Low–Code AI : A Practical Project-Driven Introduction to Machine Learning
Book Details
Format
Paperback / Softback
ISBN-10
1098146824
ISBN-13
9781098146825
Publisher
O'Reilly Media
Imprint
O'Reilly Media
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Sep 29th, 2023
Print length
325 Pages
Weight
572 grams
Dimensions
17.80 x 23.50 x 2.00 cms
Product Classification:
Machine learning
Ksh 11,500.00
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This hands-on guide presents three problem-focused ways to learn ML: no code using AutoML, low-code using BigQuery ML, and custom code using scikit-learn and Keras. You'll learn key ML concepts by using real-world datasets with realistic problems.
Take a data-first and use-case driven approach to understanding machine learning and deep learning concepts with Low-Code AI. This hands-on guide presents three problem-focused ways to learn ML: no code using AutoML, low-code using BigQuery ML, and custom code using scikit-learn and Keras. You'll learn key ML concepts by using real-world datasets with realistic problems. Business and data analysts get a project-based introduction to ML/AI using a detailed, data-driven approach: loading and analyzing data, feeding data into an ML model; building, training, and testing; and deploying the model into production. Authors Michael Abel and Gwendolyn Stripling show you how to build machine learning models for retail, healthcare, financial services, energy, and telecommunications. You'll learn how to:Distinguish structured and unstructured data and understand the different challenges they presentVisualize and analyze dataPreprocess data for input into a machine learning modelDifferentiate between the regression and classification supervised learning modelsCompare different machine learning model types and architectures, from no code to low-code to custom trainingDesign, implement, and tune ML modelsExport data to a GitHub repository for data management and governance
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