Difference between revisions of "1980 USAMO Problems/Problem 1"

Revision as of 23:26, 11 January 2013

Problem

A balance has unequal arms and pans of unequal weight. It is used to weigh three objects. The first object balances against a weight $A$ , when placed in the left pan and against a weight $a$ , when placed in the right pan. The corresponding weights for the second object are $B$ and $b$ . The third object balances against a weight $C$ , when placed in the left pan. What is its true weight?

Solution

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A balance scale will balance when the torques exerted on both sides cancel out. On each of the two sides, the total torque will be [some constant amount] (due to the weight, and distribution of the weight, of the arm itself) plus [the length of the arm] times [the weight of what is sitting in the pan]. Thus, the information we have tells us that, for some constants x, y, z, u:

x + yA = z + ua x + yB = z + ub x + yC = z + uc

In fact, we don't exactly care what x,y,z,u are. By subtracting x from all equations and dividing by y, we get:

A = (z-x)/y + (u/y)a B = (z-x)/y + (u/y)b C = (z-x)/y + (u/y)c

We can just give the names X and Y to the quantities (z-x)/y and (u/y).

A = X + Ya B = X + Yb C = X + Yc

Our task is to compute c in terms of A, a, B, b, and C. This can be done by solving for X and Y in terms of A,a,B,b and eliminating them from the implicit expression for c in the last equation. Perhaps there is a shortcut, but this will work:

A = X + Ya => X = A - Ya B = X + Yb => B = A - Ya + Yb => Y(b-a) = B-A => Y = (B-A)/(b-a) => X = A - (B-A)/(b-a) * a

C = X + Yc => Yc = C - X => c = (C-X)/Y => c = (C - [A - (B-A)/(b-a) * a]) / [(B-A)/(b-a)] => [simplify numerator] c = (C - A + a(B-A)/(b-a)) / [(B-A)/(b-a)] => [multiply numerator and denominator by (b-a)] c = (C(b-a) - A(b-a) + a(B-A)) / (B-A) => [distribute numerator] c = (Cb - Ca - Ab + Aa + Ba - Aa) / (B-A) => [cancel Aa's] c = (Cb - Ca - Ab + Ba) / (B-A)

So the answer is: (Cb - Ca - Ab + Ba) / (B-A).

[Someone else feel free to clean up the formatting here.]

1980 USAMO (Problems • Resources)
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Difference between revisions of "1980 USAMO Problems/Problem 1"

Revision as of 23:26, 11 January 2013

Problem

Solution

See Also

@@ Line 4: / Line 4: @@
 == Solution ==
 {{solution}}
+A balance scale will balance when the torques exerted on both sides cancel out.  On each of the two sides, the total torque will be [some constant amount] (due to the weight, and distribution of the weight, of the arm itself) plus [the length of the arm] times [the weight of what is sitting in the pan].  Thus, the information we have tells us that, for some constants x, y, z, u:
+x + yA = z + ua
+x + yB = z + ub
+x + yC = z + uc
+In fact, we don't exactly care what x,y,z,u are.  By subtracting x from all equations and dividing by y, we get:
+A = (z-x)/y + (u/y)a
+B = (z-x)/y + (u/y)b
+C = (z-x)/y + (u/y)c
+We can just give the names X and Y to the quantities (z-x)/y and (u/y).
+A = X + Ya
+B = X + Yb
+C = X + Yc
+Our task is to compute c in terms of A, a, B, b, and C.  This can be done by solving for X and Y in terms of A,a,B,b and eliminating them from the implicit expression for c in the last equation.  Perhaps there is a shortcut, but this will work:
+A = X + Ya
+=> X = A - Ya
+B = X + Yb
+=> B = A - Ya + Yb
+=> Y(b-a) = B-A
+=> Y = (B-A)/(b-a)
+=> X = A - (B-A)/(b-a) * a
+C = X + Yc
+=> Yc = C - X
+=> c = (C-X)/Y
+=> c = (C - [A - (B-A)/(b-a) * a]) / [(B-A)/(b-a)]
+=> [simplify numerator]
+c = (C - A + a(B-A)/(b-a)) / [(B-A)/(b-a)]
+=> [multiply numerator and denominator by (b-a)]
+c = (C(b-a) - A(b-a) + a(B-A)) / (B-A)
+=> [distribute numerator]
+c = (Cb - Ca - Ab + Aa + Ba - Aa) / (B-A)
+=> [cancel Aa's]
+c = (Cb - Ca - Ab + Ba) / (B-A)
+So the answer is: (Cb - Ca - Ab + Ba) / (B-A).
+[Someone else feel free to clean up the formatting here.]
 == See Also ==