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Data science tools- Basic of Statistics

  • Development
  • May 05, 2025
SynopsisData science tools: Basic of Statistics, available at $19.99,...
Data science tools- Basic of Statistics  No.1

Data science tools: Basic of Statistics, available at $19.99, has an average rating of 4.95, with 32 lectures, based on 33 reviews, and has 1173 subscribers.

You will learn about Students will be able to analyze, explain and interpret the data They will understand the relationship and dependency between the data and how to make the prediction Students will understand different method of data analyses such as measure of central tendency (mean, median, mode), measure of dispersion (variance, standar Students will have basic understanding of probability and Bayes theorem They will come to know about rates, ratio, odd ration and screening test This course is ideal for individuals who are This course will help to build carrier in data science and machine learning specialization It is particularly useful for This course will help to build carrier in data science and machine learning specialization.

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Summary

Title: Data science tools: Basic of Statistics

Price: $19.99

Average Rating: 4.95

Number of Lectures: 32

Number of Published Lectures: 32

Number of Curriculum Items: 32

Number of Published Curriculum Objects: 32

Original Price: $19.99

Quality Status: approved

Status: Live

What You Will Learn

  • Students will be able to analyze, explain and interpret the data
  • They will understand the relationship and dependency between the data and how to make the prediction
  • Students will understand different method of data analyses such as measure of central tendency (mean, median, mode), measure of dispersion (variance, standar
  • Students will have basic understanding of probability and Bayes theorem
  • They will come to know about rates, ratio, odd ration and screening test
  • Who Should Attend

  • This course will help to build carrier in data science and machine learning specialization
  • Target Audiences

  • This course will help to build carrier in data science and machine learning specialization
  • · Students will gain knowledge about the basics of statistics

    · They will have clear understanding about different types of data with examples which is very important to understand data analysis

    · Students will be able to analyze, explain and interpret the data

    · They will understand the relationship and dependency by learning Pearson’s correlation coefficient, scatter diagram and linear regression analysis between the variables and will be able to know make the prediction

    · Students will understand different method of data analyses such as measure of central tendency (mean, median, mode), measure of dispersion (variance, standard deviation, coefficient of variation), how to calculate quartiles, skewness and box plot

    · They will have clear understanding about the shape of data after learning skewness and box plot, which is an important part of data analysis

    · Students will have basic understanding of probability and how to explain and understand Bayes theorem with the simplest example

    · Students will have basic understanding of discrete probability distribution such as Binomial, Poisson and continuous probability distribution such as normal distribution with details example

    · They will come to know about rates, ratio, odd ratio and screening test

    · They will have clear knowledge about screening test and confusion matrix with details example

    · They will gain a clear idea about fundamental of statistics

    · Specially, who are interested to advance their carriers in data science and machine learning should complete the course

    Course Curriculum

    Chapter 1: Introduction :Data and Statistics

    Lecture 1: Introduction

    Lecture 2: Instructor

    Lecture 3: What is Statistics?

    Lecture 4: Data

    Chapter 2: Summary measures: Central Tendency

    Lecture 1: Mean

    Lecture 2: Median

    Lecture 3: Mode

    Chapter 3: Summary measures:Measures of Dispersion

    Lecture 1: Measures of Dispersion_variance_sd

    Lecture 2: Coefficient_variation_CV

    Chapter 4: Shape of data: Measures of Skewness

    Lecture 1: Quartiles_quartile deviation

    Lecture 2: Box plot

    Lecture 3: Skewness_shape of the data

    Lecture 4: Coefficient of Skewness

    Chapter 5: Correlation and Regresson analysis

    Lecture 1: correlation-coefficient

    Lecture 2: correlation-Scatter-diagram

    Lecture 3: Regression-analysis

    Lecture 4: Regression-example

    Chapter 6: Probability-Bayes-Theorem

    Lecture 1: Basic of Probability

    Lecture 2: Bayes theorem

    Chapter 7: Discrete probability distribution

    Lecture 1: Binomial distribution

    Lecture 2: Poisson distribution

    Chapter 8: Continious probability distributio:Normal distribution

    Lecture 1: normal_distribution

    Lecture 2: normal_examples

    Chapter 9: Rates-Ratio-odd ratio-OR

    Lecture 1: Rates_Ratio_incidence_prevalence

    Lecture 2: Odds-Odd Ratio

    Chapter 10: Screening_test_confusion_matrix

    Lecture 1: Screening_test_confusion_matrix_1

    Lecture 2: Screening_test_confusion_matrix_2_details

    Lecture 3: Screening_test-example

    Lecture 4: Screening_test-bayes-theorem

    Chapter 11: Fundamental of statistical hypothesis tests

    Lecture 1: defination of statistical hypothesis

    Lecture 2: 11.2-Steps of hypothesis testing-null hypothesis and alternative hypothesis

    Lecture 3: 11.3-continue-Steps of hypothesis testing-more-steps

    Instructors

  • Data science tools- Basic of Statistics  No.2
    Mohammad Rafiqul Islam
    Statistician and Datascientist
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  • 3 stars: 1 votes
  • 4 stars: 3 votes
  • 5 stars: 29 votes
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