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Description
Veridical Data ScienceBy: Bin Yu, Rebecca L. Barter Series: Adaptive Computation and Machine Learning series Using real world data case studies, this innovative and accessible textbook introduces an actionable framework for conducting trustworthy data science. Most textbooks present data science as a linear analytic process involving a set of statistical and computational techniques without accounting for the challenges intrinsic to real world applications. Veridical Data
By: Bin Yu, Rebecca L. Barter | Series: Adaptive Computation and Machine Learning seriesUsing real-world data case studies, this innovative and accessible textbook introduces an actionable framework for conducting trustworthy data science.
Most textbooks present data science as a linear analytic process involving a set of statistical and computational techniques without accounting for the challenges intrinsic to real-world applications. Veridical Data Science, by contrast, embraces the reality that most projects begin with an ambiguous domain question and messy data; it acknowledges that datasets are mere approximations of reality while analyses are mental constructs.
Bin Yu and Rebecca Barter employ the innovative Predictability, Computability, and Stability (PCS) framework to assess the trustworthiness and relevance of data-driven results relative to three sources of uncertainty that arise throughout the data science life cycle: the human decisions and judgment calls made during data collection, cleaning, and modeling. By providing real-world data case studies, intuitive explanations of common statistical and machine learning techniques, and supplementary R and Python code, Veridical Data Science offers a clear and actionable guide for conducting responsible data science. Requiring little background knowledge, this lucid, self-contained textbook provides a solid foundation and principled framework for future study of advanced methods in machine learning, statistics, and data science.
- Presents the Predictability, Computability, and Stability (PCS) methodology for producing trustworthy data-driven results
- Teaches how a data science project should be conducted from beginning to end, including extensive discussion of the data scientist's decision-making process
- Cultivates critical thinking throughout the entire data science life cycle
- Provides practical examples and illuminating case studies of real-world data analysis problems with associated code, exercises, and solutions
- Suitable for advanced undergraduate and graduate students, domain scientists, and practitioners
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★★★★★ 1
Very dangerous for chewers!!!
Color: Rubber Chew Toy, Size: Large
My dog was chewing/swallowing the hard rubber within seconds of having this "toy"!!! Not safe, sturdy, no play attraction; only desire was to consume!!!
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Reviewed in the United States on March 16, 2026
★★★★★ 5
Get one!
Color: Rubber Chew Toy, Size: Large, Color: Rubber Chew Toy, Size: Large
This was my puppy’s fav toy for the longest time. Not too heavy and is the right amount of tough for a chewing teething puppy. Cute toy that’s easy to chew and safe for a teething puppy it’s not loud and lasts. Worth the price.
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Reviewed in the United States on November 14, 2025
★★★★★ 1
Terrible item
My dog has already torn up one of the dogs. Just gave it to her today. I do not recommend this item
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Reviewed in the United States on June 13, 2026
★★★★★ 5
Soft and durable !!
These cute toys have held up better than any of the other 20 toys Max has had!!!
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Reviewed in the United States on June 14, 2026
★★★★★ 1
Cute but tore apart quickly
They’re really cute. But, my small dog tore them apart in about 5 minutes.
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Reviewed in the United States on June 12, 2026