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標題:
F.4 A.maths Discriminant2
發問:
Determine the value of a for which each equation has real solution(D≧0) 1. x^2-(2a-1)x+1+a^2=0 2. x^2-2ax+(a+1)^2=0 3. (a+1)x^2-2(a+1)x+(a-1)=0 (a≠-1) 更新: (D≧0) 更新 2: (D>-0)
最佳解答:
Determine the value of a for which eachequation has real solution(D>=0) 1. x^2-( 2a-1)x+1+a^2=0 Sol D=( 2a-1)^2-4*1*(1+a^2) = 4a ^2-4a+1-4-4a^2 =-4a-3>=0 -3>= 4a -3/4>=a 2. x^2-2ax+(a+1)^2=0 D=(-2a)^2-4*1*(a+1)^2>= 0 a^2-a+1)^2>= 0 a^2-a^2-2a-1>=0 -2a-1>=0 -1>= 2a -1/2>=a 3. (a+1)x^2-2(a+1)x+(a-1)=0 (a≠-1) D=(-2a-2)^2-4*(a+1)(a-1)>=0 (a+1)^2-(a+1)(a-1)>= 0 a^2+ 2a +1-a^2+1>=0 2a +2>= 0 a>-1
F.4 A.maths Discriminant2
發問:
Determine the value of a for which each equation has real solution(D≧0) 1. x^2-(2a-1)x+1+a^2=0 2. x^2-2ax+(a+1)^2=0 3. (a+1)x^2-2(a+1)x+(a-1)=0 (a≠-1) 更新: (D≧0) 更新 2: (D>-0)
最佳解答:
Determine the value of a for which eachequation has real solution(D>=0) 1. x^2-( 2a-1)x+1+a^2=0 Sol D=( 2a-1)^2-4*1*(1+a^2) = 4a ^2-4a+1-4-4a^2 =-4a-3>=0 -3>= 4a -3/4>=a 2. x^2-2ax+(a+1)^2=0 D=(-2a)^2-4*1*(a+1)^2>= 0 a^2-a+1)^2>= 0 a^2-a^2-2a-1>=0 -2a-1>=0 -1>= 2a -1/2>=a 3. (a+1)x^2-2(a+1)x+(a-1)=0 (a≠-1) D=(-2a-2)^2-4*(a+1)(a-1)>=0 (a+1)^2-(a+1)(a-1)>= 0 a^2+ 2a +1-a^2+1>=0 2a +2>= 0 a>-1
- a.math
- purely imaginary
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