By completing this course, learners will be able to prepare datasets in R, apply statistical and visualization techniques, build regression models, and design, run, and evaluate neural networks. The course begins with data preparation essentials, including working with dataframes, descriptive statistics, and environment setup, ensuring learners can confidently manage their workflow. It then advances to data visualization, where learners generate line graphs, scatter plots, and advanced visualizations to interpret patterns and relationships. Regression modeling concepts are introduced to provide a solid predictive foundation. Finally, the course transitions to deep learning, guiding learners through dataset preparation, neural network coding, multilayer perceptron (MLP) architecture, and predictive testing.

Deep Learning with R: Build & Predict Neural Networks

位教师:EDUCBA
访问权限由 New York State Department of Labor 提供
您将学到什么
Prepare datasets, apply stats, and create visualizations in R.
Build and evaluate regression models for predictive analysis.
Design, run, and test neural networks using R and MLPs.
您将获得的技能
- Statistical Methods
- Predictive Analytics
- Model Training
- Model Evaluation
- Plot (Graphics)
- Scatter Plots
- Data Visualization Software
- Deep Learning
- Artificial Neural Networks
- Regression Analysis
- Statistical Visualization
- Statistical Programming
- Machine Learning Methods
- Data Wrangling
- Data Manipulation
- Descriptive Statistics
- Predictive Modeling
- Data Science
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要了解的详细信息

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作业
13 项作业
授课语言:英语(English)
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