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AIME 1992 · 第 14 题

AIME 1992 — Problem 14

专题
Contest Math
难度
L4
来源
AIME

题目详情

Problem

In triangle ABCABC^{}_{}, AA', BB', and CC' are on the sides BCBC, ACAC^{}_{}, and ABAB^{}_{}, respectively. Given that AAAA', BBBB', and CCCC' are concurrent at the point OO^{}_{}, and that AOOA+BOOB+COOC=92\frac{AO^{}_{}}{OA'}+\frac{BO}{OB'}+\frac{CO}{OC'}=92, find AOOABOOBCOOC\frac{AO}{OA'}\cdot \frac{BO}{OB'}\cdot \frac{CO}{OC'}.

解析

Solution 1

Let KA=[BOC],KB=[COA],K_A=[BOC], K_B=[COA], and KC=[AOB].K_C=[AOB]. Due to triangles BOCBOC and ABCABC having the same base,

AOOA+1=AAOA=[ABC][BOC]=KA+KB+KCKA.\frac{AO}{OA'}+1=\frac{AA'}{OA'}=\frac{[ABC]}{[BOC]}=\frac{K_A+K_B+K_C}{K_A}. Therefore, we have

AOOA=KB+KCKA\frac{AO}{OA'}=\frac{K_B+K_C}{K_A} BOOB=KA+KCKB\frac{BO}{OB'}=\frac{K_A+K_C}{K_B} COOC=KA+KBKC.\frac{CO}{OC'}=\frac{K_A+K_B}{K_C}. Thus, we are given

KB+KCKA+KA+KCKB+KA+KBKC=92.\frac{K_B+K_C}{K_A}+\frac{K_A+K_C}{K_B}+\frac{K_A+K_B}{K_C}=92. Combining and expanding gives

KA2KB+KAKB2+KA2KC+KAKC2+KB2KC+KBKC2KAKBKC=92.\frac{K_A^2K_B+K_AK_B^2+K_A^2K_C+K_AK_C^2+K_B^2K_C+K_BK_C^2}{K_AK_BK_C}=92. We desire (KB+KC)(KC+KA)(KA+KB)KAKBKC.\frac{(K_B+K_C)(K_C+K_A)(K_A+K_B)}{K_AK_BK_C}. Expanding this gives

KA2KB+KAKB2+KA2KC+KAKC2+KB2KC+KBKC2KAKBKC+2=094.\frac{K_A^2K_B+K_AK_B^2+K_A^2K_C+K_AK_C^2+K_B^2K_C+K_BK_C^2}{K_AK_BK_C}+2=\boxed{094}.

Solution 2 (Mass Points)

Using mass points, let the weights of AA, BB, and CC be aa, bb, and cc respectively.

Then, the weights of AA', BB', and CC' are b+cb+c, c+ac+a, and a+ba+b respectively.

Thus, AOOA=b+ca\frac{AO^{}_{}}{OA'} = \frac{b+c}{a}, BOOB=c+ab\frac{BO^{}_{}}{OB'} = \frac{c+a}{b}, and COOC=a+bc\frac{CO^{}_{}}{OC'} = \frac{a+b}{c}.

Therefore: AOOABOOBCOOC=b+cac+aba+bc\frac{AO}{OA'}\cdot \frac{BO}{OB'}\cdot \frac{CO}{OC'} = \frac{b+c}{a} \cdot \frac{c+a}{b} \cdot \frac{a+b}{c} =2abc+b2c+bc2+c2a+ca2+a2b+ab2abc== \frac{2abc+b^2c+bc^2+c^2a+ca^2+a^2b+ab^2}{abc} =

2+bc(b+c)abc+ca(c+a)abc+ab(a+b)abc=2+b+ca+c+ab+a+bc2+\frac{bc(b+c)}{abc}+\frac{ca(c+a)}{abc}+\frac{ab(a+b)}{abc} = 2 + \frac{b+c}{a} + \frac{c+a}{b} + \frac{a+b}{c} =2+AOOA+BOOB+COOC=2+92=094= 2 + \frac{AO^{}_{}}{OA'}+\frac{BO}{OB'}+\frac{CO}{OC'} = 2+92 = \boxed{094}.

Solution 3

As in above solutions, find cycy+zx=92\sum_{cyc} \frac{y+z}{x}=92 (where O=(x:y:z)O=(x:y:z) in barycentric coordinates). Now letting y=z=1y=z=1 we get 2x+2(x+1)=92    x+1x=45\frac{2}{x}+2(x+1)=92 \implies x+\frac{1}{x}=45, and so 2x(x+1)2=2(x+1x+2)=247=94\frac{2}{x}(x+1)^2=2(x+\frac{1}{x}+2)=2 \cdot 47 = 94.

~Lcz

Solution 4 (Ceva's Theorem)

A consequence of Ceva's theorem sometimes attributed to Gergonne is that AOOA=ACCB+ABBC\frac{AO}{OA'}=\frac{AC'}{C'B}+\frac{AB'}{B'C}, and similarly for cevians BBBB' and CCCC'. Now we apply Gergonne several times and do algebra:

AOOABOOBCOOC=(ABBC+ACCB)(BCCA+BAAC)(CBBA+CAAB)=ABCABCBCABCACeva+ACBACBCBACBACeva+ABBC+ACCBGergonne+BAAC+BCCAGergonne+CAAB+CBBAGergonne=1+1+AOOA+BOOB+COOC92=94\begin{aligned} \frac{AO}{OA'}\frac{BO}{OB'}\frac{CO}{OC'} &= \left(\frac{AB'}{B'C}+\frac{AC'}{C'B}\right) \left(\frac{BC'}{C'A}+\frac{BA'}{A'C}\right) \left(\frac{CB'}{B'A}+\frac{CA'}{A'B}\right)\\ &=\underbrace{\frac{AB'\cdot CA'\cdot BC'}{B'C\cdot A'B\cdot C'A}}_{\text{Ceva}} + \underbrace{\frac{AC'\cdot BA'\cdot CB'}{C'B\cdot A'C\cdot B'A}}_{\text{Ceva}} + \underbrace{\frac{AB'}{B'C} + \frac{AC'}{C'B}}_{\text{Gergonne}} + \underbrace{\frac{BA'}{A'C} + \frac{BC'}{C'A}}_{\text{Gergonne}} + \underbrace{\frac{CA'}{A'B} + \frac{CB'}{B'A}}_{\text{Gergonne}}\\ &= 1 + 1 + \underbrace{\frac{AO}{OA'} + \frac{BO}{OB'} + \frac{CO}{OC'}}_{92} = \boxed{94} \end{aligned} ~ proloto