Reality doesn’t exist until it is measured, quantum experiment finds
anu.edu.au
anu.edu.au
First, "realism" [1] is not the same thing as "reality". "Realism" basically means "physical quantities have a definite value". "Reality" is that thing that determines your experimental outcomes. Don't mix them up.
Second, interpretations of quantum mechanics disagree wildly about what kind of weird you use to explain things. Some interpretations have "realism", some don't. Some interpretations have retrocausality, some don't. Some interpretations have FTL effects, some don't. Since all the interpretations give (mostly) the same experimental predictions, it's misleading to single one out and say just that particular brand of weirdness was confirmed.
We confirmed that there's weird there. We didn't distinguish what brand of weird it is. Physicists widely disagree about which brand of weird to use, with no position achieving even a majority [2]. The original title was better.
1: https://en.wikipedia.org/wiki/Na%C3%AFve_realism#Realism_and...
2: http://www.preposterousuniverse.com/blog/2013/01/17/the-most...
... Which is exactly what the scientific method was designed to prevent. Categorically stating that nothing exists without our eventual knowledge of it is the height of arrogance.
From the article: "It proves that measurement is everything. At the quantum level, reality does not exist if you are not looking at it..."
The article does appear to be (incorrectly) arguing that this experiment proves one interpretation of QM correct. It's definitely incorrect - some years back myself and others used non-experimentalist interpretations of QM to get the same result - but it's not a misrepresentation of the article.
But the article didn't include it in the title, and I think that was the right choice. And HN usually tries to keep the original title.
> The bizarre nature of reality as laid out by quantum theory has survived another test, with scientists performing a famous experiment and proving that reality does not exist until it is measured.
Information information everywhere you look in fundamental physics. It does make me wonder why.
Maybe it's just our brain discovering patterns that don't mean anything.
But I suspect (on no basis whatsoever, except the fact that all previous metaphors have been wrong) that the "universe = Turing machine model" is wrong in some fundamental ways.
I have no idea what the universe is, but I'm open to the possibility that it isn't just an information processing system.
Another hint that maybe the big Turing machine isn't quite cutting it might be the experiments showing that gravity isn't quite like 'just' an entropic force but seems to behave genuinely different.
"Yeah, I could have tracked and updated n values pretty cheaply, but instead I decided to exponentiate an exponentially huge matrix and use that to update a vector containing 2^n complex numbers associated with the possible assignments of the original n bits. Also, you should use bogosort. It's the best."
/jk
If the top-level rules are classical-ish, then quantum mechanics is expensive instead of cheap. If the top-level rules are quantum-ish, then that begs the question of why we thought quantum implied simulated. If the top-level rules are totally different... then there's not really much to be concluded.
Well, the way I understand this, is that this result proves that we do NOT live in a simulation. Because if reality does not exist until measured, then we apparently cannot compute reality ahead of time. And if we cannot compute reality ahead of time, it does not exist yet.
Quite sure there's a clever quip about this exact thing in terms of bits and bytes, I just haven't walked into that part of the forest yet.
We don't even know what (free) will is, yet alone whether anyone has it.
Edit: I think you're right. Black holes would be the equivalent of a segfault.
The properties these experiments are measuring are simply bogus. They are not well defined. The answer that comes out is not some intrinsic property of the "particle", but the result of the environment in which the particle interacted with the "measurement" system, so to speak.
The particle has some other properties, but what's being "measured" is not one of those properties.
How can I explain?
Imagine someone who has never tried any Korean food, and you try to ask him/her: what's your favorite Korean food? There's no answer. So you try to "measure" it by feeding him some Korean items and recording his facial expressions. He will like some items more than others, but it has nothing to do with "his favorite Korean food", and has more to do with how the items were prepared and his mood at the time.
A "point" location for a photon is never defined; it's not a property of a photon that it exists in a point in space. When you fire a photon at a "wall" and see a "blip", you're not seeing the position of the photon at some point in time. You're seeing the rough position of the atom that had an electron that absorbed the photon's energy, and I'm not even sure the atom has a well defined point position either. The whole thing is an artifact (a side effect) of some interaction between several systems and doesn't really tell you anything fundamental about the photon (or the quantum object).
At least that's how I understand it.
http://skeptico.blogs.com/skeptico/2005/04/what_the_bleep_.h...
Essentially, yes, it's bogus science. Quantum physics are much more complex than these articles ever bring on. But by explaining it simply, it sounds awe inspiring and so it propagates across social media. Over and over again.
It isn't that particles exist in multiple states until they are measured. It is that the mechanism by which you measure very small things affects the outcome.
I thought it was exactly that. Or rather, particles exist in multiple states, and when they are measured, either those multiple states collapse into one (Copenhagen Interpretation) or you, the measurer (who also exists in multiple states), gets entangled with them, causing each of your states to perceive exactly one of the particles' states (Many-Worlds Interpretation).
Unless Bohmian mechanics is correct, in which case no, particles don't exist in multiple states, but do depend on faster-than-light transmission of information about the state of other particles.
https://en.wikipedia.org/wiki/Quantum_suicide_and_immortalit...
But, regardless. The copenhagen interpretation is from the 1920's. That isn't to say it's wrong, it's just out of date. It has been expanded upon or replaced since then so why hold onto it, what is the current understanding.
The most important takeaway here is that since measuring very small things affects its outcome, it is currently impossible to know. Articles like this one in the OP bother me because they don't know either. But it always becomes a sensation and spreads misinformation.
Though your `life' might not be pretty. It can be maximally awful as long as you can still perceive.
I'm saying the answer doesn't exist because the question is not really valid in some sense.
Which kind of coincides with the idea that "the observable doesn't exist until measured", but I'm taking a little further and saying, it doesn't exist even when "measured" because you're not really measuring the thing you think you're measuring.
Also if you repeat the measurement multiple times, results will change.
From my personal experience, I didn't like soy sauce at first, but then I got used to it and started to really like it.
Maybe this is really just a fundamental challenge to our assumptions about motion of particles or information transfer in the universe. Isn't that interesting enough without these vague, human aggrandizing assertions about creating reality?
All this "weirdness" is the same old story of "Is it a particle or a wave?!," when in reality, we know its neither. Quantum objects are represented by wavefunctions, or vectors in a Hilbert space, to which "particle" and "wave" are intuitive approximations in certain regimes, that makes it easier for humans to talk about in natural, non-mathematical language.
All this experiment has shown is that a object that we expect to be described by quantum mechanics turns out to, indeed, be described by quantum mechanics.
Check out this TED talk on just that subject. http://www.ted.com/talks/donald_hoffman_do_we_see_reality_as...
Here's the punch line, space, time and matter are components of a user interface produced through evolution. We don't take the desktop and icons of our computer UI literally and we shouldn't take our evolved UI literally either.
If I understand him correctly, he says we don't perceive brains as they really are and therefore brains are not a physical basis of consciousness. Whoa.
The philosophical question would be "what is the controller?"
> Perhaps humanity is the only species burdened with distinguishing the truth.
http://theness.com/neurologicablog/index.php/more-quantum-we...
Also the deference to the Copenhagen interpretation is annoying - it's wrong. What they've observed is a consequence of how decoherence works, and 'observation' has nothing to do with it. Not faulting the researchers on this but seriously, it's time to stop talking about mythical 'observation' as though it's some integral part of quantum theory.
COMPUTER SIMULATION vs HOLOGRAPHIC UNIVERSE
http://www.crystalinks.com/holographic.html http://thelaymansanswerstoeverything.com/2013/01/scientific-...
> (2) any posthuman civilization is extremely unlikely to run a significant number of simulations of their evolutionary history (or variations thereof)
[Emphasis added.]
So does a thing which is not affecting anything else and not being measured exist? No! QED
What really still gets me is the way it's not simply that the atom wasn't interacted with, but that if the information about the interaction never leaks to the outside world - if it's "erased" after the interaction takes place - then the system still behaves as if the interaction never took place.
It undermines not just the concept that matter really exists, but time as well.
All that's starting to sound an awful lot like Orthodox Christian theology about the essence of God…
I feel as if fiction where we're in a simulation is relatively common, but one where the hacking of reality is actually done well and plausibly rather than handwaved would be pretty new.
The author of Ra also did a short piece you'll probably enjoy: http://qntm.org/responsibility
All of them explore the nature of reality and consciousness in some way.
To the parent commenter, please write your story. The world always needs good fiction.
My confusion is a compliment to all three authors.
The difficulty is keeping track of the context while you attempt the exploit. You would have to be able to plant code outside the simulation without causing it to crash.
OTOH, from within, you'd only see a successful attempt to escalate privileges. Imagine being able to edit reality.
Good film.
I wonder if there is some ordering of "conservation of ---" laws that is strictly enveloping/hierarchical, such that you could choose a level at which to simulate/design a universe.
This is something that I've thought about for some time, I posted a question about this a number of years ago on Reddit: http://www.reddit.com/r/Physics/comments/g287k/quantum_indet...
goes over a lot of them without getting to messy in the math. Other interpretations of QM are in the book as well. There are many:
https://en.wikipedia.org/wiki/Interpretations_of_quantum_mec...
This is why proponents of the Many-Worlds Interpretation claim that Occam's razor favours it: you don't need to posit "observers" or "collapses"; there's just the evolution of the wave function.
Occam's razor is not a scientific principle, it's just a rule of thumb. I have yet to see a proof that given a number of equal strength explanations for a phenomenon, the simplest one is always true.
One other thing that's often forgotten is that in Occam's opinion the simplest explanation for everything was God.
The physical, conceptual differences between any quantities describing droplets on one side and the wave function on the other side are clear. The former are observable – you may actually measure what the shape of the droplet looks like; you can't measure the wave function by any apparatus, at least not in a single repetition of the experiment. The former has an objective interpretation; the latter has a probabilistic interpretation, and so on. The wave function just encodes all the probability distributions for actual observables – but the wave function isn't and can't be one of them.
http://motls.blogspot.com/2014/07/droplets-and-pilot-waves-v...
http://iopscience.iop.org/1742-6596/306/1/012047/pdf/1742-65...
I thought the difficulty with pilot-wave theory was that it was difficult, perhaps impossible, to reconcile with special relativity.
Schrödinger's cat thought experiment was meant to highlight the absurdity of stochastic thinking by taking it to the extreme, not as a description of reality.
Sounds like that light existed and generated and responded to a gravitational field after it was emitted and before it was detected or measured.
the non-interference pattern is the optimized result of a deterministic universe that requires the observation to occur. The measurement didn't reach back in time, the results were specifically determined by the same causal chain that determined an experiment would be performed.
If you didn't measure both cases, you wouldn't be able to compare their outcomes. It seems that it is not about whether or not the event was measured/observed but about HOW and WHEN it was measured.
In neither case do we actually 'witness it happen' - In both cases, we are just observing effects of those events.
The light which allowed us to 'directly observe it' is as much a byproduct of the actual event as the interference pattern left behind on the surface.
So much physics reporting mistakes science for philosophy. It leads to so much confusion among laypeople.
"Things duplicate themselves on Tlön; they also tend to grow vague or 'sketchy,' and to lose detail when they begin to be forgotten. The classic example is the doorway that continued to exist so long as a certain beggar frequented it, but which was lost to sight when he died. Sometimes a few birds, or a horse, have saved the ruins of an amphitheater."
There was a young man who said, "God
Must think it exceedingly odd
If he finds that this tree
Continues to be
When there's no one about in the Quad."
REPLY
Dear Sir:
Your astonishment's odd:
I am always about in the Quad.
And that's why the tree
Will continue to be,
Since observed by
Yours faithfully,
GOD.
Edit: Formatting (newlines)
It seems sort of unfortunate that physicists would call these quantum probabilistic behaviors "not reality", because they are just as real as anything else.
Locke based his works off of the physics known at the time (Newton, etc). His theories were later definitely refuted by advancements in physics. Though it wasn't his intended meaning, it is interesting at least to see similar language being brought back by physics.
Is that equivalent to "reality doesn't exist until it is measured"? Because I don't see the latter claim (which is the headline on HN) anywhere in the text?
Also, didn't Feynman explain in q.e.d. that it's not either a wave or a particle, it's always a particle and the probabilities for the path the particle takes behave like waves? (Something like that, I am foggy on the details).
It seems like at least Philosophy 101 should be mandatory to quantum physicists.)
Reality doesn't depend on an observer (who distorts it by his observation). Reality just is.
There are light and other temporary states of what we call "energy". That's it. Time, space, relativity are human concepts - the hard-wired modes of perception which conditions our experience. From a Photon's perspective none of these exist.
Or perhaps quantum physics should be mandatory for Philosophy 101?
Essentially, we're all watching our own multi-dimensional, multilayer, composite TV channels and seeing shadows of each other across our screens. Allegory of the Cave meets 3D Ray Tracing and such.
That's nothing, though. Not compared to the realization that every face is a mirror, and we're all stuck here until we can treat each other as ourselves.
Maybe it's not true, maybe it's insane ramblings. But it does explain the crazy doods muttering to themselves on the corner and those people in your life who "just aren't watching the same channel as the rest of us."
Like me!
Exactly. I'd recommend the other 100 commenters or so who posted a similar reply to learn some basic quantum mechanics. Contrary to popular belief it's not that hard if you have a grasp of math.
Those planes of existence are these slides I mention. Whirling in time and subject, but always a representation of some spherical center whole that is the perspective of another. We're all just holes looking into this swirling miasma of time/space/parallel-dimensions/etc, seeing shadows of holes.
Big thanks to anyone taking the time to humour me, I really appreciate your time.
'So when you have this happening the other illusion that a Westerner is liable to have is that it's determined in the sense that what is happening now follows necessarily from what happened in the past. But you don't know anything about that in your primal ignorance. Cause and effect? Why, obviously not! Ha ha ha! Because if you're really na•ve you see that the past is the result of what's happening now. It goes backwards into the past like a wake goes backwards from a ship.'
http://thinkyhead.blogspot.co.uk/2013/09/alan-watts-philosop...
This understanding is in line with this experiment without believing that future affects the past. It's just that atom is never a particle until it reaches detector at the end. Only there it displays ability to exchange momentum with one other single atom as if two billiard balls hit. Throughout the whole experiment it travels as a wave, both paths, grating or no grating. It just either interferes if there was second grating or not if there was no second grating.
[0] layman-friendly article / interview: https://www.quantamagazine.org/20150604-quantum-bayesianism-...
I'm convinced that the Copenhagen interpretation remains popular because by making observation itself an integral part of the theory, you allow us to postulate that there is something special about human brains. But 'mysterious observation' is the luminiferous aether of quantum mechanics.
photonic29: I would like to continue our discussion, but HN has some kind of stupid rule where I can't make more than five posts within a (I think?) 12 hour period. I don't know if this is a general rule that applies to everyone, or simply one of the innumerable passive-aggressive account handicaps our gracious mods will afflict us with if we catch them on a bad day.
At any rate, I can't post anymore for now, so our discussion about MWI and Copenhagen interpretation can't happen. Sorry.
Not if the MWI is true. Talking about wave function collapse presupposes that the Copenhagen interpretation is true. In the MWI, there is no collapse; it's unitary evolution all the time.
Regardless, the nature of observation really is mysterious. A measurement projects the wavefunction onto an eigenfunction in accordance with Born's rule. MWI does not adequately explain why or how, and Copenhagen simply inserts it as a postulate. Neither is especially satisfying. So the measurement problem is unresolved.
Now, you could definitely take issue with this example, because you could argue that the rotation of the coin is well described, so with initial conditions, you can predict its position at any given moment. But imagine a microscopic quantum system, and, for the sake of this simple explanation, believe that its "rotating through the air" state really does not have any precise heads or tails definition. Until something gets in the way of that system, creating an interaction that exchanges information about its observable state, it's not meaningful to say that it's in one of the observable states at all.
A superpositition of states, as such, is essentially the representation of a state in terms of a basis set of observables. In the case of the coin, heads and tails are the two observable states, they are orthogonal, and they fully represent the state space of the coin. You could flip the coin, and put its state vector into the form of sqrt(2)/2 * Heads + sqrt(2)/2 * Tails. This state isn't observable, but it can be described in terms of observable components, where the coefficients represent the probabilities that a given observable state will be measured upon observation.
For QM, this is not correct, although it's a common misstatement. The correct statement is this: you can make an observation of a system which is not in an eigenstate of the measurement operator you are using. After the measurement, the system is now in an eigenstate of the measurement operator--i.e., the act of measurement changes the state.
Note that this is only true on a collapse interpretation, like Copenhagen. On a no-collapse interpretation, like MWI, the "observation" is just an interaction that entangles the state of the measuring device with the state of the system being measured--it's all just unitary evolution.
> You could flip the coin, and put its state vector into the form of sqrt(2)/2 Heads + sqrt(2)/2 * Tails. This state isn't observable*
Yes, it is; but it isn't observable by a simple method like looking to see if the coin is heads or tails. But according to QM, every state is an eigenstate of some operator, so there will be some observation that will distinguish sqrt(2)/2 * Heads + sqrt(2)/2 * Tails from the state that is exactly orthogonal to it, which is sqrt(2)/2 * Heads - sqrt(2)/2 * Tails.
I should have distinguished better, but what you're more rigorously calling an eigenstate of a measurement operator, I'm calling an observable state. There is something lost in translation to an audience unfamiliar with terms like eigenstate, but that was my attempt. Would you suggest a better one?
>Note that this is only true on a collapse interpretation, like Copenhagen. On a no-collapse interpretation, like MWI, the "observation" is just an interaction that entangles the state of the measuring device with the state of the system being measured
The greater point being addressed is that MWI is no more deterministic than Copenhagen.
>Yes, it is; but it isn't observable by a simple method like looking to see if the coin is heads or tails. But according to QM, every state is an eigenstate of some operator
Some hermitian operator? But more to the point, if looking at the coin is the only operator at our disposal in the simple example, then its eigenstates are the ones we care about.
Yes, but "observable" here is relative to the measurement you are making. If you make a different measurement (i.e., realize a different operator), then the set of "observable states" by your definition is different, because the set of eigenstates of the operator is different.
> The greater point being addressed is that MWI is no more deterministic than Copenhagen.
But this isn't true. The MWI is completely deterministic, because wave function collapse never occurs, and wave function collapse is the source of all the indeterminism in the Copenhagen interpretation.
> Some hermitian operator?
Yes.
> if looking at the coin is the only operator at our disposal in the simple example, then its eigenstates are the ones we care about.
If all you're interested in is that particular experiment, yes. But here we're discussing claims that must apply to all possible experiments and all possible measurements, not just the particular one in the example you chose. So we have to consider all possible operators and all possible sets of eigenstates, not just the ones in your example.
For what useful definition of deterministic? If a measurement comes with decoherence into multiple non-inteferring branches, then certainly the state evolves in a predictable way from "god's eye", but not from the perspective of the experiment occupying any given branch.
The definition that says the future state is entirely determined by the present state. That's the only definition I'm aware of.
>the state evolves in a predictable way from "god's eye", not from the perspective of the experiment occupying any given branch.
The entire "god's eye" state is the one that appears in the dynamical laws of QM (unitary evolution), so that's the one that's relevant for assessing determinism.
> the state evolves in a predictable way from "god's eye", but not from the perspective of the experiment occupying any given branch.
This "apparent randomness" of measurement results is equally true of chaotic classical systems; it's not something that only appears in QM. Basically, it's just a consequence of the fact that individual "observers" will in general not have complete knowledge of the state. That doesn't mean the state doesn't evolve deterministically; it just means the observers don't have complete knowledge.
Is that a fair comparison? Yes, in either case, the experimenter is limited in his predictive capability by the information available to him. But in a chaotic system, your predictive power can be improved arbitrarily by surveying more information with greater precision. As I understand it-- and hopefully you can clarify if this is accurate-- decoherence forbids a measurement from receiving information from a branched outcome, so even if you take a measurement with arbitrary access to information now and repeat the same measurement in the future, there becomes a set of information that is fundamentally off limits to the observer in a given branch.
I think so. Perhaps it will help if you look at it this way: you repeat some measurement multiple times, and get a sequence of results that looks random. Is the randomness because of classical chaos, or because of quantum "indeterminacy"? From the measurement results themselves, in many cases, there will be no way to tell. The only case in which there would be a way to tell would be if you specifically made measurements on entangled quantum systems in order to test the Bell inequalities; if those inequalities are violated, the measurements can't be due to classical chaos. But that just underscores my point: looking at "apparent randomness" of measurement results is not sufficient to tell whether they are due to "quantum indeterminacy.
> decoherence forbids a measurement from receiving information from a branched outcome
Once again, this is a misleading way of stating it. What is happening, again, is that the observer evolves into a superposition, corresponding to the superposition that the measured system is in. Decoherence just means the branches of the superposition don't interfere with each other. But the system is still in a single state; the "branches" are not separate states or separate entities, they're parts of a superposition.
(Note, also, that decoherence does not guarantee that the different branches will never interfere with each other. Decoherence is not a fundamental limitation; it's just a recognition of what happens in the usual case, where no special measures are taken to isolate the system or to facilitate interference. According to the MWI, there is in principle always a way to cause the different branches to interfere, i.e., decoherence is never absolute.)
> there becomes a set of information that is fundamentally off limits to the observer in a given branch
According to the MWI, the observers in different branches are not different observers; they're different terms in a superposition that the observer is in. Thinking of them as "different observers" with access to different information implicitly assumes something like the Copenhagen interpretation.
Does measurement have to include an agent? Could measurement mean interaction with other atoms?
Indeed it can. Roughly put, if information about the state left the undetermined system, a measurement has been made. One of the most frustrating interpretations of literature such as this is the idea that there is something spooky, special, and reality-making about a conscious mind. Lots to think about there philosophically, but the physics happens at lower levels of abstraction.
Personally, I think the simpler and less egocentric view is that all measurements produce wavefunction collapse, even when there's nobody looking.
See https://en.wikipedia.org/wiki/Von_Neumann–Wigner_interpretat... and https://en.wikipedia.org/wiki/Measurement_problem if you want to read more.
https://en.wikipedia.org/wiki/Schr%C3%B6dinger's_cat
and then...
http://bigthink.com/dr-kakus-universe/physics-on-the-fringe-...
clears it up for me.
What is the conclusion if you are the thing being observed?
It could mean that time on quantum scale doesn't differentiate past/future.
Everything we see, what we call reality, is made up of the Lego blocks of electrons, protons and neutrons, and yet even at that level it makes no sense to talk in concrete terms about, say, an electron's spin. We would expect that the spin exists and we find out what it is when we measure it, but it's not that. It's that talking about its spin is meaningless until you measure it. What you can reason about the Lego blocks of everything we see, smell, touch and taste, what gave birth to us and what will kill us, is indescribable until it's asked to be described. Whether that's because it's locked-in to time or not is irrelevant because it means the same thing: reality is not there until it's there.
Also hidden variable theory aren't yet categorically disproven. A fractal theory could explain why we keep getting different results when measuring reality in different ways.
You know, I think a hidden variable theory is a crutch. To me, there's simply a Planck's constant foundation that prevents infinite regression just as much in terms of information as it does with radiation, etc.
If you're measuring N-S electron spin, you will get 100% N spin or 100% S spin but never any E-W spin. Period. If you're measuring E-W electron spin, you will get 100% E spin or 100% W spin, but never any N-S spin. You can word smith it how you wish, but electron spin is directly tied to the spin you look at. To speak of the "reality" of the spin when you're not measuring it makes no sense.
> If you're measuring N-S electron spin, you will get 100% N spin or 100% S spin but never any E-W spin.
Ok, but not arguing against it. I'm arguing that there are alternative interpretation to that event other than "reality doesn't exist until we look at it". There are other explanations like: retroactive causality, many world, informational based, etc.
Basically, just read the top comment, it summarizes my thoughts on the matter.
I'd like to issue a pull request..
The paper is at http://www.nature.com/nphys/journal/vaop/ncurrent/full/nphys.... We changed the URL of this submission from http://www.independent.co.uk/life-style/gadgets-and-tech/new....
As an analogy, consider Hashlife [1]. It works very differently than your typical game of life implementation... but it still agrees on all the intermediate states! The board won't behave normally for most implementations, but end up in states spelling out "we know we're being cached hierarchically!" when you simulate with hashlife.
https://news.ycombinator.com/item?id=8638150
Lazy loading makes perfect sense to me!
"Measuring" is applying our sensors onto the external reality and producing a map of what is observed in the form of thoughts, ideas, imagery - 'perception'.
But since the sensors are also part of reality, which does not exist before sensing it, it can be postulated that what is perceived is not a consequence of reality hitting the sensors, but the result of a new thought about reality being perceived, or simply - an invention.
That is, reality (including your body, brain and you) is the product of a thought process, but (here's the interesting part) the thinker is you and not you at the same time, or rather - the thinker is you and every other being.
That thinker is called God. Or Universe or whatever you want to call the thing or being that is the eternal recursive loop of self-invention / self-perception.
Of course very hard to put into language, but easily grokked under psychedelics.
It's interesting that science (and math) is slowly pointing towards this conclusion too, a thing that many great scientists arrived at intuitively.
Of course very hard to put into language,
but easily grokked under psychedelics.
Fantastic line.