Find the minimum value of $sqrt {2x^2+2y^2} +sqrt {y^2+x^2-4y+4} +sqrt {x^2+y^2-4x-4y+8}$
$begingroup$
Given that $0lt xlt 2$ and $0lt ylt 2$ then find the minimum value of $$sqrt {2x^2+2y^2} +sqrt {y^2+x^2-4y+4} +sqrt {x^2+y^2-4x-4y+8}$$
My try:
On factorisation we need minimum value of $$sqrt {2x^2+2y^2} +sqrt {(y-2)^2+x^2} +sqrt {(x-2)^2+(y-2)^2}$$
On seeing it for first time, the only thing that popped up was using the Minkowski inequality but I am not getting proper sequences for its application. I tried as much as I could to use this inequality but failed.
I tried substituting $x=2cos alpha$ and $y=2cos beta$ (where $alpha, beta in left(0,frac {pi}{2}right)$ )on seeing the constraints on $x$ and $y$ but continuing it was very cumbersome so dropped the method.
Any help would be greatly appreciated.
P.S : It would be very great if someone hints at how I could use the Minkowski inequality efficiently. Thanks!!!
inequality maxima-minima cauchy-schwarz-inequality holder-inequality
edited Dec 8 '18 at 9:03
Martin Sleziak
44.8k9118272
asked Dec 8 '18 at 7:54
DigammaDigamma
6,1621440
$endgroup$
add a comment |
$begingroup$
Given that $0lt xlt 2$ and $0lt ylt 2$ then find the minimum value of $$sqrt {2x^2+2y^2} +sqrt {y^2+x^2-4y+4} +sqrt {x^2+y^2-4x-4y+8}$$
My try:
On factorisation we need minimum value of $$sqrt {2x^2+2y^2} +sqrt {(y-2)^2+x^2} +sqrt {(x-2)^2+(y-2)^2}$$
On seeing it for first time, the only thing that popped up was using the Minkowski inequality but I am not getting proper sequences for its application. I tried as much as I could to use this inequality but failed.
I tried substituting $x=2cos alpha$ and $y=2cos beta$ (where $alpha, beta in left(0,frac {pi}{2}right)$ )on seeing the constraints on $x$ and $y$ but continuing it was very cumbersome so dropped the method.
Any help would be greatly appreciated.
P.S : It would be very great if someone hints at how I could use the Minkowski inequality efficiently. Thanks!!!
inequality maxima-minima cauchy-schwarz-inequality holder-inequality
edited Dec 8 '18 at 9:03
Martin Sleziak
44.8k9118272
asked Dec 8 '18 at 7:54
DigammaDigamma
6,1621440
$endgroup$
$begingroup$
Hmm, you seem to hint on some real analysis inequalities. Is this an exercise from such a lesson ?
$endgroup$
– Rebellos
Dec 8 '18 at 8:01
$begingroup$
@Rebellos Maybe, I don't know because it was given to me by one of my friends. I solved it using a geometrical approach but I wanted to know if there could an algebraic solution to it.
$endgroup$
– Digamma
Dec 8 '18 at 8:06
add a comment |
$begingroup$
Given that $0lt xlt 2$ and $0lt ylt 2$ then find the minimum value of $$sqrt {2x^2+2y^2} +sqrt {y^2+x^2-4y+4} +sqrt {x^2+y^2-4x-4y+8}$$
My try:
On factorisation we need minimum value of $$sqrt {2x^2+2y^2} +sqrt {(y-2)^2+x^2} +sqrt {(x-2)^2+(y-2)^2}$$
On seeing it for first time, the only thing that popped up was using the Minkowski inequality but I am not getting proper sequences for its application. I tried as much as I could to use this inequality but failed.
I tried substituting $x=2cos alpha$ and $y=2cos beta$ (where $alpha, beta in left(0,frac {pi}{2}right)$ )on seeing the constraints on $x$ and $y$ but continuing it was very cumbersome so dropped the method.
Any help would be greatly appreciated.
P.S : It would be very great if someone hints at how I could use the Minkowski inequality efficiently. Thanks!!!
inequality maxima-minima cauchy-schwarz-inequality holder-inequality
edited Dec 8 '18 at 9:03
Martin Sleziak
44.8k9118272
asked Dec 8 '18 at 7:54
DigammaDigamma
6,1621440
$endgroup$
Given that $0lt xlt 2$ and $0lt ylt 2$ then find the minimum value of $$sqrt {2x^2+2y^2} +sqrt {y^2+x^2-4y+4} +sqrt {x^2+y^2-4x-4y+8}$$
My try:
On factorisation we need minimum value of $$sqrt {2x^2+2y^2} +sqrt {(y-2)^2+x^2} +sqrt {(x-2)^2+(y-2)^2}$$
On seeing it for first time, the only thing that popped up was using the Minkowski inequality but I am not getting proper sequences for its application. I tried as much as I could to use this inequality but failed.
I tried substituting $x=2cos alpha$ and $y=2cos beta$ (where $alpha, beta in left(0,frac {pi}{2}right)$ )on seeing the constraints on $x$ and $y$ but continuing it was very cumbersome so dropped the method.
Any help would be greatly appreciated.
P.S : It would be very great if someone hints at how I could use the Minkowski inequality efficiently. Thanks!!!
inequality maxima-minima cauchy-schwarz-inequality holder-inequality
inequality maxima-minima cauchy-schwarz-inequality holder-inequality
edited Dec 8 '18 at 9:03
Martin Sleziak
44.8k9118272
asked Dec 8 '18 at 7:54
DigammaDigamma
6,1621440
edited Dec 8 '18 at 9:03
Martin Sleziak
44.8k9118272
asked Dec 8 '18 at 7:54
DigammaDigamma
6,1621440
edited Dec 8 '18 at 9:03
Martin Sleziak
44.8k9118272
edited Dec 8 '18 at 9:03
Martin Sleziak
44.8k9118272
edited Dec 8 '18 at 9:03
Martin Sleziak
44.8k9118272
44.8k9118272
asked Dec 8 '18 at 7:54
DigammaDigamma
6,1621440
asked Dec 8 '18 at 7:54
DigammaDigamma
6,1621440
asked Dec 8 '18 at 7:54
DigammaDigamma
6,1621440
6,1621440
$begingroup$
Hmm, you seem to hint on some real analysis inequalities. Is this an exercise from such a lesson ?
$endgroup$
– Rebellos
Dec 8 '18 at 8:01
$begingroup$
@Rebellos Maybe, I don't know because it was given to me by one of my friends. I solved it using a geometrical approach but I wanted to know if there could an algebraic solution to it.
$endgroup$
– Digamma
Dec 8 '18 at 8:06
add a comment |
$begingroup$
Hmm, you seem to hint on some real analysis inequalities. Is this an exercise from such a lesson ?
$endgroup$
– Rebellos
Dec 8 '18 at 8:01
$begingroup$
@Rebellos Maybe, I don't know because it was given to me by one of my friends. I solved it using a geometrical approach but I wanted to know if there could an algebraic solution to it.
$endgroup$
– Digamma
Dec 8 '18 at 8:06
$begingroup$
Hmm, you seem to hint on some real analysis inequalities. Is this an exercise from such a lesson ?
$endgroup$
– Rebellos
Dec 8 '18 at 8:01
$begingroup$
Hmm, you seem to hint on some real analysis inequalities. Is this an exercise from such a lesson ?
$endgroup$
– Rebellos
Dec 8 '18 at 8:01
$begingroup$
@Rebellos Maybe, I don't know because it was given to me by one of my friends. I solved it using a geometrical approach but I wanted to know if there could an algebraic solution to it.
$endgroup$
– Digamma
Dec 8 '18 at 8:06
$begingroup$
@Rebellos Maybe, I don't know because it was given to me by one of my friends. I solved it using a geometrical approach but I wanted to know if there could an algebraic solution to it.
$endgroup$
– Digamma
Dec 8 '18 at 8:06
add a comment |
2 Answers
2
active
oldest
votes
$begingroup$
You can still use Minkowski as:
$$sqrt{(x+y)^2+(y-x)^2}+sqrt{(2-y)^2+x^2}+sqrt{(2-x)^2+(2-y)^2}geqsqrt{(x+y+2-y+2-x)^2+(y-x+x+2-y)^2}=sqrt{20}.$$
One can check that the equality is attained when: $$(x,y) = left(frac 25,frac 65right).$$
answered Dec 8 '18 at 9:13
dezdichadodezdichado
6,3711929
$endgroup$
2
$begingroup$
This is what I really wanted. Excellent way to break $x^2+y^2$
$endgroup$
– Digamma
Dec 8 '18 at 9:40
add a comment |
$begingroup$
You can dress up your geometric argument as an inequality in $mathbb{C}$.
Let $z=x+iy$, $a=2i$, $b=2-2i$. Then
begin{align}
sqrt{2x^2+2y^2} &= lvert (1-i)zrvert\
sqrt{y^2+x^2-4y+4} &= lvert z-arvert\
sqrt{x^2+y^2-4x-4y+8} &= lvert -iz-brvert
end{align}
So the triangle inequality gives
$$
lvert (1-i)zrvert + lvert z-arvert + lvert -iz-brvert ge lvert a-brvert
$$
with equality if and only if the four points $a,z,-iz,b$ are all on the same line and in this order. Now argue why such a $z$ exists.
edited Dec 8 '18 at 9:02
J.G.
25.9k22540
answered Dec 8 '18 at 8:57
user10354138user10354138
7,4322925
$endgroup$
add a comment |
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2 Answers
2
active
oldest
votes
2 Answers
2
active
oldest
votes
active
oldest
votes
active
oldest
votes
$begingroup$
You can still use Minkowski as:
$$sqrt{(x+y)^2+(y-x)^2}+sqrt{(2-y)^2+x^2}+sqrt{(2-x)^2+(2-y)^2}geqsqrt{(x+y+2-y+2-x)^2+(y-x+x+2-y)^2}=sqrt{20}.$$
One can check that the equality is attained when: $$(x,y) = left(frac 25,frac 65right).$$
answered Dec 8 '18 at 9:13
dezdichadodezdichado
6,3711929
$endgroup$
2
$begingroup$
This is what I really wanted. Excellent way to break $x^2+y^2$
$endgroup$
– Digamma
Dec 8 '18 at 9:40
add a comment |
$begingroup$
You can still use Minkowski as:
$$sqrt{(x+y)^2+(y-x)^2}+sqrt{(2-y)^2+x^2}+sqrt{(2-x)^2+(2-y)^2}geqsqrt{(x+y+2-y+2-x)^2+(y-x+x+2-y)^2}=sqrt{20}.$$
One can check that the equality is attained when: $$(x,y) = left(frac 25,frac 65right).$$
answered Dec 8 '18 at 9:13
dezdichadodezdichado
6,3711929
$endgroup$
2
$begingroup$
This is what I really wanted. Excellent way to break $x^2+y^2$
$endgroup$
– Digamma
Dec 8 '18 at 9:40
add a comment |
$begingroup$
You can still use Minkowski as:
$$sqrt{(x+y)^2+(y-x)^2}+sqrt{(2-y)^2+x^2}+sqrt{(2-x)^2+(2-y)^2}geqsqrt{(x+y+2-y+2-x)^2+(y-x+x+2-y)^2}=sqrt{20}.$$
One can check that the equality is attained when: $$(x,y) = left(frac 25,frac 65right).$$
answered Dec 8 '18 at 9:13
dezdichadodezdichado
6,3711929
$endgroup$
You can still use Minkowski as:
$$sqrt{(x+y)^2+(y-x)^2}+sqrt{(2-y)^2+x^2}+sqrt{(2-x)^2+(2-y)^2}geqsqrt{(x+y+2-y+2-x)^2+(y-x+x+2-y)^2}=sqrt{20}.$$
One can check that the equality is attained when: $$(x,y) = left(frac 25,frac 65right).$$
answered Dec 8 '18 at 9:13
dezdichadodezdichado
6,3711929
answered Dec 8 '18 at 9:13
dezdichadodezdichado
6,3711929
answered Dec 8 '18 at 9:13
dezdichadodezdichado
6,3711929
answered Dec 8 '18 at 9:13
dezdichadodezdichado
6,3711929
6,3711929
2
$begingroup$
This is what I really wanted. Excellent way to break $x^2+y^2$
$endgroup$
– Digamma
Dec 8 '18 at 9:40
add a comment |
2
$begingroup$
This is what I really wanted. Excellent way to break $x^2+y^2$
$endgroup$
– Digamma
Dec 8 '18 at 9:40
2
2
$begingroup$
This is what I really wanted. Excellent way to break $x^2+y^2$
$endgroup$
– Digamma
Dec 8 '18 at 9:40
$begingroup$
This is what I really wanted. Excellent way to break $x^2+y^2$
$endgroup$
– Digamma
Dec 8 '18 at 9:40
add a comment |
$begingroup$
You can dress up your geometric argument as an inequality in $mathbb{C}$.
Let $z=x+iy$, $a=2i$, $b=2-2i$. Then
begin{align}
sqrt{2x^2+2y^2} &= lvert (1-i)zrvert\
sqrt{y^2+x^2-4y+4} &= lvert z-arvert\
sqrt{x^2+y^2-4x-4y+8} &= lvert -iz-brvert
end{align}
So the triangle inequality gives
$$
lvert (1-i)zrvert + lvert z-arvert + lvert -iz-brvert ge lvert a-brvert
$$
with equality if and only if the four points $a,z,-iz,b$ are all on the same line and in this order. Now argue why such a $z$ exists.
edited Dec 8 '18 at 9:02
J.G.
25.9k22540
answered Dec 8 '18 at 8:57
user10354138user10354138
7,4322925
$endgroup$
add a comment |
$begingroup$
You can dress up your geometric argument as an inequality in $mathbb{C}$.
Let $z=x+iy$, $a=2i$, $b=2-2i$. Then
begin{align}
sqrt{2x^2+2y^2} &= lvert (1-i)zrvert\
sqrt{y^2+x^2-4y+4} &= lvert z-arvert\
sqrt{x^2+y^2-4x-4y+8} &= lvert -iz-brvert
end{align}
So the triangle inequality gives
$$
lvert (1-i)zrvert + lvert z-arvert + lvert -iz-brvert ge lvert a-brvert
$$
with equality if and only if the four points $a,z,-iz,b$ are all on the same line and in this order. Now argue why such a $z$ exists.
edited Dec 8 '18 at 9:02
J.G.
25.9k22540
answered Dec 8 '18 at 8:57
user10354138user10354138
7,4322925
$endgroup$
add a comment |
$begingroup$
You can dress up your geometric argument as an inequality in $mathbb{C}$.
Let $z=x+iy$, $a=2i$, $b=2-2i$. Then
begin{align}
sqrt{2x^2+2y^2} &= lvert (1-i)zrvert\
sqrt{y^2+x^2-4y+4} &= lvert z-arvert\
sqrt{x^2+y^2-4x-4y+8} &= lvert -iz-brvert
end{align}
So the triangle inequality gives
$$
lvert (1-i)zrvert + lvert z-arvert + lvert -iz-brvert ge lvert a-brvert
$$
with equality if and only if the four points $a,z,-iz,b$ are all on the same line and in this order. Now argue why such a $z$ exists.
edited Dec 8 '18 at 9:02
J.G.
25.9k22540
answered Dec 8 '18 at 8:57
user10354138user10354138
7,4322925
$endgroup$
You can dress up your geometric argument as an inequality in $mathbb{C}$.
Let $z=x+iy$, $a=2i$, $b=2-2i$. Then
begin{align}
sqrt{2x^2+2y^2} &= lvert (1-i)zrvert\
sqrt{y^2+x^2-4y+4} &= lvert z-arvert\
sqrt{x^2+y^2-4x-4y+8} &= lvert -iz-brvert
end{align}
So the triangle inequality gives
$$
lvert (1-i)zrvert + lvert z-arvert + lvert -iz-brvert ge lvert a-brvert
$$
with equality if and only if the four points $a,z,-iz,b$ are all on the same line and in this order. Now argue why such a $z$ exists.
edited Dec 8 '18 at 9:02
J.G.
25.9k22540
answered Dec 8 '18 at 8:57
user10354138user10354138
7,4322925
edited Dec 8 '18 at 9:02
J.G.
25.9k22540
edited Dec 8 '18 at 9:02
J.G.
25.9k22540
edited Dec 8 '18 at 9:02
J.G.
25.9k22540
25.9k22540
answered Dec 8 '18 at 8:57
user10354138user10354138
7,4322925
answered Dec 8 '18 at 8:57
user10354138user10354138
7,4322925
answered Dec 8 '18 at 8:57
user10354138user10354138
7,4322925
7,4322925
add a comment |
add a comment |
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$begingroup$
Hmm, you seem to hint on some real analysis inequalities. Is this an exercise from such a lesson ?
$endgroup$
– Rebellos
Dec 8 '18 at 8:01
$begingroup$
@Rebellos Maybe, I don't know because it was given to me by one of my friends. I solved it using a geometrical approach but I wanted to know if there could an algebraic solution to it.
$endgroup$
– Digamma
Dec 8 '18 at 8:06