Knight2023
Это не беда, возьмите какое-то еще покрытие. Проверьте, а не будет ли сумма меньше.
И еще какое-то. И еще раз проверьте.
Вам нужно найти инфимум по всем покрытиям. А пока мы нашли только одно. Ясно, что инфимум может быть меньше.
Considering the same partition that we had:
, we can develop a cover like this one:
![$$
\lbrace
(0,a], (a, x_1], (x_1, x_2], \cdots, (x_{n-1}, b]
\rbrace
$$](https://dxdy-02.korotkov.co.uk/f/9/f/2/9f242c7beba1f097832f7fa67373971682.png "$$
\lbrace
(0,a], (a, x_1], (x_1, x_2], \cdots, (x_{n-1}, b]
\rbrace
$$")
And we can write the measure as:
That is a telescopic sum, which results into
, and if we define
, the measure of that cover (I mean the measure of the union of the elements of that cover) is
.
-- 12.12.2023, 17:47 --I guess, I can do a little better:
Take a very small
, and for the same partition we have the following cover:
![$$
\lbrace
(a- \delta, a],
(a, x_1],
\cdots,
(x_{n-1}, b]
$$](https://dxdy-01.korotkov.co.uk/f/8/5/f/85f343f124e1a23003a224cfaa17650982.png "$$
\lbrace
(a- \delta, a],
(a, x_1],
\cdots,
(x_{n-1}, b]
$$")
And taking the measure would result into telescopic sum, leaving us with
As
can be made as small as we please, we have the infimum
and it well corresponds with the notion of length of an interval.
with respect to an increasing function 
as![$$
\mu_F (S) = \inf \{
\sum_{j=1}^{\infty} F(b_j) - F(a_j) : S \subset \bigcup_{j=1}^{\infty} (a_j, b_j] \}
$$](https://dxdy-01.korotkov.co.uk/f/8/3/0/830e41c0f723083cc63c5287f214c7a482.png "$$
\mu_F (S) = \inf \{
\sum_{j=1}^{\infty} F(b_j) - F(a_j) : S \subset \bigcup_{j=1}^{\infty} (a_j, b_j] \}
$$")
![$\mu_F \{ (a_j, b_j]\} = F(b_j) - F(a_j)$](https://dxdy-02.korotkov.co.uk/f/9/d/e/9de337d06b63a045c072dbfd725abb0982.png "$\mu_F \{ (a_j, b_j]\} = F(b_j) - F(a_j)$")
. 
formed in this fashion,![$$
Y = (a_1, b_2] \cup (a_2, b_2] \cup (a_3, b_3] \cup \cdots
$$](https://dxdy-02.korotkov.co.uk/f/5/b/d/5bd6d1bb23269e9a9ad7baff777ead3982.png "$$
Y = (a_1, b_2] \cup (a_2, b_2] \cup (a_3, b_3] \cup \cdots
$$")
![$$
\mu_F(Y) = \mu_F \{ (a_1, b_2]\} + \mu_F \{(a_2, b_2] \} + \mu_F \{ (a_3, b_3]\} \cdots
$$](https://dxdy-01.korotkov.co.uk/f/0/a/b/0abf05c7e99a630dcabd580cc72a365682.png "$$
\mu_F(Y) = \mu_F \{ (a_1, b_2]\} + \mu_F \{(a_2, b_2] \} + \mu_F \{ (a_3, b_3]\} \cdots
$$")
? Can someone please explain me why taking any subset of 
, нужно найти точную нижнюю грань сумм указанного вида, взятую по покрытиям множества 
seems to be saying that 
vary? I mean, it seems reasonable to take infimum of Upper Darboux sum 
because it varies with the partition 
, and decreases monotonically as 
doesn't make sense to me.![$(a,b]$](https://dxdy-01.korotkov.co.uk/f/c/6/f/c6f523011785edb445cc341039ecd26e82.png "$(a,b]$")
? Но такого покрытия может и не существовать в том смысле, что каким бы ни было покрытие множества ![$(a_i, b_i]$](https://dxdy-04.korotkov.co.uk/f/f/d/a/fda235fbcaafd800478dfb5b1a7dffb782.png "$(a_i, b_i]$")
![$S=[a,b]$](https://dxdy-01.korotkov.co.uk/f/4/6/d/46d7a33195dda08a8710c6e512c0827482.png "$S=[a,b]$")
.
and positive reals, a possible cover for ![$\{ (0,a/2], (a/2, b]\}$](https://dxdy-04.korotkov.co.uk/f/b/b/9/bb9a6ed58793f863fe9a4d2d1b498c9482.png "$\{ (0,a/2], (a/2, b]\}$")
. Though, there will be a lot more.![$[a,b]$](https://dxdy-04.korotkov.co.uk/f/f/e/4/fe477a2781d275b4481790690fccd15f82.png "$[a,b]$")
into a sets points as: 
, then another possible cover for ![$$
\lbrace
[a,x_1],
[x_1, x_2],
[x_2, x_3],
\cdots
[x_{n-1}, b]
\rbrace
$$](https://dxdy-04.korotkov.co.uk/f/7/4/b/74b34021db709d35ecc3dcb1fe4e0dd782.png "$$
\lbrace
[a,x_1],
[x_1, x_2],
[x_2, x_3],
\cdots
[x_{n-1}, b]
\rbrace
$$")
. Кстати, не зависящая от 
. Что странно, если бы это действительно была мера.![$$\lbrace [a,x_1], [x_1, x_2], [x_2, x_3], \cdots [x_{n-1}, b] \rbrace$$](https://dxdy-03.korotkov.co.uk/f/e/a/b/eabe2673aa9abe103458c0835cc1c93682.png "$$\lbrace [a,x_1], [x_1, x_2], [x_2, x_3], \cdots [x_{n-1}, b] \rbrace$$")