froggy_lol's Profile

Unfortunately, many people are not on this platform to "Learn more about Valorant Esports while maintaining a positive presence in the community." I find many of the interactions on this website to consist of either someone flaming a player, someone flaming a team, someone impolitely disagreeing with someone or flaming someone for liking a certain team. Many people on this forum are here to argue with other people as a way to make themselves feel better. I think many of those people dislike your positivity.

TLDR: many people dislike geospliced because geospliced is a good source of positivity, and many people aren't on the forum for positivity.

posted about a year ago

geospliced in Off Topic

I suspect people dislike geospliced simply because of how nice he is, however, I believe he is a friendly source of positivity on this platform.

posted about a year ago

Why EMEA fans are actually pathetic in General Discussion

geospliced is correct here, I don't think that vlr users are the best representation of the average EMEA fan. The majority of FNC fans probably do know that Derke is Finnish.

posted about a year ago

Can they just announce Americas in General Discussion

honestly im down, just rip the band-aid off now

posted about a year ago

"the 6 months is for the hype!!!" is a fucking lie in General Discussion

Notice how i didn't critique how the season wasn't boring, I explained the reason for the boring offseason. My point can exist with your point. And no, it's not Leo Faria.

posted about a year ago

"the 6 months is for the hype!!!" is a fucking lie in General Discussion

There won't be

posted about a year ago

"the 6 months is for the hype!!!" is a fucking lie in General Discussion

They also needed a longer break last year to get franchising up and running. Different reason.

posted about a year ago

"the 6 months is for the hype!!!" is a fucking lie in General Discussion

We had to have a longer break to get VCT China up and running, I don't understand complaining. There will be less of a break in future seasons.

posted about a year ago

sleep in Off Topic

go to sleep, easy

posted about a year ago

???????????????????????MXS???????????????????????? in General Discussion

the moose is on the loose

posted about a year ago

When you play ranked in General Discussion

i have three PCs, i play solo q on one, duo q on the other, and 5 stack on the last PC all at the same time

posted about a year ago

I cant sleep in Off Topic

pop a caffeinated beverage of your choice and play val, you're not sleeping tonight

posted about a year ago

@vlr in General Discussion

YES

posted about a year ago

@vlr in General Discussion

PLEASE I WANT TO DO MY PACIFIC PICK EM'S PLEASE I BEG PLEASE

posted about a year ago

I'm bored in Off Topic

21816

posted about a year ago

I'm bored in Off Topic

To solve this problem, we can use a combinatorial approach. We'll break it down into cases:

Choose 1 red ball and 1 blue ball from each of the 4 boxes.
Choose 2 red balls and 1 blue ball from one box, and 1 red ball and 2 blue balls from each of the remaining 3 boxes.
Choose 1 red ball and 2 blue balls from one box, and 2 red balls and 1 blue ball from each of the remaining 3 boxes.
Let's calculate the number of ways for each case:

Choosing 1 red ball and 1 blue ball from each of the 4 boxes:
(
3
1
)
×
(
2
1
)
(
1
3

)×(
1
2

) ways from each box
Total ways =
(
3
1
)
×
(
2
1
)
(
1
3

)×(
1
2

)^4

Choosing 2 red balls and 1 blue ball from one box, and 1 red ball and 2 blue balls from each of the remaining 3 boxes:
(
3
2
)
×
(
2
1
)
(
2
3

)×(
1
2

) ways to choose from one box
(
3
1
)
×
(
2
2
)
(
1
3

)×(
2
2

) ways to choose from each of the remaining 3 boxes
Total ways =
(
3
2
)
×
(
2
1
)
×
(
3
1
)
×
(
2
2
)
(
2
3

)×(
1
2

)×(
1
3

)×(
2
2

)^4

Choosing 1 red ball and 2 blue balls from one box, and 2 red balls and 1 blue ball from each of the remaining 3 boxes:
(
3
1
)
×
(
2
2
)
(
1
3

)×(
2
2

) ways to choose from one box
(
3
2
)
×
(
2
1
)
(
2
3

)×(
1
2

) ways to choose from each of the remaining 3 boxes
Total ways =
(
3
1
)
×
(
2
2
)
×
(
3
2
)
×
(
2
1
)
(
1
3

)×(
2
2

)×(
2
3

)×(
1
2

)^4

Now, we sum up the total number of ways from each case to get the final answer. Let's calculate it.

Let's calculate the number of ways for each case:

Choosing 1 red ball and 1 blue ball from each of the 4 boxes:
(
3
1
)
(
1
3

) ways to choose 1 red ball from each box
(
2
1
)
(
1
2

) ways to choose 1 blue ball from each box
Total ways =
(
3
1
)
×
(
2
1
)
(
1
3

)×(
1
2

)^4

Choosing 2 red balls and 1 blue ball from one box, and 1 red ball and 2 blue balls from each of the remaining 3 boxes:
(
3
2
)
(
2
3

) ways to choose 2 red balls from one box
(
2
1
)
(
1
2

) ways to choose 1 blue ball from one box
(
3
1
)
(
1
3

) ways to choose 1 red ball from each of the remaining 3 boxes
(
2
2
)
(
2
2

) ways to choose 2 blue balls from each of the remaining 3 boxes
Total ways =
(
3
2
)
×
(
2
1
)
×
(
3
1
)
×
(
2
2
)
(
2
3

)×(
1
2

)×(
1
3

)×(
2
2

)^4

Choosing 1 red ball and 2 blue balls from one box, and 2 red balls and 1 blue ball from each of the remaining 3 boxes:
(
3
1
)
(
1
3

) ways to choose 1 red ball from one box
(
2
2
)
(
2
2

) ways to choose 2 blue balls from one box
(
3
2
)
(
2
3

) ways to choose 2 red balls from each of the remaining 3 boxes
(
2
1
)
(
1
2

) ways to choose 1 blue ball from each of the remaining 3 boxes
Total ways =
(
3
1
)
×
(
2
2
)
×
(
3
2
)
×
(
2
1
)
(
1
3

)×(
2
2

)×(
2
3

)×(
1
2

)^4

Now, let's calculate each of these expressions.

Let's first calculate the number of ways for each case:

Choosing 1 red ball and 1 blue ball from each of the 4 boxes:
(
3
1
)
(
1
3

) ways to choose 1 red ball from each box
(
2
1
)
(
1
2

) ways to choose 1 blue ball from each box
Total ways =
(
3
1
)
×
(
2
1
)
(
1
3

)×(
1
2

)^4

Choosing 2 red balls and 1 blue ball from one box, and 1 red ball and 2 blue balls from each of the remaining 3 boxes:
(
3
2
)
(
2
3

) ways to choose 2 red balls from one box
(
2
1
)
(
1
2

) ways to choose 1 blue ball from one box
(
3
1
)
(
1
3

) ways to choose 1 red ball from each of the remaining 3 boxes
(
2
2
)
(
2
2

) ways to choose 2 blue balls from each of the remaining 3 boxes
Total ways =
(
3
2
)
×
(
2
1
)
×
(
3
1
)
×
(
2
2
)
(
2
3

)×(
1
2

)×(
1
3

)×(
2
2

)^4

Choosing 1 red ball and 2 blue balls from one box, and 2 red balls and 1 blue ball from each of the remaining 3 boxes:
(
3
1
)
(
1
3

) ways to choose 1 red ball from one box
(
2
2
)
(
2
2

) ways to choose 2 blue balls from one box
(
3
2
)
(
2
3

) ways to choose 2 red balls from each of the remaining 3 boxes
(
2
1
)
(
1
2

) ways to choose 1 blue ball from each of the remaining 3 boxes
Total ways =
(
3
1
)
×
(
2
2
)
×
(
3
2
)
×
(
2
1
)
(
1
3

)×(
2
2

)×(
2
3

)×(
1
2

)^4

Now, let's calculate each of these expressions.

Let's start by calculating the number of ways for each case:

Choosing 1 red ball and 1 blue ball from each of the 4 boxes:
(
3
1
)
(
1
3

) ways to choose 1 red ball from each box
(
2
1
)
(
1
2

) ways to choose 1 blue ball from each box
Total ways =
(
3
1
)
×
(
2
1
)
(
1
3

)×(
1
2

)^4

Choosing 2 red balls and 1 blue ball from one box, and 1 red ball and 2 blue balls from each of the remaining 3 boxes:
(
3
2
)
(
2
3

) ways to choose 2 red balls from one box
(
2
1
)
(
1
2

) ways to choose 1 blue ball from one box
(
3
1
)
(
1
3

) ways to choose 1 red ball from each of the remaining 3 boxes
(
2
2
)
(
2
2

) ways to choose 2 blue balls from each of the remaining 3 boxes
Total ways =
(
3
2
)
×
(
2
1
)
×
(
3
1
)
×
(
2
2
)
(
2
3

)×(
1
2

)×(
1
3

)×(
2
2

)^4

Choosing 1 red ball and 2 blue balls from one box, and 2 red balls and 1 blue ball from each of the remaining 3 boxes:
(
3
1
)
(
1
3

) ways to choose 1 red ball from one box
(
2
2
)
(
2
2

) ways to choose 2 blue balls from one box
(
3
2
)
(
2
3

) ways to choose 2 red balls from each of the remaining 3 boxes
(
2
1
)
(
1
2

) ways to choose 1 blue ball from each of the remaining 3 boxes
Total ways =
(
3
1
)
×
(
2
2
)
×
(
3
2
)
×
(
2
1
)
(
1
3

)×(
2
2

)×(
2
3

)×(
1
2

)^4

Now, let's calculate each of these expressions.

Let's calculate the number of ways for each case:

Choosing 1 red ball and 1 blue ball from each of the 4 boxes:
(
3
1
)
(
1
3

) ways to choose 1 red ball from each box
(
2
1
)
(
1
2

) ways to choose 1 blue ball from each box
Total ways =
(
3
1
)
×
(
2
1
)
(
1
3

)×(
1
2

)^4

Choosing 2 red balls and 1 blue ball from one box, and 1 red ball and 2 blue balls from each of the remaining 3 boxes:
(
3
2
)
(
2
3

) ways to choose 2 red balls from one box
(
2
1
)
(
1
2

) ways to choose 1 blue ball from one box
(
3
1
)
(
1
3

) ways to choose 1 red ball from each of the remaining 3 boxes
(
2
2
)
(
2
2

) ways to choose 2 blue balls from each of the remaining 3 boxes
Total ways =
(
3
2
)
×
(
2
1
)
×
(
3
1
)
×
(
2
2
)
(
2
3

)×(
1
2

)×(
1
3

)×(
2
2

)^4

Choosing 1 red ball and 2 blue balls from one box, and 2 red balls and 1 blue ball from each of the remaining 3 boxes:
(
3
1
)
(
1
3

) ways to choose 1 red ball from one box
(
2
2
)
(
2
2

) ways to choose 2 blue balls from one box
(
3
2
)
(
2
3

) ways to choose 2 red balls from each of the remaining 3 boxes
(
2
1
)
(
1
2

) ways to choose 1 blue ball from each of the remaining 3 boxes

posted about a year ago

I'm bored in Off Topic

The time complexity of searching an element in a red-black (RB) tree is O(log n), where n is the number of nodes in the tree.

posted about a year ago

I'm bored in Off Topic

Ask me anything

posted about a year ago

Let's Chat in Off Topic

I also wanted to say that I have wanted to become more positive on this website because of you.

posted about a year ago

Let's Chat in Off Topic

Thank you for your positivity on this website, Geospliced.
I am sorry that my fellow vlr users are downvoting you.

posted about a year ago

Cloud9 will shut your mouths in General Discussion

offseason tourneys mean nothing
They have lost to FNC, a good team
They have lost to LEV, a good team

The only upset in the offseason is the LXT INV and losing to FUR

posted about a year ago

Cloud9 will shut your mouths in General Discussion

Why no ult on haven?

posted about a year ago

Cloud9 will shut your mouths in General Discussion

I feel like c9 is a top 3-5 contender

Mark my words, they will at least do decent this year

posted about a year ago

Chipi Chapa's vs. Acend – Challengers League 2024 East Surge: Split 1 Regular Season W6 in Matches