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Is there a real function that satisfies the relation $f(f(x)) = 1-x$?
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As already one user wrote out on Stack Exchange there is a discontinuous function that satisfies the equation $f(f(x)) = -x$. Namely:
Find a real function $f:mathbbRtomathbbR$ such that $f(f(x)) = -x$?
--> click on the image here to view the function: g(x)
I also know that the function mentioned in that piece is equal to
$$f(x) = g(x-0.5)+0.5$$
Can anyone help me out on this and find the appropriate f(x)?
functions
asked Jul 25 at 20:28
King
11
 |Â
show 7 more comments
up vote
0
down vote
favorite
As already one user wrote out on Stack Exchange there is a discontinuous function that satisfies the equation $f(f(x)) = -x$. Namely:
Find a real function $f:mathbbRtomathbbR$ such that $f(f(x)) = -x$?
--> click on the image here to view the function: g(x)
I also know that the function mentioned in that piece is equal to
$$f(x) = g(x-0.5)+0.5$$
Can anyone help me out on this and find the appropriate f(x)?
functions
asked Jul 25 at 20:28
King
11
What is $g(x)$?
– Jam
Jul 25 at 20:30
g(x) is mentioned in the post I linked in my description, name Hurkyl
– King
Jul 25 at 20:31
There are at least $2$ different $g(x)$'s on that page
– Jam
Jul 25 at 20:33
At the end of Hurkyls post there is a function mentioned that satisfies the equation f(f(x)) = -x. I mean that explicit function
– King
Jul 25 at 20:35
3
Geometric observation $$ 1-f(x) = f(f(f(x))) = f(1-x), $$ so $f(x) + f(1-x) = 1$.
– Sisyphus
Jul 25 at 20:46
 |Â
show 7 more comments
up vote
0
down vote
favorite
up vote
0
down vote
favorite
As already one user wrote out on Stack Exchange there is a discontinuous function that satisfies the equation $f(f(x)) = -x$. Namely:
Find a real function $f:mathbbRtomathbbR$ such that $f(f(x)) = -x$?
--> click on the image here to view the function: g(x)
I also know that the function mentioned in that piece is equal to
$$f(x) = g(x-0.5)+0.5$$
Can anyone help me out on this and find the appropriate f(x)?
functions
asked Jul 25 at 20:28
King
11
As already one user wrote out on Stack Exchange there is a discontinuous function that satisfies the equation $f(f(x)) = -x$. Namely:
Find a real function $f:mathbbRtomathbbR$ such that $f(f(x)) = -x$?
--> click on the image here to view the function: g(x)
I also know that the function mentioned in that piece is equal to
$$f(x) = g(x-0.5)+0.5$$
Can anyone help me out on this and find the appropriate f(x)?
functions
asked Jul 25 at 20:28
King
11
edited Jul 25 at 20:44
asked Jul 25 at 20:28
King
11
asked Jul 25 at 20:28
King
11
asked Jul 25 at 20:28
King
11
11
What is $g(x)$?
– Jam
Jul 25 at 20:30
g(x) is mentioned in the post I linked in my description, name Hurkyl
– King
Jul 25 at 20:31
There are at least $2$ different $g(x)$'s on that page
– Jam
Jul 25 at 20:33
At the end of Hurkyls post there is a function mentioned that satisfies the equation f(f(x)) = -x. I mean that explicit function
– King
Jul 25 at 20:35
3
Geometric observation $$ 1-f(x) = f(f(f(x))) = f(1-x), $$ so $f(x) + f(1-x) = 1$.
– Sisyphus
Jul 25 at 20:46
 |Â
show 7 more comments
What is $g(x)$?
– Jam
Jul 25 at 20:30
g(x) is mentioned in the post I linked in my description, name Hurkyl
– King
Jul 25 at 20:31
There are at least $2$ different $g(x)$'s on that page
– Jam
Jul 25 at 20:33
At the end of Hurkyls post there is a function mentioned that satisfies the equation f(f(x)) = -x. I mean that explicit function
– King
Jul 25 at 20:35
3
Geometric observation $$ 1-f(x) = f(f(f(x))) = f(1-x), $$ so $f(x) + f(1-x) = 1$.
– Sisyphus
Jul 25 at 20:46
What is $g(x)$?
– Jam
Jul 25 at 20:30
What is $g(x)$?
– Jam
Jul 25 at 20:30
g(x) is mentioned in the post I linked in my description, name Hurkyl
– King
Jul 25 at 20:31
g(x) is mentioned in the post I linked in my description, name Hurkyl
– King
Jul 25 at 20:31
There are at least $2$ different $g(x)$'s on that page
– Jam
Jul 25 at 20:33
There are at least $2$ different $g(x)$'s on that page
– Jam
Jul 25 at 20:33
At the end of Hurkyls post there is a function mentioned that satisfies the equation f(f(x)) = -x. I mean that explicit function
– King
Jul 25 at 20:35
At the end of Hurkyls post there is a function mentioned that satisfies the equation f(f(x)) = -x. I mean that explicit function
– King
Jul 25 at 20:35
3
3
Geometric observation $$ 1-f(x) = f(f(f(x))) = f(1-x), $$ so $f(x) + f(1-x) = 1$.
– Sisyphus
Jul 25 at 20:46
Geometric observation $$ 1-f(x) = f(f(f(x))) = f(1-x), $$ so $f(x) + f(1-x) = 1$.
– Sisyphus
Jul 25 at 20:46
 |Â
show 7 more comments
1 Answer
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The same approach as in the accepted answer to the linked question works. We have to have $f(frac 12)=frac 12$, which makes $f(f(frac 12))=frac 12=1-frac 12$. Partition the reals greater than $frac 12$ into disjoint pairs. Given a pair $(a,b)$ define $$f(a)=b\ f(b)=1-a\ f(1-a)=1-b\f(1-b)=a$$ Then $f(f(1-a))=a=1-(1-a)$ and similarly for $f(f(1-b))=b$ as required.
answered Jul 25 at 22:04
Ross Millikan
275k21186351
add a comment |Â
1 Answer
1
active
oldest
votes
1 Answer
1
active
oldest
votes
active
oldest
votes
active
oldest
votes
up vote
0
down vote
The same approach as in the accepted answer to the linked question works. We have to have $f(frac 12)=frac 12$, which makes $f(f(frac 12))=frac 12=1-frac 12$. Partition the reals greater than $frac 12$ into disjoint pairs. Given a pair $(a,b)$ define $$f(a)=b\ f(b)=1-a\ f(1-a)=1-b\f(1-b)=a$$ Then $f(f(1-a))=a=1-(1-a)$ and similarly for $f(f(1-b))=b$ as required.
answered Jul 25 at 22:04
Ross Millikan
275k21186351
add a comment |Â
up vote
0
down vote
The same approach as in the accepted answer to the linked question works. We have to have $f(frac 12)=frac 12$, which makes $f(f(frac 12))=frac 12=1-frac 12$. Partition the reals greater than $frac 12$ into disjoint pairs. Given a pair $(a,b)$ define $$f(a)=b\ f(b)=1-a\ f(1-a)=1-b\f(1-b)=a$$ Then $f(f(1-a))=a=1-(1-a)$ and similarly for $f(f(1-b))=b$ as required.
answered Jul 25 at 22:04
Ross Millikan
275k21186351
add a comment |Â
up vote
0
down vote
up vote
0
down vote
The same approach as in the accepted answer to the linked question works. We have to have $f(frac 12)=frac 12$, which makes $f(f(frac 12))=frac 12=1-frac 12$. Partition the reals greater than $frac 12$ into disjoint pairs. Given a pair $(a,b)$ define $$f(a)=b\ f(b)=1-a\ f(1-a)=1-b\f(1-b)=a$$ Then $f(f(1-a))=a=1-(1-a)$ and similarly for $f(f(1-b))=b$ as required.
answered Jul 25 at 22:04
Ross Millikan
275k21186351
The same approach as in the accepted answer to the linked question works. We have to have $f(frac 12)=frac 12$, which makes $f(f(frac 12))=frac 12=1-frac 12$. Partition the reals greater than $frac 12$ into disjoint pairs. Given a pair $(a,b)$ define $$f(a)=b\ f(b)=1-a\ f(1-a)=1-b\f(1-b)=a$$ Then $f(f(1-a))=a=1-(1-a)$ and similarly for $f(f(1-b))=b$ as required.
answered Jul 25 at 22:04
Ross Millikan
275k21186351
answered Jul 25 at 22:04
Ross Millikan
275k21186351
answered Jul 25 at 22:04
Ross Millikan
275k21186351
answered Jul 25 at 22:04
Ross Millikan
275k21186351
275k21186351
add a comment |Â
add a comment |Â
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What is $g(x)$?
– Jam
Jul 25 at 20:30
g(x) is mentioned in the post I linked in my description, name Hurkyl
– King
Jul 25 at 20:31
There are at least $2$ different $g(x)$'s on that page
– Jam
Jul 25 at 20:33
At the end of Hurkyls post there is a function mentioned that satisfies the equation f(f(x)) = -x. I mean that explicit function
– King
Jul 25 at 20:35
3
Geometric observation $$ 1-f(x) = f(f(f(x))) = f(1-x), $$ so $f(x) + f(1-x) = 1$.
– Sisyphus
Jul 25 at 20:46