Practical Supervised and Unsupervised Learning with Python



Practical Supervised and Unsupervised Learning with Python

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What you'll learn
  • Explore various Python libraries, including NumPy, Pandas, scikit-learn, Matplotlib, seaborn and Plotly.
  • Gain in-depth knowledge of Principle Component Analysis and use it to effectively manage noisy datasets.
  • Discover the power of PCA and K-Means for discovering patterns and customer profiles by analyzing wholesale product data
  • Visualize, interpret, and evaluate the quality of the analysis done using Unsupervised Learning.
  • Work …
Duration 8 Hours 58 Minutes
Paid

Self paced

Intermediate Level

English (US)

32

Rating 0 out of 5 (0 ratings in Udemy)

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