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<CourseUnit xmlns="http://www.manchester.ac.uk/CUICourseUnitDetails" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://www.manchester.ac.uk/CUICourseUnitDetails.xsd">
  <UnitCode Applicant="Y" Label="Unit code" Student="Y">
    <Code>MGDI20251</Code>
  </UnitCode>
  <UnitTitle Applicant="Y" Label="Unit title" Student="Y">
    <Title>Intermediate Statistical Methods</Title>
  </UnitTitle>
  <MaxUnits Applicant="Y" Label="Credit rating" Student="Y">
    <Units>20</Units>
  </MaxUnits>
  <TeachingPeriods Applicant="Y" Label="Teaching period(s)" Student="Y">
    <Period>Semester 1</Period>
  </TeachingPeriods>
  <AcademicCareer Applicant="Y" Label="Academic career" Student="Y">
    <Value>Undergraduate</Value>
  </AcademicCareer>
  <UnitLevel Applicant="Y" Label="Unit level" Student="Y">
    <Level>Level 2</Level>
  </UnitLevel>
  <StaffList Applicant="Y" Label="Teaching staff" RoleLabel="Course Unit Role" Student="Y">
    <StaffMember>
      <Name>Lawrence Ado-Kofie</Name>
      <Role>Unit coordinator</Role>
    </StaffMember>
  </StaffList>
  <OfferedBy Applicant="Y" Label="Offered by" Student="Y">
    <OrganisationList>
      <Organisation>
        <OrgName></OrgName>
      </Organisation>
    </OrganisationList>
    <GroupList>
      <Group>
        <GroupName></GroupName>
      </Group>
    </GroupList>
    <FheqLevels>
      <FheqLevel>
        <LevelNumber>1</LevelNumber>
        <LevelName>FHEQ level (Framework for Higher Education Qualifications) ' Middle part of Bachelors ' </LevelName>
      </FheqLevel>
    </FheqLevels>
    <Ects>
      <MaxUnits>European Credit Transfer &amp; Accumulation System Rating :   10.0</MaxUnits>
    </Ects>
  </OfferedBy>
  <MarketingOverview Applicant="Y" Label="Marketing Course unit overview" Student="">
    <Content>&lt;p&gt;This is an intermediate course in quantitative research methods for analysing both economic and social data. It focuses on applied statistics/econometric methods: how methods are used and interpreted rather than their theoretical derivations, and it is designed for students with strong quantitative background. It covers concepts, relevant applications in social science research, and practical exercises using statistical software. Emphasis is placed on understanding concepts and applications, estimation, testing, model building, and practical application using real-word data to answer pertinent development questions. Thus, the unit has strong focus on concepts, developing practical experience, and confidence use of statistical software (Stata).&lt;/p&gt;</Content>
  </MarketingOverview>
  <UnitOverview Applicant="" Label="Course unit overview" Student="Y">
    <Content>&lt;p&gt;This is an intermediate course in quantitative research methods for analysing both economic and social data. It focuses on applied statistics/econometric methods: how methods are used and interpreted rather than their theoretical derivations, and it is designed for students with strong quantitative background. It covers concepts, relevant applications in social science research, and practical exercises using statistical software. Emphasis is placed on understanding concepts and applications, estimation, testing, model building, and practical application using real-word data to answer pertinent development questions. Thus, the unit has strong focus on concepts, developing practical experience, and confidence use of statistical software (Stata).&lt;/p&gt;</Content>
  </UnitOverview>
  <Aims Applicant="Y" Label="Aims" Student="Y">
    <Content>&lt;p&gt;The unit aims to enable students, through development of conceptual insights and practical skills to become:&lt;/p&gt;&lt;ul&gt;&lt;li&gt;Critical and competent users of statistics in applied development studies and research.&lt;/li&gt;&lt;li&gt;Able and critical readers of academic and policy articles with an empirical content.&lt;/li&gt;&lt;/ul&gt;</Content>
  </Aims>
  <LearningOutcomes Applicant="Y" Label="Learning outcomes" Student="Y">
    <Content></Content>
  </LearningOutcomes>
  <Knowledge Applicant="Y" Label="Knowledge and understanding" Student="Y">
    <Content>&lt;ul&gt;&lt;li&gt;Undertake statistical inference: estimation and significance tests.&lt;/li&gt;&lt;li&gt;Explain the conceptual foundation of multiple regression analysis.&lt;/li&gt;&lt;li&gt;Use modern causal-effect theory to specify, fit regression models, and undertake robust regression analysis.&lt;/li&gt;&lt;/ul&gt;</Content>
  </Knowledge>
  <IntellectualSkills Applicant="Y" Label="Intellectual skills" Student="Y">
    <Content>&lt;ul&gt;&lt;li&gt;Apply concepts in statistics/econometrics and critique statistical results presented in published articles and journals.&lt;/li&gt;&lt;li&gt;Employ concepts in statistics/econometrics to analyse real-word data.&lt;/li&gt;&lt;/ul&gt;</Content>
  </IntellectualSkills>
  <PracticalSkills Applicant="Y" Label="Practical skills" Student="Y">
    <Content>&lt;ul&gt;&lt;li&gt;Produce empirical work, using alternative forms of regression analysis.&lt;/li&gt;&lt;li&gt;Analyse and interpret regression results.&lt;/li&gt;&lt;/ul&gt;</Content>
  </PracticalSkills>
  <TransferableSkills Applicant="Y" Label="Transferable skills and personal qualities" Student="Y">
    <Content>&lt;ul&gt;&lt;li&gt;Use Stata software package for conducting multivariate regression analysis, undertake diagnostic tests, and interpret quantitative results.&lt;/li&gt;&lt;li&gt;Examine published empirical work with statistical/econometric contents, and make analytical judgement.&lt;/li&gt;&lt;/ul&gt;</Content>
  </TransferableSkills>
  <EmployabilitySkillsList Applicant="Y" Label="Employability skills" Student="Y">
    <Skill>
      <SkillId></SkillId>
      <SkillDescription></SkillDescription>
    </Skill>
  </EmployabilitySkillsList>
  <Syllabus Applicant="Y" Label="Syllabus" Student="Y">
    <Content>&lt;ol&gt;&lt;li&gt;Probability distributions&lt;/li&gt;&lt;li&gt;Statistical inference (estimation &amp;amp; significance tests)&amp;nbsp;&lt;/li&gt;&lt;li&gt;Analysing association between categorical variables&lt;/li&gt;&lt;li&gt;Linear Regression and Correlation&lt;/li&gt;&lt;li&gt;Linear Multiple regression analysis&lt;/li&gt;&lt;li&gt;Multiple regression model&amp;nbsp;&lt;/li&gt;&lt;/ol&gt;</Content>
  </Syllabus>
  <TeachingMethods Applicant="Y" Label="Teaching and learning methods" Student="Y">
    <Content>&lt;p&gt;The course unit will draw on a range of teaching and learning strategies; lectures, tutorials, computer based lab sessions (STATA) and independent learning by students using e-learning materials provided on the VLE and the recommended textbooks. During the 2-hour lecture sessions, student participation will be encouraged and welcomed through asking and answering questions. Students will be expected to have gone through teaching slides and e-learning materials provided in the VLE before lectures/tutorials/Stata lab sessions.&lt;/p&gt;</Content>
  </TeachingMethods>
  <AssessmentMethods Applicant="Y" Label="Assessment methods" Student="Y">
    <IntroText> </IntroText>
    <OtherDescription>&lt;p&gt;Assessment 1: Mid-term examination (1 Hour) — 30%&lt;/p&gt;&lt;p&gt;Assessment 2: End of semester examination (2 Hours) — 70%&lt;/p&gt;</OtherDescription>
  </AssessmentMethods>
  <FeedbackMethods Applicant="Y" Label="Feedback methods" Student="Y">
    <Content>&lt;p&gt;Feedback on the assessments via the VLE within SEED guidelines.&lt;/p&gt;</Content>
  </FeedbackMethods>
  <RequirementsList Applicant="Y" Label="Pre/co-requisites" Student="Y">
    <Requirement>
      <UnitCode></UnitCode>
      <UnitTitle></UnitTitle>
      <RequirementType></RequirementType>
      <Description></Description>
    </Requirement>
    <AdditionalRequirement></AdditionalRequirement>
  </RequirementsList>
  <AcademicPrograms Applicant="Y" Label="Academic programmes" Student="Y">
    <AcademicProgram>
      <Program>BSc Global Development</Program>
      <Plan>BSc (Hons) Global Development</Plan>
      <Level>Second Year</Level>
      <Requirement>Optional</Requirement>
    </AcademicProgram>
    <AcademicProgram>
      <Program>BSc Global Dev with Int Study</Program>
      <Plan>BSc Global Dev with Int Study</Plan>
      <Level>Second Year</Level>
      <Requirement>Optional</Requirement>
    </AcademicProgram>
  </AcademicPrograms>
  <FreeChoice Applicant="Y" Label="Available as a free choice unit?" Student="Y">
    <Content>Y</Content>
  </FreeChoice>
  <Accreditation Applicant="Y" Label="Accreditation" Student="Y">
    <Content></Content>
  </Accreditation>
  <RecommendedReading Applicant="Y" Label="Recommended reading" Student="Y">
    <Content>&lt;p&gt;Agresti A. (2024). Statistical Methods for the Social Sciences, 6th Edition. Pearson Education Ltd.&lt;br/&gt;Soderbom M. &amp;amp; Teal F. (2015). Empirical Development Economics, Routledge.&lt;br/&gt;Stock J.H. &amp;amp; Watson M.W. (2020). Introduction to Econometrics, Updated 4th ed. Pearson Education. &amp;nbsp;&lt;/p&gt;</Content>
  </RecommendedReading>
  <StudyHours Applicant="Y" Label="Study hours" Student="Y">
    <IntroText> </IntroText>
    <ScheduledHours Applicant="Y" Label="Scheduled activity hours" Student="Y">
      <ActivityHours>
        <ActivityType>Lectures</ActivityType>
        <Hours>20</Hours>
      </ActivityHours>
      <ActivityHours>
        <ActivityType>Practical classes &amp; workshops</ActivityType>
        <Hours>10</Hours>
      </ActivityHours>
      <ActivityHours>
        <ActivityType>Tutorials</ActivityType>
        <Hours>10</Hours>
      </ActivityHours>
    </ScheduledHours>
    <PlacementHours Applicant="Y" Label="Placement hours" Student="Y">
      <ActivityHours>
        <ActivityType></ActivityType>
        <Hours>0</Hours>
      </ActivityHours>
    </PlacementHours>
    <TotalHours Applicant="Y" Label="Independent study hours" Student="Y">
      <Hours>160</Hours>
    </TotalHours>
  </StudyHours>
  <Notes Applicant="Y" Label="Additional notes" Student="Y">
    <Content></Content>
  </Notes>
</CourseUnit>
