

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  • 20 hours
  • English
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Support Vector Machines in Python, From Start to Finish

Support Vector Machines in Python, From Start to Finish

In this lesson we will built this Support Vector Machine for classification using scikit-learn and the Radial Basis Function (RBF) Kernel. Our training data set contains continuous and categorical data from the UCI Machine Learning Repository to predict whether or not a patient has heart disease. This course runs on Coursera's hands-on project platform called Rhyme. On Rhyme, you do projects in a hands-on manner in your browser. You will get instant access to pre-configured cloud desktops containing all of the software and data you need for the project.

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  • 2 hours
  • English
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How Entrepreneurs in Emerging Markets can master the Blockchain Technology

How Entrepreneurs in Emerging Markets can master the Blockchain Technology

This course is for entrepreneurs needing to understand the blockchain and distributed ledger technologies that are fundamentally changing how financial and personal data is handled. The course will discuss blockchain as a distributed ledger and introduce distributed consensus as a mechanism to maintain the integrity of the blockchain. The other revolutionary technologies that are changing the world are artificial intelligence and machine learning. You will learn about the three major types of AI algorithms: supervised and unsupervised machine learning, as well as reinforcement learning.

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  • 10 hours
  • English
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Scikit-Learn For Machine Learning Classification Problems

Scikit-Learn For Machine Learning Classification Problems

Hello everyone and welcome to this new hands-on project on Scikit-Learn Library for solving machine learning classification problems. In this project, we will learn how to build and train classifier models using Scikit-Learn library. Scikit-learn is a free machine learning library developed for python. Scikit-learn offers several algorithms for classification, regression, and clustering. Several famous machine learning models are included such as support vector machines, random forests, gradient boosting, and k-means.

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  • 2 hours
  • English
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Machine Learning with Spark on Google Cloud Dataproc

Machine Learning with Spark on Google Cloud Dataproc

This is a self-paced lab that takes place in the Google Cloud console. In this lab you will learn how to implement logistic regression using a machine learning library for Apache Spark running on a Google Cloud Dataproc cluster to develop a model for data from a multivariable dataset.

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  • 2 hours
  • English
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Machine Learning Foundations for Product Managers

Machine Learning Foundations for Product Managers

In this first course of the AI Product Management Specialization offered by Duke University's Pratt School of Engineering, you will build a foundational understanding of what machine learning is, how it works and when and why it is applied. To successfully manage an AI team or product and work collaboratively with data scientists, software engineers, and customers you need to understand the basics of machine learning technology.

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  • 16 hours
  • English
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Introduction to Image Generation - Português Brasileiro

Introduction to Image Generation - Português Brasileiro

Neste curso, apresentamos os modelos de difusão, uma família de modelos de machine learning promissora no campo da geração de imagens. Os modelos de difusão são baseados na física, mais especificamente na termodinâmica. Nos últimos anos, eles se popularizaram no setor e nas pesquisas. Esses modelos servem de base para ferramentas e modelos avançados de geração de imagem no Google Cloud. Este curso é uma introdução à teoria dos modelos de difusão e como eles devem ser treinados e implantados na Vertex AI.

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  • English
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