Applied Machine Learning

2.020 students enrolled
This specialization is intended for post-graduate students seeking to develop practical machine-learning skills applicable across various domains. Through three comprehensive courses, learners will explore core techniques including supervised learning, ensemble methods, regression analysis, unsupervised learning, and neural networks. The courses emphasize hands-on learning, providing you with the opportunity to apply machine learning to real-world problems like image classification, data feature extraction, and model optimization. You will dive into advanced topics such as convolutional neural networks (CNNs), reinforcement learning, and apriori analysis, learning to leverage the PyTorch framework for deep learning tasks. By the end of the specialization, you will be well-equipped to handle complex machine learning challenges in fields like computer vision and data processing, making you a valuable asset in industries requiring advanced predictive modeling, AI-driven solutions, and data-driven decision-making. This specialization is designed to build both theoretical knowledge and practical skills to thrive in the ever-evolving tech landscape.
CERTIFICATEKatılım Sertifikası
FORMAT100% Online
DURATION3 ay

What you'll learn

  • Applied Machine Learning
  • Data Preprocessing
  • Supervised Learning
  • Model Evaluation
  • Data Cleansing
  • Data Transformation
  • Classification Algorithms
  • Feature Engineering
  • Regression Analysis
  • Data Processing
  • Data Integration
  • Model Training

Course Content

3 topics
  1. Kurs 1 Applied Machine Learning: Techniques and Applications
  2. Kurs 2 Advanced Methods in Machine Learning Applications
  3. Kurs 3 Mastering Neural Networks and Model Regularization

Details

  • ProviderJohns Hopkins University
  • TypeCourse
  • CategoryData Science & AI
  • LevelIntermediate
  • Duration3 ay
  • LanguageEnglish

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Melis Gülsar
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