Mathematics: Statistics 2

Description

A-level Maths (S2) Mind Map on Mathematics: Statistics 2, created by declanlarkins on 24/01/2014.
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Mind Map by declanlarkins, updated more than 1 year ago More Less
declanlarkins
Created by declanlarkins about 10 years ago
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Copied by declanlarkins about 10 years ago
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Copied by declanlarkins about 10 years ago
declanlarkins
Copied by declanlarkins about 10 years ago
declanlarkins
Copied by declanlarkins about 10 years ago
declanlarkins
Copied by declanlarkins about 10 years ago
declanlarkins
Copied by declanlarkins about 10 years ago
declanlarkins
Copied by declanlarkins about 10 years ago
declanlarkins
Copied by declanlarkins about 10 years ago
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Resource summary

Mathematics: Statistics 2
  1. Continuous Random Variables
    1. Probability density functions
      1. To find mean and variance
        1. Consideration of area
        2. Understand concept
        3. Normal Distribution

          Annotations:

          • x~N(\(\mu\),\(\sigma^2\))
          1. Solve problems
            1. P(X>x)
              1. Relationships between variables

                Annotations:

                • \(x\) , \(\mu\) , \(\sigma\)
              2. Use tables
                1. Or calculator functions
                2. Models continuous random variables
                  1. Approximation to binomial
                    1. Conditions
                      1. Continuity Correction
                    2. Poisson Distribution
                      1. Understand conditions of distribution
                        1. Mean and variance

                          Annotations:

                          • X~Po(\(\mu\)) both mean and variance = \(\mu\)
                          1. Use normal approximation when needed
                            1. Continuity correction
                              1. Conditions of aproximation
                              2. Approximation to binomial
                                1. Conditions
                                2. Calculate probabilities
                                  1. Using tables
                                    1. Using formula
                                  2. Sampling and Hypothesis Tests
                                    1. Understand differences between population and sample
                                      1. Importance of randomness in samples
                                      2. Producing random samples
                                        1. eg. random numbers
                                        2. Recognise sample mean is random variable

                                          Annotations:

                                          • Sample \(\mu\) = Population \(\mu\) Sample \(\sigma^2\) = \(\frac{Population \sigma^2}{n}\)
                                          1. How distribution of population and sample are related
                                            1. Central Limit Theorem
                                              1. Calculate unbiased estimates of population mean and variance from a sample
                                                1. Understand hypothesis tests
                                                  1. One-tailed and two-tailed tests
                                                    1. Null hypothesis
                                                      1. Alternative hypothesis
                                                        1. Significance level
                                                          1. Rejection region/Critical region
                                                            1. Acceptance region
                                                              1. Test statistic
                                                              2. Formulate hypotheses and carry out tests
                                                                1. Single observation from a binomial distribution
                                                                  1. Perhaps using normal approximation
                                                                  2. Normal distribution
                                                                    1. A large sample using CLT
                                                                      1. Single observation from a Poisson distribution
                                                                      2. Type I and type II errors
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