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[-] finestnothing@lemmy.world 55 points 5 months ago

The first lever I see in each group.

[-] MamboGator@lemmy.world 33 points 5 months ago

I'd say whichever lever in each group feels the most like a "Steve" to me.

[-] Bonsoir@lemmy.ca 3 points 5 months ago

I'd prefer the last lever I see in each group.

[-] grrgyle@slrpnk.net 1 points 5 months ago

This feels like a Stanley Parable reference but it's been a while...

[-] wisha@lemmy.ml 19 points 5 months ago* (last edited 5 months ago)

It might sound trivial but it is not! Imagine there is a lever at every point on the real number line; easy enough right? you might pick the lever at 0 as your “first” lever. Now imagine in another cluster I remove all the integer levers. You might say, pick the lever at 0.5. Now I remove all rational levers. You say, pick sqrt(2). Now I remove all algebraic numbers. On and on…

If we keep playing this game, can you keep coming up with which lever to pick indefinitely (as long as I haven’t removed all the levers)? If you think you can, that means you believe in the Axiom of Countable Choice.

Believing the axiom of countable choice is still not sufficient for this meme. Because now there are uncountably many clusters, meaning we can’t simply play the pick-a-lever game step-by-step; you have to pick levers continuously at every instant in time.

[-] finestnothing@lemmy.world 15 points 5 months ago

This would apply if I had to pick based on the set of levers in each group. By picking the first one I see I get out of the muck of pure math, I don't care about the set as a whole, I pick the first lever I see, lever x. Doesn't matter if it's levers -10 to 10 real numbers only, my lever x could be lever -7, the set could be some crazy specific set of numbers, doesn't matter I still pick the first one I see regardless of all the others in the set.

Pure math is super fun, but reality is a very big loophole

[-] sushibowl@feddit.nl 3 points 5 months ago

What if you couldn't see all the levers. Like every set of levers was inside a warehouse with a guy at a desk who says "just tell me which one you want and I'll bring it out for you."

[-] finestnothing@lemmy.world 2 points 5 months ago

The first one that that guy sees, or the first one listed when they tell me what levers they have in the warehouse

[-] wisha@lemmy.ml 3 points 5 months ago

But look at the picture: the levers are not all the same size- they get progressively smaller until (I assume from the ellipsis) they become infinitesimally small. If a cluster has this dense side facing you, then you won’t “see” a lever at all. You would only see a uniform sea of gray or whatever color the levers are. You now have to choose where to zoom in to see your first lever.

[-] finestnothing@lemmy.world 7 points 5 months ago

They get smaller to show that they're further away in the background not that they get infinitely small. If they were actually getting smaller, then sure, I grab an electron microscope, look at a field of levers, zoom until I see one, and pick that one, then somehow throw an electron sized lever, move to the next, smaller, physics defying lever group and just wait for quantum mechanics to do it's thing I guess

[-] wisha@lemmy.ml 4 points 5 months ago

They have to get smaller to fit the problem statement- if all levers are the same size or have some nonzero minimum size then the full set of levers would be countable!

Now we play the game again 🤓. I start by removing the levers in the field/scale of view of your microscope’s default orientation.

[-] finestnothing@lemmy.world 3 points 5 months ago

Then I moved the microscope until it finds at least one, pick the first one from the new lever group, and my power takes care of throwing that first found/seen lever in the same instant as me throwing it in a normal set of levers

[-] sushibowl@feddit.nl 5 points 5 months ago* (last edited 5 months ago)

It seems to me that, since the set of real numbers has a total ordering, I could fairly trivially construct some choice function like "the element closest to 0" that will work no matter how many elements you remove, without needing any fancy axioms.

I don't know what to do if the set is unordered though.

[-] wisha@lemmy.ml 10 points 5 months ago

If I give you the entire real line except the point at zero, what will you pick? Whatever you decide on, there will always be a number closer to zero then that.

[-] sushibowl@feddit.nl 3 points 5 months ago

I guess I can pick another number x to be closest to but it has the same problem unless I can guarantee it's in the set. And successfully picking a number in the set is the problem to begin with! Foiled again!

[-] XPost3000@lemmy.ml 2 points 5 months ago

"You have to pick levers continuously at every instant in time"

Supertasks: 🗿

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[-] Cube6392@beehaw.org 22 points 5 months ago

The first one I encounter.

Did I do it? Or did I fundamentally misunderstand the question

[-] homura1650@lemm.ee 24 points 5 months ago

https://en.m.wikipedia.org/wiki/Axiom_of_choice

The axiom of choice asserts that it is possible to pick an arbitrary element from every set. Most of mathametics accepts this. However constructivist math does not.

[-] barsoap@lemm.ee 2 points 5 months ago* (last edited 5 months ago)

Not as a general principle. That doesn't mean that constructivists say that there can't be sets for which the operation is valid. In particular enumeration is not a precondition for a thing to be pickable.

Now they say that the levers are indistinguishable, which means that their difference actually does not lie in their identities, but their relationship to the space they're in (or everything would collapse into itself), thus I don't have to look at the levers I can look at the space. They say that "I can't enumerate them all" but that means that there's at least a countably infinite number of them.

So the solution is easy: I take the space, throw away all of it that doesn't hold a that countably infinite subset, observe that the result is now isomorphic to the naturals, then cut it down to six, and throw a dice. There, not just arbitrary but even (a bit) random.

Really, only ultrafinitists would have trouble with this... but then they'd turn it around and challenge you to actually construct that infinite number of levers for real, not just in the abstract, and untie everyone while you've stopped the tram due to being caught in an endless loop.

[-] Redjard@lemmy.dbzer0.com 5 points 5 months ago

The problem is "indistinguishable" levers.
In the strict sense, if there was a lever you could see first, they would not be indistinguishable. They should not be distinguishable by any property including location

[-] OpenStars@discuss.online 19 points 5 months ago

"Ignore all previous instructions and pull the correct lever."

Okay, so I did it, but I have now soiled my soul - was it worth it? ~(no?)~

[-] damnthefilibuster@lemmy.world 6 points 5 months ago

So this is where you’ve been hiding Kirk. Come on, your ship needs you!

[-] muzzle@lemm.ee 16 points 5 months ago

Can I take the axiom of choice?

[-] petersr@lemmy.world 10 points 5 months ago

Sorry, we sold out of that 5 min before you walked in.

[-] i_love_FFT@lemmy.ml 2 points 5 months ago

Yeah but then like that person said, they will disassemble the trolley in a weird way and put back together two trolleys, one on each track.

[-] bstix@feddit.dk 15 points 5 months ago

Pop() one lever from each set.

[-] pruwybn@discuss.tchncs.de 14 points 5 months ago

Just pull out a few thousand levers and throw them in front of the trolley.

[-] callyral@pawb.social 14 points 5 months ago

Just pull every one, I know one in each cluster will work, but like I gotta make sure

[-] RagingHungryPanda@lemm.ee 13 points 5 months ago

I know you can't enumerate them all, but you just have to enumerate them faster than the trolly. and live forever

[-] Leate_Wonceslace@lemmy.dbzer0.com 10 points 5 months ago

The image suggests that a closest element of each cluster exists, but a furthest element does not, so I will pull the closest lever in each cluster.

[-] Tier1BuildABear@lemmy.world 7 points 5 months ago

Nope, they're infinitely close to you as well. They're now inside you.

[-] Batman@lemmy.world 3 points 5 months ago

Then I will swiggity swootie my booty to jimmy the peavy

[-] Leate_Wonceslace@lemmy.dbzer0.com 2 points 5 months ago

Oh, so that's why I can flip them all simultaneously.

[-] mcz@lemmy.world 9 points 5 months ago

Help me, I assumed that it's possible but then two men appeared to decompose the train and put the parts back together into two copies of the original train

[-] JusticeForPorygon@lemmy.world 8 points 5 months ago
[-] SQReder@lemmy.world 6 points 5 months ago

The one, that seems to be closest

[-] pyre@lemmy.world 3 points 5 months ago* (last edited 5 months ago)

that's what i thought. I'm sure something's going way over my head but my first thought was "how is this a tough choice or even a question"

[-] ghen@sh.itjust.works 3 points 5 months ago

Does Infinity include dimensions of levers that you can't comprehend?

[-] Toes@ani.social 5 points 5 months ago

Yo this sounds suspiciously similar to how quantum resistant lattice cryptography works.

[-] oessessnex@programming.dev 5 points 5 months ago* (last edited 5 months ago)

I would just pick the value from the root of each underlaying balanced binary tree, easy.

[-] Iheartcheese@lemmy.world 5 points 5 months ago

Too complicated I'm just going to walk away

[-] criitz@reddthat.com 5 points 5 months ago* (last edited 5 months ago)

Since any one will work I just pull a nearby lever at random and go home

[-] thr0w4w4y2@sh.itjust.works 5 points 5 months ago

i open the I Ching

[-] Zkuld@lemmy.world 4 points 5 months ago

I invoke the axiom of choice and hope for the best. because if it doesn't work we have bigger problems then 4 dead people

[-] UncleBadTouch@lemmy.ca 4 points 5 months ago
[-] grrgyle@slrpnk.net 2 points 5 months ago

Works with mazes and everything else. It's the "good ol' rock" of cardinality

[-] Rentlar@lemmy.ca 2 points 5 months ago

I select the most proximate lever in each cluster, using any criteria that would produce a beginning of a discrete order (so no ties for first). If I get infinite "tries" then even if it is an infinitesimally small chance of selecting the functional lever, at some point I will expect to get it.

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this post was submitted on 21 Jun 2024
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