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Statistics Every Programmer Needs: Practical Python implementations and quantitative methods
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Statistics Every Programmer Needs helps you make better, data-informed decisions by teaching key statistical methods like regression, simulation, and decision trees.
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- Put statistics into practice with Python!Data-driven decisions rely on statistics. Statistics Every Programmer Needs introduces the statistical and quantitative methods that will help you go beyond “gut feeling” for tasks like predicting stock prices or assessing quality control, with examples using the rich tools of the Python ecosystem.Statistics Every Programmer Needs will teach you how to:Apply foundational and advanced statistical techniquesBuild predictive models and simulationsOptimize decisions under constraintsInterpret and validate results with statistical rigorImplement quantitative methods using PythonIn this hands-on guide, stats expert Gary Sutton blends the theory behind these statistical techniques with practical Python-based applications, offering structured, reproducible, and defensible methods for tackling complex decisions. Well-annotated and reusable Python code listings illustrate each method, with examples you can follow to practice your new skills.About the technologyWhether you’re analyzing application performance metrics, creating relevant dashboards and reports, or immersing yourself in a numbers-heavy coding project, every programmer needs to know how to turn raw data into actionable insight. Statistics and quantitative analysis are the essential tools every programmer needs to clarify uncertainty, optimize outcomes, and make informed choices.About the bookStatistics Every Programmer Needs teaches you how to apply statistics to the everyday problems you’ll face as a software developer. Each chapter is a new tutorial. You’ll predict ultramarathon times using linear regression, forecast stock prices with time series models, analyze system reliability using Markov chains, and much more. The book emphasizes a balance between theory and hands-on Python implementation, with annotated code and real-world examples to ensure practical understanding and adaptability across industries.What's insideProbability basics and distributionsRandom variablesRegressionDecision trees and random forestsTime series analysisLinear programmingMonte Carlo and Markov methods and much moreAbout the readerExamples are in Python.About the authorGary Sutton is a business intelligence and analytics leader and the author of Statistics Slam Dunk: Statistical analysis with R on real NBA data.Table of Contents1 Laying the groundwork2 Exploring probability and counting3 Exploring probability distributions and conditional probabilities4 Fitting a linear regression5 Fitting a logistic regression6 Fitting a decision tree and a random forest7 Fitting time series models8 Transforming data into decisions with linear programming9 Running Monte Carlo simulations10 Building and plotting a decision tree11 Predicting future states with Markov analysis12 Examining and testing naturally occurring number sequences13 Managing projects14 Visualizing quality control
| Publisher | Manning |
| Publication date | September 9, 2025 |
| Language | English |
| Print length | 448 pages |
| ISBN-10 | 1633436055 |
| ISBN-13 | 978-1633436053 |
| Item Weight | 1.75 pounds (790 grams) |
| Dimensions | 7.38 x 1 x 9.25 inches (18.7 x 2.5 x 23.5 cm) |
Who Should Buy?
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Data Analysts
Essential for understanding data science and statistical analysis, enhancing skills in data-driven decision-making.
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Software Developers
Helps to implement algorithms that rely on statistical methods, improving software functionality and efficiency.
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Machine Learning Practitioners
Critical for grasping algorithms and techniques necessary for building and fine-tuning machine learning models.
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Absolute Beginners
Users with no programming background may find concepts difficult without prior knowledge of statistics or programming.
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Data Mining Editorial Review
Statistics Every Programmer Needs: Practical Python implementations and quantitative methods offers both foundational and advanced statistical concepts tailored to programmers and data scientists. The book efficiently covers topics including probability distributions, regression analysis, and machine learning techniques with Python libraries like pandas and NumPy, making it a practical resource for implementing statistical models. Readers appreciate that the text starts with essential concepts before progressing to complex ones, ensuring a thorough understanding. Moreover, the unique projects and hands-on approach provide real-world applications, further enhancing its value for both novice and experienced practitioners. With insightful sections on linear programming and decision-making under uncertainty, this book serves as a comprehensive reference for those looking to improve their statistical modeling skills.
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Pros
- Comprehensive coverage from basics to advanced techniques
- Practical Python implementation using familiar libraries
- Hands-on approach with real-world examples
- Clear explanations of complex statistical concepts
- Useful for both beginners and experienced professionals
Cons
- Could benefit from additional topics like Gradient Boosted Trees
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Features & Benefits
- Transform statistics from a challenge into a crucial skill with practical Python examples.
- Learn key statistical methods, including regression, simulation, and decision trees.
- Enhance decision-making skills for real-world programming scenarios.
- Access structured and reproducible methods for complex decisions.
- Includes well-annotated and reusable Python code examples.
- Perfect for analyzing performance metrics and creating actionable insights.
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