if w is imaginary cube root of unity and ( a+bw+cw^2)^2015 = ( a+ bw^2 + cw) qheee a,b,c are unequal real numbers, then a^2 + b^2 + c^2 -ab - bc -ca is equal to ?
jee advance question ( integer type)
- 6992 Views
- 3 Answers
3 Answers
- JEE Advanced Exam Question
- JEE Advanced Exam Tips
- Is JEE Advanced 2018 online? Explain your answer
- How to Prepare for JEE advanced? Any Study Material available?
- What is difference between JEE Main and JEE Advanced?
- What is the eligibility for JEE Advanced?
- What is difference between JEE and IIT?
- Which study material is best for IIT JEE exam?
- Joint Entrance Examination, JEE (Advanced) 2018, jee advanced prep
- What is the JEE Advanced? Explain your answer
Practice Mock Test
jee advance
Answer is 1...... See!!.. (a+bw+cw^2)*(a+bw^2+cw) =a^2+b^2+c^2 -ab - bc - ca ?? this is true for all values of a, b, c.. And also we have a relation in them as given in ques.. So we have (a+bw+cw^2)^2016 =a^2+b^2+c^2 -ab - bc - ca Now take modulus on both sides.. As LHS is real its modulus value would be same but also.. Modulus of (a+bw+cw^2) is [([a^2+b^2+c^2 -ab - bc - ca]^1/2)] .. check this by putting the values of w and w^2 as one being (-1+ (3^1/2) i) /2 and other be its conjugate ... After taking modulus we get.. a^2+b^2+c^2 -ab - bc - ca = (a^2+b^2+c^2 -ab - bc - ca) ^ (2016/2)... Now a^2+b^2+c^2 -ab - bc - ca = (a^2+b^2+c^2 -ab - bc - ca) ^1008 .. We get.. two values as 0 and 1 both satisfies this but as a, b, c are not equal we take only one value i. e. 1 ... Hence, answer is 1.. Think about it!!..