Question
Download Solution PDFIf x is a continuous random variable with p.d.f.
f(x) = 1/√2πe-x2/2dx ,
and y is defined as y = x + 1, then E(y) equals:
Answer (Detailed Solution Below)
Detailed Solution
Download Solution PDFGiven
f(x) = 1/√2πe-x2/2dx
Formula
Calculation
⇒ (1/√2π)
⇒ E(y) = (1/√2π)
⇒ Since, x × e-x2/2dx is an odd function of k
∴ (1/2√2π)(
⇒ E(y) = (1/2√2π)(
⇒ (1/√2π) × √2π = 1
Using the standard integrals we have
Last updated on Jul 8, 2025
-> The SSC CGL Notification 2025 for the Combined Graduate Level Examination has been officially released on the SSC's new portal – www.ssc.gov.in.
-> This year, the Staff Selection Commission (SSC) has announced approximately 14,582 vacancies for various Group B and C posts across government departments.
-> The SSC CGL Tier 1 exam is scheduled to take place from 13th to 30th August 2025.
-> Aspirants should visit ssc.gov.in 2025 regularly for updates and ensure timely submission of the CGL exam form.
-> Candidates can refer to the CGL syllabus for a better understanding of the exam structure and pattern.
-> The CGL Eligibility is a bachelor’s degree in any discipline.
-> Candidates selected through the SSC CGL exam will receive an attractive salary. Learn more about the SSC CGL Salary Structure.
-> Attempt SSC CGL Free English Mock Test and SSC CGL Current Affairs Mock Test.
-> The CSIR NET Exam Schedule 2025 has been released on its official website.