Kaggle Master with Heart Attack Prediction Kaggle Project

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Last updated on November 4, 2024 6:07 pm
Kaggle Master with Heart Attack Prediction Kaggle Project
Kaggle Master with Heart Attack Prediction Kaggle Project

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Kaggle Master with Heart Attack Prediction Kaggle Project

★★★★★
$79.99  in stock
Udemy.com
as of November 4, 2024 6:07 pm

Kaggle is Machine Learning & Data Science community. Become Kaggle master with real machine learning kaggle project

Created by: Oak Academy
Web & Mobile Development, IOS, Android, Ethical Hacking, IT
Created by: OAK Academy Team
instructor
Rating:4.75 (78reviews)     781students enrolled

What Will I Learn?

  • Kaggle, a subsidiary of Google LLC, is an online community of data scientists and machine learning practitioners.
  • Kaggle is a platform where data scientists can compete in machine learning challenges. These challenges can be anything from predicting housing prices to detect
  • Machine learning describes systems that make predictions using a model trained on real-world data.
  • Machine learning isn’t just useful for predictive texting or smartphone voice recognition. Machine learning is constantly being applied to new industries and ne
  • Data science includes preparing, analyzing, and processing data. It draws from many scientific fields, and as a science, it progresses by creating new algorithm
  • Data science application is an in-demand skill in many industries worldwide — including finance, transportation, education, manufacturing, human resources
  • Data science uses algorithms to understand raw data. The main difference between data science and traditional data analysis is its focus on prediction.
  • Data Scientists use machine learning to discover hidden patterns in large amounts of raw data to shed light on real problems.
  • What is Kaggle?
  • Registering on Kaggle and Member Login Procedures
  • Getting to Know the Kaggle Homepage
  • Competitions on Kaggle
  • Datasets on Kaggle
  • Examining the Code Section in Kaggle
  • What is Discussion on Kaggle?
  • Courses in Kaggle
  • Ranking Among Users on Kaggle
  • Blog and Documentation Sections
  • User Page Review on Kaggle
  • Treasure in The Kaggle
  • Publishing Notebooks on Kaggle
  • What Should Be Done to Achieve Success in Kaggle?
  • First Step to the Project
  • Notebook Design to be Used in the Project
  • Examining the Project Topic
  • Recognizing Variables in Dataset
  • Required Python Libraries
  • Loading the Dataset
  • Initial analysis on the dataset
  • Examining Missing Values
  • Examining Unique Values
  • Separating variables (Numeric or Categorical)
  • Examining Statistics of Variables
  • Numeric Variables (Analysis with Distplot)
  • Categoric Variables (Analysis with Pie Chart)
  • Examining the Missing Data According to the Analysis Result
  • Numeric Variables – Target Variable (Analysis with FacetGrid)
  • Categoric Variables – Target Variable (Analysis with Count Plot)
  • Examining Numeric Variables Among Themselves (Analysis with Pair Plot)
  • Feature Scaling with the Robust Scaler Method for New Visualization
  • Creating a New DataFrame with the Melt() Function
  • Numerical - Categorical Variables (Analysis with Swarm Plot)
  • Numerical - Categorical Variables (Analysis with Box Plot)
  • Relationships between variables (Analysis with Heatmap)
  • Dropping Columns with Low Correlation
  • Visualizing Outliers
  • Dealing with Outliers
  • Determining Distributions of Numeric Variables
  • Transformation Operations on Unsymmetrical Data
  • Applying One Hot Encoding Method to Categorical Variables
  • Feature Scaling with the Robust Scaler Method for Machine Learning Algorithms
  • Separating Data into Test and Training Set
  • Logistic Regression
  • Cross Validation for Logistic Regression Algorithm
  • Roc Curve and Area Under Curve (AUC) for Logistic Regression Algorithm
  • Hyperparameter Optimization (with GridSearchCV) for Logistic Regression Algorithm
  • Decision Tree Algorithm
  • Support Vector Machine Algorithm
  • Random Forest Algorithm
  • Hyperparameter Optimization (with GridSearchCV) for Random Forest Algorithm
  • Project Conclusion and Sharing

Requirements

  • Desire to learn about Kaggle
  • Watch the course videos completely and in order
  • Internet Connection.
  • Any device such as mobile phone, computer, or tablet where you can watch the lesson.
  • Learning determination and patience.
  • LIFETIME ACCESS, course updates, new content, anytime, anywhere, on any device
  • Nothing else! It’s just you, your computer and your ambition to get started today
  • Desire to improve Data Science, Machine Learning, Python Portfolio with Kaggle
  • Free software and tools used during the course

Target audience

  • Anyone who wants to find and publish data sets, explore and build models in a web-based data-science environment, work with other data scientists and machine learning engineers, and enter competitions to solve data science challenges.
  • For those who want to compete in data science and machine learn by learning about Kaggle
  • Anyone who wants to learn Kaggle
  • Those who want to improve their CV in Data Science, Machine Learning, Python with Kaggle
  • Anyone who is interested in Artificial Intelligence, Machine Learning, Deep Learning, in short Data Science
  • Anyone who have a career goal in Data Science
  • Anyone who is interested in Artificial Intelligence, Machine Learning, Deep Learning, in short Data Science

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