112 大直高中
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Re: 112 大直高中
計算證明第 1 題
令 logx = t
f(x) 改寫成 f(t) = 2[t/2]^2 - [1 - t]^2
令 [t/2] = n,其中 n 為整數
n ≦ t/2 < n + 1
2n ≦ t < 2n + 2
-2n - 1 < 1 - t ≦ -2n + 1
(1) n = 0
-1 < 1 - t ≦ 1
[1 - t]^2 = 0 or 1
f(t) = 0 or -1
(2) n > 0
(-2n + 1)^2 ≦ [1 - t]^2 < (-2n - 1)^2
2n^2 - (-2n - 1)^2 < 2[t/2]^2 - [1 - t]^2 ≦ 2n^2 - (-2n + 1)^2
-2n^2 - 4n - 1 < 2[t/2]^2 - [1 - t]^2 ≦ -2n^2 + 4n - 1 = -2(n - 1)^2 + 1
n = 1 時,-3 < 1 - t ≦ -1
當 [1 - t] = -1,[1 - t]^2 = 1 時,f(t) 有最大值 1
n = 1
2 ≦ t < 4
[1 - t] = -1
-1 ≦ 1 - t < 0
1 < t ≦ 2
t = 2,x = 100
(3) n < 0
(-2n - 1)^2 < [1 - t]^2 ≦ (-2n + 1)^2
2n^2 - (-2n + 1)^2 ≦ 2[t/2]^2 - [1 - t]^2 < 2n^2 - (-2n - 1)^2
-2n^2 + 4n - 1 ≦ 2[t/2]^2 - [1 - t]^2 < -2n^2 - 4n - 1 = -2(n + 1)^2 + 1
n = -1 時,1 < 1 - t ≦ 3
當 [1 - t] = 1,[1 - t]^2 = 1 時,f(t) 有最大值 1
n = -1
-2 ≦ t < 0
[1 - t] = 1
1 ≦ 1 - t < 2
-1 < t ≦ 0
-1 < t < 0,1/10 < x < 1
故 f(x) 的最大值為 1,此時 1/10 < x < 1 or x = 100
令 logx = t
f(x) 改寫成 f(t) = 2[t/2]^2 - [1 - t]^2
令 [t/2] = n,其中 n 為整數
n ≦ t/2 < n + 1
2n ≦ t < 2n + 2
-2n - 1 < 1 - t ≦ -2n + 1
(1) n = 0
-1 < 1 - t ≦ 1
[1 - t]^2 = 0 or 1
f(t) = 0 or -1
(2) n > 0
(-2n + 1)^2 ≦ [1 - t]^2 < (-2n - 1)^2
2n^2 - (-2n - 1)^2 < 2[t/2]^2 - [1 - t]^2 ≦ 2n^2 - (-2n + 1)^2
-2n^2 - 4n - 1 < 2[t/2]^2 - [1 - t]^2 ≦ -2n^2 + 4n - 1 = -2(n - 1)^2 + 1
n = 1 時,-3 < 1 - t ≦ -1
當 [1 - t] = -1,[1 - t]^2 = 1 時,f(t) 有最大值 1
n = 1
2 ≦ t < 4
[1 - t] = -1
-1 ≦ 1 - t < 0
1 < t ≦ 2
t = 2,x = 100
(3) n < 0
(-2n - 1)^2 < [1 - t]^2 ≦ (-2n + 1)^2
2n^2 - (-2n + 1)^2 ≦ 2[t/2]^2 - [1 - t]^2 < 2n^2 - (-2n - 1)^2
-2n^2 + 4n - 1 ≦ 2[t/2]^2 - [1 - t]^2 < -2n^2 - 4n - 1 = -2(n + 1)^2 + 1
n = -1 時,1 < 1 - t ≦ 3
當 [1 - t] = 1,[1 - t]^2 = 1 時,f(t) 有最大值 1
n = -1
-2 ≦ t < 0
[1 - t] = 1
1 ≦ 1 - t < 2
-1 < t ≦ 0
-1 < t < 0,1/10 < x < 1
故 f(x) 的最大值為 1,此時 1/10 < x < 1 or x = 100
Re: 112 大直高中
計算證明第 3 題
B、A、P、C 四點共圓,sin∠BAQ = sin∠BCR
BA/BQ + BC/BR = sin∠Q/sin∠BAQ + sin∠R/sin∠BCR
= (sin∠Q + sin∠R)/sin∠BAQ
= [sin(∠B + ∠BAQ) + sin(∠B + ∠BCR)]/sin∠BAQ
= {2sin[(2∠B + 180度)/2]cos[(∠BAQ - ∠BCR)/2]}/sin∠BAQ
= [2sin(∠B + 90度)cos(∠BAQ - 90度)]/sin∠BAQ
= 2cos∠B
剩下的就簡單了 ......
B、A、P、C 四點共圓,sin∠BAQ = sin∠BCR
BA/BQ + BC/BR = sin∠Q/sin∠BAQ + sin∠R/sin∠BCR
= (sin∠Q + sin∠R)/sin∠BAQ
= [sin(∠B + ∠BAQ) + sin(∠B + ∠BCR)]/sin∠BAQ
= {2sin[(2∠B + 180度)/2]cos[(∠BAQ - ∠BCR)/2]}/sin∠BAQ
= [2sin(∠B + 90度)cos(∠BAQ - 90度)]/sin∠BAQ
= 2cos∠B
剩下的就簡單了 ......