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Artificial Intelligence for Drug Development, Precision Medicine, and Healthcare [Hardcover]

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  • Category: Books (Business & Economics)
  • Author:  Chang, Mark
  • Author:  Chang, Mark
  • ISBN-10:  0367362929
  • ISBN-10:  0367362929
  • ISBN-13:  9780367362928
  • ISBN-13:  9780367362928
  • Publisher:  Chapman and Hall/CRC
  • Publisher:  Chapman and Hall/CRC
  • Pages:  368
  • Pages:  368
  • Binding:  Hardcover
  • Binding:  Hardcover
  • Pub Date:  01-May-2020
  • Pub Date:  01-May-2020
  • SKU:  0367362929-11-MPOD
  • SKU:  0367362929-11-MPOD
  • Item ID: 105553913
  • Seller: ShopSpell
  • Ships in: 2 business days
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  • Delivery by: Sep 30 to Oct 02
  • Notes: Brand new books. Buy now.
1. Overview of Modern Artificial Intelligence. 2. Classic Statistics and Modern Machine Learning. 3. Similarity Principle- Fundamental Principle of All Sciences. 4. Similarity-Principle-Based Artificial Intelligence. 5. Artificial Neural Network. 6. Deep Learning Neural Network. 7. Kernel Methods. 8. Decision Tree and Ensemble Methods. 9. Bayesian Learning Approach. 10. Unsupervised Learning. 11. Reinforcement Learning. 12. Swarm and Evolutionary Intelligence. 13. Applications of AI in Medical Science and Drug Development. 14. Future Perspectives-Artificial General Intelligence.

Artificial Intelligence for Drug Development, Precision Medicine, and Healthcare covers exciting developments at the intersection of computer science and statistics. 

Artificial Intelligence for Drug Development, Precision Medicine, and Healthcare covers exciting developments at the intersection of computer science and statistics. While much of machine-learning is statistics-based, achievements in deep learning for image and language processing rely on computer sciences use of big data. Aimed at those with a statistical background who want to use their strengths in pursuing AI research, the book:

?       Covers broad AI topics in drug development, precision medicine, and healthcare.

?       Elaborates on supervised, unsupervised, reinforcement, and evolutionary learning methods.

?       Introduces the similarity principle and related AI methods for both big and small data problems.

?       Offers a balance of statistical and algorithm-based approaches to AI.

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