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Your search for courses for 22/SP and with code: MATHAPPLIED found 5 courses.
MATH 241.00 Ordinary Differential Equations 6 credits
Closed: Size: 30, Registered: 30, Waitlist: 0
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12:30pm1:40pm | 12:30pm1:40pm | 1:10pm2:10pm |
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Prerequisite: Mathematics 232 or instructor permission
MATH 295.00 Mathematics of Climate 6 credits
Closed: Size: 25, Registered: 25, Waitlist: 0
M | T | W | TH | F |
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1:15pm3:00pm | 1:15pm3:00pm |
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An introduction to mathematical methods for studying planetary climate. The focus will be on low-dimensional models, whose simplicity allows insight into fundamental mechanisms of climate change. We will use tools from algebra, geometry, and calculus to study topics including energy balance, greenhouse gas forcing, and ice-albedo feedback. This course will count towards the Applied Math area of the math major.
Prerequisite: Mathematics 120 or 211
Sophomore Priority
MATH 341.00 Partial Differential Equations 6 credits
Closed: Size: 25, Registered: 26, Waitlist: 0
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1:50pm3:00pm | 1:50pm3:00pm | 2:20pm3:20pm |
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An introduction to partial differential equations with emphasis on the heat equation, wave equation, and Laplace's equation. Topics include the method of characteristics, separation of variables, Fourier series, Fourier transforms and existence/uniqueness of solutions.
Prerequisite: Mathematics 241
STAT 250.00 Introduction to Statistical Inference 6 credits
Open: Size: 28, Registered: 21, Waitlist: 0
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12:30pm1:40pm | 12:30pm1:40pm | 1:10pm2:20pm |
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(Formerly Mathematics 275) Introduction to modern mathematical statistics. The mathematics underlying fundamental statistical concepts will be covered as well as applications of these ideas to real-life data. Topics include: resampling methods (permutation tests, bootstrap intervals), classical methods (parametric hypothesis tests and confidence intervals), parameter estimation, goodness-of-fit tests, regression, and Bayesian methods. The statistical package R will be used to analyze data sets.
Prerequisite: Mathematics 240 Probability (formerly Mathematics 265)
STAT 320.00 Time Series Analysis 6 credits
Closed: Size: 20, Registered: 22, Waitlist: 0
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1:50pm3:00pm | 1:50pm3:00pm | 2:20pm3:20pm |
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(Formerly MATH 315) Models and methods for characterizing dependence in data that are ordered in time. Emphasis on univariate, quantitative data observed over evenly spaced intervals. Topics include perspectives from both the time domain (e.g., autoregressive and moving average models, and their extensions) and the frequency domain (e.g., periodogram smoothing and parametric models for the spectral density).
Prerequisite: Statistics 230 and 250 (formerly Mathematics 245 and 275). Exposure to matrix algebra may be helpful but is not required
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