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@dini_sorular7:
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Region: TR
Friday 10 July 2026 19:07:56 GMT
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Comments
yargıç :
Aminnn Allah'ım 🌹
2026-07-10 20:07:01
1
gnlnmsersaiiyeva :
amin yrabbim amin allah kabuletsin
2026-07-11 15:16:32
1
❤ KEZİZER🥰🙁 :
❤️❤️ALLAH ALLAHÜMME SALLİ ALÂ SEYYİDİNE MUHAMMED RESULULLAH TÜM PEYGAMBERLER EFENDİMİZ SELAM OLSUN AMİN AMİN AMİN AMİN AMİN 🤲 ECMAİN 🤲🤲🤲🤲❤🤲
2026-07-10 23:44:06
1
AYŞE HAZNE :
AMİNNN ECMAİNNN 🤲🤲🤲
2026-07-10 20:43:26
1
simitci baba :
Aminnnnnnnnn Aminnn 🤲☝️🤲☝️
2026-07-11 16:42:31
0
Aylara :
Allahü Ekbe🥰❤️
2026-07-10 19:13:12
0
Вугар Пашаев :
@amin.amin.amin.
2026-07-11 02:57:48
0
Sema Sema :
🤲🤲
2026-07-10 20:27:21
1
To see more videos from user @dini_sorular7, please go to the Tikwm homepage.
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Graham's number is one of the most famously enormous finite numbers ever used in a serious mathematical proof. It comes from Ramsey theory (a branch of combinatorics) and serves as a wildly loose upper bound for a specific problem about coloring the edges of high-dimensional hypercubes. The Problem It Solves (Simplified) Imagine an n-dimensional hypercube (like a 3D cube but in higher dimensions). Connect every pair of corners with a line, and color each line either red or blue. The question is: What's the smallest dimension n where you're guaranteed to find a flat 2D plane (a "coplanar" set of 4 points forming a complete graph) where all the edges are the same color? We know this must happen by some dimension (proven to exist). • The lower bound is small (around 6-13). • Graham's number was originally an upper bound: it definitely happens by the time you reach that many dimensions (or fewer). It's ridiculously overkill-the actual answer is#fyp
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