Well, at least she died doing what she loved—getting her dick sucked.
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@flannelandflowers
Well, at least she died doing what she loved—getting her dick sucked.

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ahaha you sly dog! you bastard! [getting a little too comfortable] you wretched fucking animal
i love this guy's fully walleyed expression it radiates beautiful innocence
Really glad predictive text exists. Should i bring my own parking lot

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Study
The Chinese shoe manufacturer decided to demonstrate the indestructibility of their shoes
And also the indestructibility of that woman's ankles
Ravens Play in Snow by Wildlife World

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Full Video: Riekko mukana hiihtoreissulla, Tolkuton Willow ptarmigan included in ski trip
For the love of god, PLEASE UNMUTE!!!
ptarmigan: [in a deep, croaking voice] awow awow awow awow awow awow awow. awow. awow. awow… awow… bup bup bup bup bup bup. pow. pow. pow.
This doesn’t include the best bit of the whole thing - she found the Twitter thread!
This is like one of those romance novels where people bond over accidentally writing each other emails but better.
Like Pride and Prejudice but instead of the love interest getting dissed for his toxicity and then reforming, it’s just two people bonding over dissing a dead toxic asshole.
10/10 would recommend
Haven’t had a chance to watch the tutorial yet, but I’m seriously considering making this for my gf’s niece
I need to make one for work...
I don't think this is possible????
Hello Ryan I am here to help. So the first step is pretty easy: Three cheeseburgers are worth 18, so each one is worth 6. If these are dollars, that's a steal!
From the second equation we get that cheeseburger plus fries-squared is five. Subtracting cheeseburger, which is six, from both sides, we get that fries-squared is negative-one. Math fans will know that there are two solutions to this; either fries are the "imaginary unit" 𝒾 or they are its negative, -𝒾. We'll do the rest of the problem with 𝒾, keeping in mind that at the end we should also take the complex conjugates as solutions.
Finally, we have that cup to the power of fries, minus cup, equals three. Replacing fries with 𝒾, and moving a cup to the other side, we get that cup-to-the-𝒾 is equal to cup-plus-three.
Now, the weird part about this is the cup-to-the-i. The problem with this is that complex exponentiation is technically not a thing. That is to say, there is no one function which is mathematically equal to "input-to-the-power-of-𝒾". In fact, there are infinitely many such functions.
Fortunately, due to reasons that take about six pages to explain (trust me I've done it), there is one particular function that many people have agreed is "the most reasonable one". This is not a mathematical notion, but a human preference. Seeing as this question was presumably written by a human, I am comfortable with using this function.
So, what function is this? Well, given a complex number r∠θ written in polar form (if you don't know what that means don't worry), where -π < θ ≤ π, then (r∠θ)^𝒾 = e^(-θ)∠ln(r).
Applying this to our problem a value r∠θ will be a possible solution for cup if e^(-θ)∠ln(r) = r∠θ + 3. Splitting this into real and imaginary parts, we get two equations: e^(-θ) cos(ln(r)) = r cos(θ) + 3 and e^(-θ) sin(ln(r)) = r sin(θ). We can graph these equations on Desmos:
The possible values of cup are the intersections between the red, green, and purple. There are infinitely many of these which have an angle of around -π/3, and there are two weirdos: One which is a complex number very close to -2.98, and one which is somewhere around -25. The possible values for cup are all of these infinitely many solutions, and also all of their complex conjugates.
They were right, 99% of people can't solve it.
i've actually been working on some formulae to give all possible solutions to complex exponentiation problems recently, so here's my take on this:
let the value of the glass = z, for z ∈ ℂ:
z^(±i) = 3+z
let z = r·e^(iθ) for r,θ ∈ ℝ, -π < θ ≤ π
∴ z = r·e^i(θ+2πn) for all n ∈ ℤ
∴ (r·e^i(θ+2πn))^(±i) = 3+r·e^i(θ+2πn)
distribute powers (apologies for the use of ∓):
r^(±i)·e^(∓(θ+2πn)) = 3+r·e^i(θ+2πn)
convert to the same base:
e^i(±ln(r))·e^(∓(θ+2πn)) = 3+r·e^i(θ+2πn)
split into real and imaginary components:
re: cos(±ln(r))·e^(∓(θ+2πn)) = 3+r·cos(θ)
im: sin(±ln(r))·e^(∓(θ+2πn)) = r·sin(θ)
in effect, all this changes is the restriction on the domain of theta to be between -pi and pi, so you can just ignore that constraint.
what is this genre of photos called
[image description: 11 photos of various cats trying their hardest to steal a bite of human foods, while their humans hold them back by grabbing their heads, causing them to have funny stretched faces and bug eyes.]

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He was a sk8r boi
He said, "See you later, boy"
Stoned af and made the best tweet of my life.