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Exploratory Data Analysis for the Public Sector with ggplot

Exploratory Data Analysis for the Public Sector with ggplot

Learn about the core pillars of the public sector and the core functions of public administration through statistical Exploratory Data Analysis (EDA). Learn analytical and technical skills using the R programming language to explore, visualize, and present data, with a focus on equity and the administrative functions of planning and reporting. Technical skills in this course will focus on the ggplot2 library of the tidyverse, and include developing bar, line, and scatter charts, generating trend lines, and understanding histograms, kernel density estimations, violin plots, and ridgeplots.

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  • 18 ساعات
  • الإنجليزية
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Health Data Science Foundation

Health Data Science Foundation

This course is intended for persons involved in machine learning who are interested in medical applications, or vice versa, medical professionals who are interested in the methods modern computer science has to offer to their field. We will cover health data analysis, different types of neural networks, as well as training and application of neural networks applied on real-world medical scenarios. We cover deep learning (DL) methods, healthcare data and applications using DL methods.

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  • 24 ساعات
  • الإنجليزية
الاشتراك الشهري
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Data Analysis in Python: Using Pandas DataFrames

Data Analysis in Python: Using Pandas DataFrames

This Guided Project Data Analysis in Python: Using Pandas DataFrames is for those who are interested in using python for data science in practice. In this 90-minute Guided Project, learn how to import and visualize an IMDb data set in Pandas. You will learn how to import JSON data into a Pandas Dataframe and apply the data preparation process to ensure the data is ready for analysis. To achieve this, we will explore the famous IMDb Movies dataset. We will start with importing our JSON data into a Pandas data frame.

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  • Self Paced
  • 2 ساعات
  • الإنجليزية
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Python Programming Fundamentals

Python Programming Fundamentals

This introductory course is designed for beginners and individuals with limited programming experience who want to embark on their software development or data science journey using Python. Throughout the course, learners will gain a solid understanding of algorithmic thinking, Python syntax, code testing, debugging techniques, and modular code development--essential skills for a successful career in software engineering, development, or data science.

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  • 24 ساعات
  • الإنجليزية
الاشتراك الشهري
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Data Analysis and Visualization

Data Analysis and Visualization

By the end of this course, learners are provided a high-level overview of data analysis and visualization tools, and are prepared to discuss best practices and develop an ensuing action plan that addresses key discoveries. It begins with common hurdles that obstruct adoption of a data-driven culture before introducing data analysis tools (R software, Minitab, MATLAB, and Python). Deeper examination is spent on statistical process control (SPC), which is a method for studying variation over time.

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  • 11 ساعات
  • الإنجليزية
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How To Create Effective Metrics

How To Create Effective Metrics

By the end of this project, you will be able to create effective metrics for a business. You will learn what metrics are, how to create benchmarks, and how to build a system for sharing and evaluating metrics. Excel is a great tool to use if you have plans to adopt a data-driven approach to making business decisions. We will be sharpening our data analysis tools in Excel during this project.
This is a great tool to use if you have plans to use data, analytics, and or metrics to improve your business functions and decision making.

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  • Self Paced
  • 2 ساعات
  • الإنجليزية
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An Introduction to Programming using Python

An Introduction to Programming using Python

Maximise your employability, by learning the basics of coding in Python. Python is a versatile programming language used for developing websites and software, task automation, data analysis and more. In this course, you'll embark on an exciting journey into the world of Python and gain valuable skills that will enable you to start thinking about a career in programming. Through exercises and practical projects, you will gain confidence and deepen your understanding of coding in Python.

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  • Self Paced
  • 9 ساعات
  • الإنجليزية
الاشتراك الشهري
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XG-Boost 101: Used Cars Price Prediction

XG-Boost 101: Used Cars Price Prediction

In this hands-on project, we will train 3 Machine Learning algorithms namely Multiple Linear Regression, Random Forest Regression, and XG-Boost to predict used cars prices. This project can be used by car dealerships to predict used car prices and understand the key factors that contribute to used car prices.
By the end of this project, you will be able to:
- Understand the applications of Artificial Intelligence and Machine Learning techniques in the banking industry
- Understand the theory and intuition behind XG-Boost Algorithm

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  • Self Paced
  • 3 ساعات
  • الإنجليزية
الاشتراك الشهري
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Data Analysis in R: Predictive Analysis with Regression

Data Analysis in R: Predictive Analysis with Regression

Increasingly, predictive analytics is shaping companies' decisions about limited resources. In this project, you will build a regression model to make predictions. We will start this hands-on project by exploring the dataset and creating visualizations for the dataset. By the end of this 2-hour-long project, you will be able to build and interpret the result of a simple linear regression model in R. Also, you will learn how to perform model assessments and check for assumptions using diagnostic plots.

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  • Self Paced
  • 3 ساعات
  • الإنجليزية
الاشتراك الشهري
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Perform basic data analysis tasks using Java streams

Perform basic data analysis tasks using Java streams

In this 1-hour long project-based course, you will learn how to create a Java Stream object based on an array of data, and understand the distinction between terminal and intermediate stream operations. You will iterate through the data stream using the forEach method, and use a range of Stream methods to perform logical operations on the data stream. You will perform basic statistical calculations on a stream of numeric data, and string operations on a stream of string data. You will learn how to use the map, filter, and reduce Stream methods.

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  • 3 ساعات
  • الإنجليزية
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Measuring Total Data Quality

Measuring Total Data Quality

By the end of this second course in the Total Data Quality Specialization, learners will be able to: 1. Learn various metrics for evaluating Total Data Quality (TDQ) at each stage of the TDQ framework. 2. Create a quality concept map that tracks relevant aspects of TDQ from a particular application or data source. 3. Think through relative trade-offs between quality aspects, relative costs and practical constraints imposed by a particular project or study. 4. Identify relevant software and related tools for computing the various metrics. 5.

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  • 9 ساعات
  • الإنجليزية
الاشتراك الشهري
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Survey Data Collection and Analytics Project (Capstone)

Survey Data Collection and Analytics Project (Capstone)

The Capstone Project offers qualified learners to the opportunity to apply their knowledge by analyzing and comparing multiple data sources on the same topic. Students will develop a research question, access and analyze relevant data, and critically examine the quality of each data source.

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  • Self Paced
  • 14 ساعات
  • الإنجليزية
الاشتراك الشهري
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Predict Career Longevity for NBA Rookies using Scikit-learn

Predict Career Longevity for NBA Rookies using Scikit-learn

By the end of this project, you will be able to apply data analysis to predict career longevity for NBA Rookie using python. Determining whether a player’s career will flourish or not became a science based on the player’s stats. Throughout the project, you will be able to analyze players’ stats and build your own binary classification model using Scikit-learn to predict if the NBA rookie will last for 5 years in the league if provided with some stats such as Games played, assists, steals and turnovers …. etc.

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  • Self Paced
  • 3 ساعات
  • الإنجليزية
الاشتراك الشهري
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Data Visualization with R

Data Visualization with R

In this course, you will learn the Grammar of Graphics, a system for describing and building graphs, and how the ggplot2 data visualization package for R applies this concept to basic bar charts, histograms, pie charts, scatter plots, line plots, and box plots. You will also learn how to further customize your charts and plots using themes and other techniques. You will then learn how to use another data visualization package for R called Leaflet to create map plots, a unique way to plot data based on geolocation data.

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  • Self Paced
  • 12 ساعات
  • الإنجليزية
الاشتراك الشهري
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Data Analysis Using Pyspark

Data Analysis Using Pyspark

One of the important topics that every data analyst should be familiar with is the distributed data processing technologies. As a data analyst, you should be able to apply different queries to your dataset to extract useful information out of it. but what if your data is so big that working with it on your local machine is not easy to be done. That is when the distributed data processing and Spark Technology will become handy.

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  • Self Paced
  • 3 ساعات
  • الإنجليزية
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Harnessing the Power of Data with Power BI

Harnessing the Power of Data with Power BI

This course forms part of the Microsoft Power BI Analyst Professional Certificate. This Professional Certificate consists of a series of courses that offers a good starting point for a career in data analysis using Microsoft Power BI. In this course, you’ll learn about the role of a data analyst and the main stages involved in the data analysis process with a focus on applying them using Microsoft Power BI.

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  • Self Paced
  • 16 ساعات
  • الإنجليزية
الاشتراك الشهري
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Mathematical Biostatistics Boot Camp 2

Mathematical Biostatistics Boot Camp 2

Learn fundamental concepts in data analysis and statistical inference, focusing on one and two independent samples.

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  • 12 ساعات
  • الإنجليزية
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Go Beyond the Numbers: Translate Data into Insights

Go Beyond the Numbers: Translate Data into Insights

This is the third of seven courses in the Google Advanced Data Analytics Certificate. In this course, you’ll learn how to find the story within data and tell that story in a compelling way. You'll discover how data professionals use storytelling to better understand their data and communicate key insights to teammates and stakeholders. You'll also practice exploratory data analysis and learn how to create effective data visualizations.

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  • Self Paced
  • 33 ساعات
  • الإنجليزية
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Hierarchical relational data analysis using python

Hierarchical relational data analysis using python

By the end of this project you will learn how to analyze Hierarchical Data. we are going to work with a dataset related to Mexico toy sales. The dataset contains some hierarchical data about different products sold in different stores in different cities in Mexico. we are going to load this data and after some preprocessing steps, we are going to learn how to analyze this data using different visualization techniques. During this project we are going to learn about a very important concept called Data Granularity.

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  • 2 ساعات
  • الإنجليزية
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Google Sheets - Advanced Topics

Google Sheets - Advanced Topics

This course builds on some of the concepts covered in the earlier Google Sheets course. In this course, you will learn how to apply and customize themes In Google Sheets, and explore conditional formatting options. You will learn about some of Google Sheets’ advanced formulas and functions. You will explore how to create formulas using functions, and you will also learn how to reference and validate your data in a Google Sheet. Spreadsheets can hold millions of numbers, formulas, and text. Making sense of all of that data can be difficult without a summary or visualization.

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  • Self Paced
  • 3 ساعات
  • الإنجليزية
الاشتراك الشهري
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SQL for Data Science Capstone Project

SQL for Data Science Capstone Project

Data science is a dynamic and growing career field that demands knowledge and skills-based in SQL to be successful. This course is designed to provide you with a solid foundation in applying SQL skills to analyze data and solve real business problems. Whether you have successfully completed the other courses in the Learn SQL Basics for Data Science Specialization or are taking just this course, this project is your chance to apply the knowledge and skills you have acquired to practice important SQL querying and solve problems with data.

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  • 35 ساعات
  • الإنجليزية
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Big Data Analysis with Scala and Spark (Scala 2 version)

Big Data Analysis with Scala and Spark (Scala 2 version)

Manipulating big data distributed over a cluster using functional concepts is rampant in industry, and is arguably one of the first widespread industrial uses of functional ideas. This is evidenced by the popularity of MapReduce and Hadoop, and most recently Apache Spark, a fast, in-memory distributed collections framework written in Scala. In this course, we'll see how the data parallel paradigm can be extended to the distributed case, using Spark throughout.

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  • Self Paced
  • 28 ساعات
  • الإنجليزية
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Empathy, Data, and Risk

Empathy, Data, and Risk

Risk Management and Innovation develops your ability to conduct empathy-driven and data-driven analysis in the domain of risk management. This course introduces empathy as a professional competency. It explains the psychological processes that inhibit empathy-building and the processes that determine how organizational stakeholders respond to risk. The course guides you through techniques to gather risk information by understanding a stakeholder’s thoughts, feelings, and goals. These techniques include interviewing, brainstorming, and empathy mapping.

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  • 13 ساعات
  • الإنجليزية
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Mastering Data Analysis with Pandas: Learning Path Part 4

Mastering Data Analysis with Pandas: Learning Path Part 4

In this structured series of hands-on guided projects, we will master the fundamentals of data analysis and manipulation with Pandas and Python. Pandas is a super powerful, fast, flexible and easy to use open-source data analysis and manipulation tool. This guided project is the fourth of a series of multiple guided projects (learning path) that is designed for anyone who wants to master data analysis with pandas. 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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  • 3 ساعات
  • الإنجليزية
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Machine Learning with PySpark: Data Analysis using SQL

Machine Learning with PySpark: Data Analysis using SQL

This Guided Project is for beginning Python Developers. In this 1-hour long project-based course, you will learn how to Describe PySpark and Machine Learning, Use PySpark to Capture data, Use PySpark SQL to observe the data, Use PySpark MLlib to prepare training data, and Use PySpark MLlib to predict an outcome. To achieve this, we will work through using PySpark to read data into a PySpark Dataframe, View the Data using PysPark SQL, Prepare the Test and Training data using a heart disease data set, and attempt to predict heart disease using independent variables.

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  • Self Paced
  • 3 ساعات
  • الإنجليزية
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