SearcharxivSearch

arXiv subjects

Jim Albert

Publications and source records attributed to Jim Albert.

5 recordsLinked to original sources

A Statistical Model of Serve Return Impact Patterns in Professional Tennis

The spread in the use of tracking systems in sport has made fine-grained spatiotemporal analysis a primary focus of an emerging sports analytics industry. Recently publicized tracking data for men's professional tennis allows for the first detailed spatial analysis of return impact. Mixture models are an appealing model-based framework for spatial analysis in sport, where latent variable discovery is often of primary interest. Although finite mixture models have the advantages of interpretability and scalability, most implementations assume standard parametric distributions for outcomes conditioned on latent variables. In this paper, we present a more flexible alternative that allows the latent conditional distribution to be a mixed member of finite Gaussian mixtures. Our model was motivated by our efforts to describe common styles of return impact location of professional tennis players and is the reason we name the approach a 'latent style allocation' model. In a fully Bayesian implementation, we apply the model to 142,803 return points played by 141 top players at Association of Tennis Professional events between 2018 and 2020 and show that the latent style allocation improves predictive performance over a finite Gaussian mixture model and identifies six unique impact styles on the first and second serve return.

stat.ME

A Bayesian Redesign of the First Probability/Statistics Course

The traditional calculus-based introduction to statistical inference consists of a semester of probability followed by a semester of frequentist inference. Cobb (2015) challenges the statistical education community to rethink the undergraduate statistics curriculum. In particular, he suggests that we should focus on two goals: making fundamental concepts accessible and minimizing prerequisites to research. Using five underlying principles of Cobb, we describe a new calculus-based introduction to statistics based on simulation-based Bayesian computation.

stat.OT

Online Statistics Teaching and Learning

For statistics courses at all levels, teaching and learning online poses challenges in different aspects. Particular online challenges include how to effectively and interactively conduct exploratory data analyses, how to incorporate statistical programming, how to include individual or team projects, and how to present mathematical derivations efficiently and effectively. This article draws from the authors' experience with seven different online statistics courses to address some of the aforementioned challenges. One course is an online exploratory data analysis course taught at Bowling Green State University. A second course is an upper level Bayesian statistics course taught at Vassar College and shared among 10 liberal arts colleges through a hybrid model. We alo describes a five-course MOOC specialization on Coursera, offered by Duke University.

stat.OT

Bayesian Computing in the Undergraduate Statistics Curriculum

Bayesian statistics has gained great momentum since the computational developments of the 1990s. Gradually, advances in Bayesian methodology and software have made Bayesian techniques much more accessible to applied statisticians and, in turn, have potentially transformed Bayesian education at the undergraduate level. This article provides an overview on the various options for implementing Bayesian computational methods motivated to achieve particular learning outcomes. The advantages and disadvantages of each computational method are described based on the authors' experience in using these methods in the classroom. The goal is to present guidance on the choice of computation for the instructors who are introducing Bayesian methods in their undergraduate statistics curriculum.

stat.CO

Improved Component Predictions of Batting Measures

Standard measures of batting performance such as a batting average and an on-base percentage can be decomposed into component rates such as strikeout rates and home run rates. The likelihood of hitting data for a group of players can be expressed as a product of likelihoods of the component probabilities and this motivates the use of random effects models to estimate the groups of component rates. This methodology leads to accurate estimates at hitting probabilities and good predictions of performance for following seasons. This approach is also illustrated for on-base probabilities and FIP abilities of pitchers.

stat.AP