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[ranose] Fanbox Reward 2025.01

Artist CG
Posted:2025-04-15 06:54
Parent:None
Visible:Yes
Language:Chinese  
File Size:317.3 MiB
Length:59 pages
Favorited:676 times
Rating:
63
Average: 3.67

Showing 41 - 59 of 59 images

<123>
<123>
Posted on 15 April 2025, 06:54 by:   Nworm    PM
Uploader Comment
https://ranose.booth.pm/items/6567768
Posted on 15 April 2025, 09:48 by:   永劫残梦    PM
Score +32
怎么奈子都打码😡😡😡
Posted on 16 April 2025, 03:17 by:   Quadrupole    PM
Score +181
黑板左上:
待证:
frac{int_0^1 x f(x)^3 dx}{int_0^1 x f(x)^2 dx} geq frac{int_0^1 f(x)^3 dx}{int_0^1 f(x)^2 dx}
交叉相乘,得:
left(int_0^1 x f(x)^3 dxright) left(int_0^1 f(x)^2 dxright) geq left(int_0^1 f(x)^3 dxright) left(int_0^1 x f(x)^2 dxright)
int_0^1 int_0^1 x f(x)^3 f(y)^2 dx dy geq int_0^1 int_0^1 f(y)^3 x f(x)^2 dx dy
int_0^1 int_0^1 x f(x)^2 f(y)^2 [f(x) - f(y)] dx dy equiv I geq 0
其中,
I = left(iint_{x>y} + iint_{x<y}right) x f(x)^2 f(y)^2 [f(x) - f(y)] dx dy
= iint_{x>y} x f(x)^2 f(y)^2 [f(x) - f(y)] dx dy + iint_{x'>y'} y' f(y')^2 f(x')^2 [f(y') - f(x')] dx' dy'
= iint_{x>y} f(x)^2 f(y)^2 (x - y) [f(x) - f(y)] dx dy
式中,$ f(x)^2, f(y)^2 geq 0 $,$ x - y > 0 $,由$ f(x) $单调性可得$ f(x) - f(y) geq 0 $,因此$ I geq 0 $。证毕。

不过说实话能被绑在柱子上爽,就算会也装不会(手动狗头)

反斜杠都被吞了,估计是防SQL注入?试试以下几种方法:
backslash
Posted on 16 April 2025, 19:34 by:   HSM_043    PM
Score +4
黑板上排列组合,你舍得解开么(
Posted on 28 May 2025, 14:10 by:   兔子老大猫猫酱    PM
Score +14
密码的,上边那个解题的鹿完了是吧()

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