Informações sobre o curso
4.6
3,251 classificações
666 avaliações
Programa de cursos integrados
100% online

100% online

Comece imediatamente e aprenda em seu próprio cronograma.
Prazos flexíveis

Prazos flexíveis

Redefinir os prazos de acordo com sua programação.
Horas para completar

Aprox. 10 horas para completar

Sugerido: 4 weeks of study, 1-3 hours/week...
Idiomas disponíveis

Inglês

Legendas: Inglês, Russo

Habilidades que você terá

ModelingLinear RegressionProbabilistic ModelsRegression Analysis
Programa de cursos integrados
100% online

100% online

Comece imediatamente e aprenda em seu próprio cronograma.
Prazos flexíveis

Prazos flexíveis

Redefinir os prazos de acordo com sua programação.
Horas para completar

Aprox. 10 horas para completar

Sugerido: 4 weeks of study, 1-3 hours/week...
Idiomas disponíveis

Inglês

Legendas: Inglês, Russo

Programa - O que você aprenderá com este curso

Semana
1
Horas para completar
2 horas para concluir

Module 1: Introduction to Models

In this module, you will learn how to define a model, and how models are commonly used. You’ll examine the central steps in the modeling process, the four key mathematical functions used in models, and the essential vocabulary used to describe models. By the end of this module, you’ll be able to identify the four most common types of models, and how and when they should be used. You’ll also be able to define and correctly use the key terms of modeling, giving you not only a foundation for further study, but also the ability to ask questions and participate in conversations about quantitative models....
Reading
7 vídeos (total de (Total 72 mín.) min), 1 leitura, 1 teste
Video7 videos
1.2 Definition and Uses of Models, Common Functions14min
1.3 How Models Are Used in Practice10min
1.4 Key Steps in the Modeling Process7min
1.5 A Vocabulary for Modeling8min
1.6 Mathematical Functions20min
1.7 Summary4min
Reading1 leituras
PDF of Lecture Slides10min
Quiz1 exercício prático
Module 1: Introduction to Models Quiz20min
Semana
2
Horas para completar
2 horas para concluir

Module 2: Linear Models and Optimization

This module introduces linear models, the building block for almost all modeling. Through close examination of the common uses together with examples of linear models, you’ll learn how to apply linear models, including cost functions and production functions to your business. The module also includes a presentation of growth and decay processes in discrete time, growth and decay in continuous time, together with their associated present and future value calculations. Classical optimization techniques are discussed. By the end of this module, you’ll be able to identify and understand the key structure of linear models, and suggest when and how to use them to improve outcomes for your business. You’ll also be able to perform present value calculations that are foundational to valuation metrics. In addition, you will understand how you can leverage models for your business, through the use of optimization to really fine tune and optimize your business functions. ...
Reading
6 vídeos (total de (Total 69 mín.) min), 1 leitura, 1 teste
Video6 videos
2.2 Growth in Discrete Time7min
2.3 Constant Proportionate Growth12min
2.4 Present and Future Value15min
2.5 Optimization13min
2.6 Summary2min
Reading1 leituras
PDF of Lecture Slides10min
Quiz1 exercício prático
Module 2: Linear Models and Optimization Quiz20min
Semana
3
Horas para completar
2 horas para concluir

Module 3: Probabilistic Models

This module explains probabilistic models, which are ways of capturing risk in process. You’ll need to use probabilistic models when you don’t know all of your inputs. You’ll examine how probabilistic models incorporate uncertainty, and how that uncertainty continues through to the outputs of the model. You’ll also discover how propagating uncertainty allows you to determine a range of values for forecasting. You’ll learn the most-widely used models for risk, including regression models, tree-based models, Monte Carlo simulations, and Markov chains, as well as the building blocks of these probabilistic models, such as random variables, probability distributions, Bernoulli random variables, binomial random variables, the empirical rule, and perhaps the most important of all of the statistical distributions, the normal distribution, characterized by mean and standard deviation. By the end of this module, you’ll be able to define a probabilistic model, identify and understand the most commonly used probabilistic models, know the components of those models, and determine the most useful probabilistic models for capturing and exploring risk in your own business....
Reading
12 vídeos (total de (Total 83 mín.) min), 1 leitura, 1 teste
Video12 videos
3.2 Examples of Probabilistic Models2min
3.3 Regression Models4min
3.4 Probability Trees5min
3.5 Monte Carlo Simulations6min
3.6 Markov Chain Models6min
3.7 Building Blocks of Probability Models9min
3.8 The Bernoulli Distribution7min
3.9 The Binomial Distribution16min
3.10 The Normal Distribution5min
3.11 The Empirical Rule7min
3.12 Summary2min
Reading1 leituras
PDF of Lecture Slides10min
Quiz1 exercício prático
Module 3: Probabilistic Models Quiz20min
Semana
4
Horas para completar
2 horas para concluir

Module 4: Regression Models

This module explores regression models, which allow you to start with data and discover an underlying process. Regression models are the key tools in predictive analytics, and are also used when you have to incorporate uncertainty explicitly in the underlying data. You’ll learn more about what regression models are, what they can and cannot do, and the questions regression models can answer. You’ll examine correlation and linear association, methodology to fit the best line to the data, interpretation of regression coefficients, multiple regression, and logistic regression. You’ll also see how logistic regression will allow you to estimate probabilities of success. By the end of this module, you’ll be able to identify regression models and their key components, understand when they are used, and be able to interpret them so that you can discuss your model and convince others that your model makes sense, with the ultimate goal of implementation....
Reading
8 vídeos (total de (Total 70 mín.) min), 1 leitura, 1 teste
Video8 videos
4.2 Use of Regression Models15min
4.3 Interpretation of Regression Coefficients4min
4.4 R-squared and Root Mean Squared Error (RMSE)12min
4.5 Fitting Curves to Data8min
4.6 Multiple Regression7min
4.7 Logistic Regression8min
4.8 Summary of Regression Models4min
Reading1 leituras
PDF of Lecture Slides10min
Quiz1 exercício prático
Module 4: Regression Models Quiz20min
4.6
666 avaliaçõesChevron Right
Direcionamento de carreira

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Benefício de carreira

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Promoção de carreira

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Melhores avaliações

por SCJun 4th 2018

Course is having ultimate content regarding the understanding of Quantitative modeling and its applications. Having great explanation with examples of linear, power, exponential and log functions.

por NMJul 23rd 2017

Very good background to quantitative modelling. It gets a bit heavy on the mathematical formulas in places, but if you follow through, it helps cement understanding. Good speed/pace of material.

Instrutores

Avatar

Richard Waterman

Professor of Statistics
Statistics-Wharton School

Sobre University of Pennsylvania

The University of Pennsylvania (commonly referred to as Penn) is a private university, located in Philadelphia, Pennsylvania, United States. A member of the Ivy League, Penn is the fourth-oldest institution of higher education in the United States, and considers itself to be the first university in the United States with both undergraduate and graduate studies. ...

Sobre o Programa de cursos integrados Business and Financial Modeling

Wharton's Business and Financial Modeling Specialization is designed to help you make informed business and financial decisions. These foundational courses will introduce you to spreadsheet models, modeling techniques, and common applications for investment analysis, company valuation, forecasting, and more. When you complete the Specialization, you'll be ready to use your own data to describe realities, build scenarios, and predict performance....
Business and Financial Modeling

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