Difference between revisions of "1984 IMO Problems/Problem 1"
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==Solution 2== | ==Solution 2== | ||
− | By the method of Lagrangian multipliers. Let <math>f(x,y,z) = xy + yz + zx - 2xyz</math> and <math>\phi(x,y,z) = x+y+z-1</math>. We will find the local maxima/minima of <math>f</math> over <math>S = \{(x,y,z) \in \mathbb{R}^2 : 0 \leq x,y,z \leq 1\}</math> subject to <math>\phi = 0</math>. Since <math>S</math> is compact every | + | By the method of Lagrangian multipliers. Let <math>f(x,y,z) = xy + yz + zx - 2xyz</math> and <math>\phi(x,y,z) = x+y+z-1</math>. We will find the local maxima/minima of <math>f</math> over <math>S = \{(x,y,z) \in \mathbb{R}^2 : 0 \leq x,y,z \leq 1\}</math> subject to <math>\phi = 0</math>. Since <math>S</math> is compact every sequence in <math>S</math> has a convergent subsequence. Hence the infimum and supremum of <math>f</math> in <math>S</math> subject to <math>\phi = 0</math> are identifiable with local maxima/minima on the surface <math>x+y+z=1, x,y,z \geq 0</math>. So the method of Lagrangian multipliers will detect the infimum/supremum. |
We must solve <math>\nabla f - \lambda \nabla \phi = 0</math>. This is equivalent to | We must solve <math>\nabla f - \lambda \nabla \phi = 0</math>. This is equivalent to |
Revision as of 03:29, 9 July 2025
Problem
Let ,
,
be nonnegative real numbers with
. Show that
Solution 1
Note that this inequality is symmetric with x,y and z.
To prove note that
implies that at most one of
,
, or
is greater than
. Suppose
, WLOG. Then,
since
, implying all terms are positive.
To prove , suppose
. Note that
since at most one of x,y,z is
. Suppose not all of them equals
-otherwise, we would be done. This implies
and
. Thus, define
,
Then,
,
, and
. After some simplification,
since
and
. If we repeat the process, defining
after similar reasoning, we see that
.
Solution 2
By the method of Lagrangian multipliers. Let and
. We will find the local maxima/minima of
over
subject to
. Since
is compact every sequence in
has a convergent subsequence. Hence the infimum and supremum of
in
subject to
are identifiable with local maxima/minima on the surface
. So the method of Lagrangian multipliers will detect the infimum/supremum.
We must solve . This is equivalent to
\begin{align}
x+y - 2xy &= -2uv + 1/2 = \lambda \\
y+z - 2yz &= -2vw + 1/2 = \lambda \\
z+x - 2zx &= -2wu + 1/2 = \lambda
\end{align}
where
. If
then
. WLOG
and we have
.
Then WLOG
. These imply
. Then
since
. We get
.
If then letting
one gets
which imply
since
. This implies
since
. And
.
Now to check the boundary of . WLOG we must consider the cases
and
. If
then
by
so
. If
substituting
in
yields
which is between
and
since
. Considering all the values found we find
.
~detriti
Video Solution
Video Solution
See Also
1984 IMO (Problems) • Resources | ||
Preceded by First Question |
1 • 2 • 3 • 4 • 5 • 6 | Followed by Problem 2 |
All IMO Problems and Solutions |