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The maximum value of f(x) = 2bx2 – x4 – 3b is g(b), where b > 0, if b varies then the minimum value of g(b) is
  • a)
     
  • b)
     
  • c)
       
  • d)
Correct answer is option 'C'. Can you explain this answer?
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The maximum value of f(x) = 2bx2–x4–3b is g(b), where b > 0, if b varies then the minimum value of g(b) isa)b)c)–d)–Correct answer is option 'C'. Can you explain this answer?
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The maximum value of f(x) = 2bx2–x4–3b is g(b), where b > 0, if b varies then the minimum value of g(b) isa)b)c)–d)–Correct answer is option 'C'. Can you explain this answer? for JEE 2024 is part of JEE preparation. The Question and answers have been prepared according to the JEE exam syllabus. Information about The maximum value of f(x) = 2bx2–x4–3b is g(b), where b > 0, if b varies then the minimum value of g(b) isa)b)c)–d)–Correct answer is option 'C'. Can you explain this answer? covers all topics & solutions for JEE 2024 Exam. Find important definitions, questions, meanings, examples, exercises and tests below for The maximum value of f(x) = 2bx2–x4–3b is g(b), where b > 0, if b varies then the minimum value of g(b) isa)b)c)–d)–Correct answer is option 'C'. Can you explain this answer?.
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