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    Research In Computing - Made Simple

    Posted By: ELK1nG
    Research In Computing - Made Simple

    Research In Computing - Made Simple
    Published 11/2023
    MP4 | Video: h264, 1920x1080 | Audio: AAC, 44.1 KHz
    Language: English | Size: 889.35 MB | Duration: 1h 30m

    Research Methodology, Research in Computing

    What you'll learn

    Continuous research in methodology refines quantitative and qualitative research techniques, enhancing their accuracy, validity, and reliability.

    This enables researchers to gain a more comprehensive understanding of a phenomenon by utilizing the strengths of both methods.

    Improved guidelines and frameworks for ensuring the reproducibility of research results have emerged, emphasizing the importance of replicating studies to valid

    The development of methodologies that cater to interdisciplinary research, allowing different fields to collaborate and merge methodologies

    Requirements

    None

    Description

    Research in computing is a diverse and dynamic field that encompasses a wide range of disciplines, from artificial intelligence and machine learning to cybersecurity, quantum computing, and more. It's a field that continuously evolves, driven by the pursuit of innovation, problem-solving, and the exploration of new frontiers.Cybersecurity is another critical domain within computing research. As technology advances, so do the methods and complexities of cyber threats. Researchers work on developing robust encryption methods, intrusion detection systems, and other security measures to safeguard data and systems.This course is designed to introduce students to the principles and practices of conducting research in the field of computing. It provides a structured framework for students to explore advanced topics, develop critical research skills, and engage in independent or group research projects.What will you learn in this course:Understand the research process in the field of computing, including problem identification, literature review, hypothesis development, data collection, and analysis.Develop critical thinking and problem-solving skills necessary for designing and executing research projects.Gain familiarity with various research methodologies and tools commonly used in computing research.Learn how to critically evaluate and synthesize existing research literature.Plan and execute an independent or group research project in a specific area of computing.Effectively communicate research findings through written reports and oral presentations.Develop ethical guidelines and awareness for responsible conduct in research.

    Overview

    Section 1: Research In Computing Practical List

    Lecture 1 Practical List

    Lecture 2 Write a program for obtaining descriptive statistics of data

    Lecture 3 Write a program for obtaining descriptive statistics of data in Excel

    Lecture 4 Import data from different data sources (from Excel, csv, mysql, sql server, ora

    Lecture 5 RIC Practical 01B Excel to Python

    Lecture 6 Practical 02 B Analyze Data

    Lecture 7 Practical 03 A 1 Sample t Test

    Lecture 8 Practical 03 B 2 Sample t Test

    Lecture 9 RIC Practical 03 B 2 Sample t Test Python

    Lecture 10 Practical 03 B 2 Sample t Test Practice

    Lecture 11 Practical 03 C Paired t Test

    Lecture 12 Practical 04 A Chi Squared

    Lecture 13 Practical 04 A Chi Squared Practice

    Lecture 14 Practical 04 A Chi Squared Independence

    Lecture 15 Practical 04 B Chi Squared Independence Python

    Lecture 16 RIC Practical 05 A Z test

    Lecture 17 RIC Practical 05 B Z test Two samples

    Lecture 18 RiC Practical 06 A One way ANOVA

    Lecture 19 RIC Practical 06 A One way ANOVA Excel

    Lecture 20 RIC Practical 06 B Two way ANOVA Python

    Lecture 21 RIC Practical 06 B Two way ANOVA Excel

    Lecture 22 RIC Practical 06 C MANOVA Python

    Lecture 23 Practical 08 A Positive Correlation

    Lecture 24 Practical 08 B Negative Correlation

    Lecture 25 RIC Practical 08 C No Correlation

    Lecture 26 RIC Practical 09 B Poly Regression

    Lecture 27 RIC Practical 10 A Multi Linear Regression

    Lecture 28 RIC Practical 10 B Logistic Linear Regression

    Lecture 29 Sample question sets

    Students interested in Research