Showing posts with label quantum physics. Show all posts
Showing posts with label quantum physics. Show all posts

Thursday, 1 November 2012

Near-death experiences occur when the soul leaves the nervous system and enters the universe, claim two quantum physics experts

World-renowned quantum scientists say they can prove the existence of the soul.
  • Ground-breaking theory holds that quantum substances form the soul
  • They are part of the fundamental structure of the universe

A near-death experience happens when quantum substances which form the soul leave the nervous system and enter the universe at large, according to a remarkable theory proposed by two eminent scientists.

According to this idea, consciousness is a program for a quantum computer in the brain which can persist in the universe even after death, explaining the perceptions of those who have near-death experiences.

Dr Stuart Hameroff, Professor Emeritus at the Departments of Anaesthesiology and Psychology and the Director of the Centre of Consciousness Studies at the University of Arizona, has advanced the quasi-religious theory.


Life after death: Dr Stuart Hameroff, Professor Emeritus at the University of Arizona, advanced the theory on a television documentary

It is based on a quantum theory of consciousness he and British physicist Sir Roger Penrose have developed which holds that the essence of our soul is contained inside structures called microtubules within brain cells.

They have argued that our experience of consciousness is the result of quantum gravity effects in these microtubules  a theory which they dubbed orchestrated objective reduction (Orch-OR).
Thus it is held that our souls are more than the interaction of neurons in the brain. They are in fact constructed from the very fabric of the universe - and may have existed since the beginning of time.

Shocked back to life: The theory holds that when patients have a near death experience their quantum soul is released from the body and re-enters the cosmos, before returning when they are revived

The concept is similar to the Buddhist and Hindu belief that consciousness is an integral part of the universe - and indeed that it is really all there may be, a position similar to Western philosophical idealism.

With these beliefs, Dr Hameroff holds that in a near-death experience the microtubules lose their quantum state, but the information within them is not destroyed. Instead it merely leaves the body and returns to the cosmos.


Dr Hameroff told the Science Channel's Through the Wormhole documentary: 'Let's say the heart stops beating, the blood stops flowing, the microtubules lose their quantum state.
'The quantum information within the microtubules is not destroyed, it can't be destroyed, it just distributes and dissipates to the universe at large.

'If the patient is resuscitated, revived, this quantum information can go back into the microtubules and the patient says "I had a near death experience".'

He adds: 'If they're not revived, and the patient dies, it's possible that this quantum information can exist outside the body, perhaps indefinitely, as a soul.'

Evidence: Dr Hameroff believes new findings about the role quantum physics plays in biological processes, such as the navigation of birds, will one day prove his theory

The Orch-OR theory has come in for heavy criticism by more empirically minded thinkers and remains controversial among the scientific community.

MIT physicist Max Tegmark is just one of the many scientists to have challenged it, in a 2000 paper that is widely cited by opponents, the Huffington Post reports.

Nevertheless, Dr Hameroff believes that research in to quantum physics is beginning to validate Orch-Or, with quantum effects recently being shown to support many important biological processes, such as smell, bird navigation and photosynthesis.

Source


Through the Wormhole- Tracking Souls to the Afterlife


Tuesday, 13 December 2011

Do we really have free will?

Does free will truly exist, or are we simply reactionary, based on the sum of our experiences and genetic make up at any given moment?

This is a very important question, that we all should consider, because the implications would change the nature of humanity. If we do not have free will, then could any of us truly be held responsible for our actions? However if free will is truly ours, this means that we have the ability to change any outcome, now and in the future.

The following, strange read, explains why in a quantum sense we must have free will. So choose to read this or not, it is up to you!

source


Robert Nozick....why there is something rather than nothing, quipped: “Someone who proposes a non-strange answer shows he didn’t understand the question.”


Science experiments always presume complete freedom of will; without it, how would we know that some grand conspiracy isn’t manipulating our choices to hide the truth from us?

I see no contradiction whatsoever between determinism and free will, because they operate at two different levels of reality. Determinism describes the basic laws of physics. Free will describes the behavior of conscious beings. It is an emergent property. Individual particles aren't free. Nor are they hot, or wet, or alive. Those properties arise from particles’ collective behaviour.

After all, physics is reversible. What determinism means is that the state at one time implies the state at all other times. It does not privilege one state over another. Thus your decision, in a very real sense, creates the initial conditions of the universe.




Free Will and Quantum Clones: How Your Choices Today Affect the Universe at its Origin



The late philosopher Robert Nozick, talking about the deep question of why there is something rather than nothing, quipped: “Someone who proposes a non-strange answer shows he didn’t understand the question.” So, when Scott Aaronson began a talk three weeks ago by saying it would be “the looniest talk I’ve ever given,” it was a good start. At a conference on the nature of time—a question so deep it’s hard even to formulate as a question—“loony” is high praise indeed. And indeed his talk was rich in ambition and vision. It left physics überblogger Sabine Hossenfelder uncharacteristically lost for words.
As part of his general push to apply theoretical computer science to philosophy, Aaronson has been giving thought to that old favorite of college metaphysics classes and late-night dorm-room bull sessions: free will. Do we have autonomy, or are our choices preordained? Is that a false choice? What does it mean to be free, anyway? For some of Aaronson’s earlier thoughts, see his lecture and blog post. Though hard to summarize, his talk (slides here) can be broken down into two parts.
First, he sought to translate fuzzy notions of free will into a concrete operational definition. He proposed a variation on the Turing Test which he calls the Envelope Argument or Prediction Game: someone poses questions to you and to a computer model of your brain, trying to figure out who’s the human. If a computer, operating deterministically, can reproduce your answers, then you, too, must be operating deterministically and are therefore not truly free. (Here, I use the word “deterministically” in a physicist’s or philosopher’s sense; computer scientists have their own, narrower meaning.) Although the test can never be definitive, the unpredictability of your responses can be quantified by the size of the smallest computer program needed to reproduce those responses. Zeeya Merali gave a nice summary of Aaronson’s proposal at theFoundation Questions Institute blog.
The output of this game, as Aaronson portrayed it, would be a level of confidence for whether your will is free or not. But I think it might be better interpreted as a measure of the amount of free will you have. Last year, quantum physicists Jonathan Barrett and Nicolas Gisin argued that free will is not a binary choice, live free or die, but a power that admits of degree. They proposed to quantify free will using quantum entanglement experiments. Freedom of will enters into these experiments because physicists make a choice about which property of a particle to measure, and the choice affects the outcome. Such experiments are commonly taken as evidence for spooky action at a distance, because your choice can affect the outcome of a measurement made at a distant location. But they can also be interpreted as a probe of free will.
If there are, say, 1000 possible measurements, then complete freedom means you could choose any of the 1000; if your choice were constrained to 500, you would have lost one bit of free will. Interestingly, Barrett and Gisin showed that the loss of even a single bit would explain away spooky action. You wouldn’t need to suppose that your decision somehow leaps across space to influence the particle. Instead, both your choice and the outcome could be prearranged to match. What is surprising is how little advance setup would do the trick. The more you think about this, the more disturbed you should get. Science experiments always presume complete freedom of will; without it, how would we know that some grand conspiracy isn’t manipulating our choices to hide the truth from us?
Back to Aaronson’s talk. After describing his experiment, he posed the question of whether a computer could ever convincingly win the Prediction Game. The trouble is that a crucial step—doing a brain scan to set up the computer model—cannot be done with fidelity. Quantum mechanics forbids you from making a perfect copy of a quantum state—a principle known as the no-cloning theorem. The significance of this depends on how strongly quantum effects operate in the brain. If the mind is mostly classical, then the computer could predict most of your decisions.
Invoking the no-cloning theorem is a clever twist. The theorem derives from the determinism—technically, unitarity—of quantum mechanics. So here we have determinism acting not as the slayer of free will, but as its savior. Quantum mechanics is a theory with a keen sense of irony. In the process of quantum decoherence, to give another example, entanglement is destroyed by… more entanglement.
As fun as Aaronson’s game is, I don’t see it as a test of free will per se. As he admitted, predictable does not mean unfree. Predictability is just one aspect of the problem. In the spirit of inventing variations on the Turing Test, consider the Toddler Test. Ask a toddler something, anything. He or she will say “no.” It is a test that parents will wearily recognize. The answers, by Aaronson’s complexity measure, are completely predictable. But that hardly reflects on the toddler’s freedom; indeed, toddlers play the game precisely to exercise their free will. The Toddler Test shows the limits of predictability, too. Who knows when the toddler will stop playing? If there is anybody in the world who is unpredictable, it is a toddler. What parents would give for a window in their skulls!
Yet no one denies that toddlers are composed of particles that behave according to deterministic laws. So how do you square their free will with those laws? Likecosmologist Sean Carroll, I lean toward what philosophers call compatibilism: I see no contradiction whatsoever between determinism and free will, because they operate at two different levels of reality. Determinism describes the basic laws of physics. Free will describes the behavior of conscious beings. It is an emergent property. Individual particles aren’t free. Nor are they hot, or wet, or alive. Those properties arise from particles’ collective behavior.
To put it differently, we can’t talk about whether you have free will until we can talk about you. The behavior of particles could be completely preordained by the initial conditions of the universe, but that is irrelevant to your decisions. You still need to make them.
What you are is the confluence of countless chains of events that stretch back to the dawn of time. Every decision you make depends on everything you have ever learned and experienced, coming together in your head for the first and only time in the history of the universe. The decision you make is implicit in those influences, but they have never all intersected before. Thus your decision is a unique creative act.
This is why even the slightest violation of free will in a quantum entanglement experiment beggars belief. “Free will” in such an experiment means simply that your choice of what to measure is such a distant cousin of the particle’s behavior that the two have never interacted until now.
This is where we get into the second big point that Aaronson made in his talk, about just how creative an act it was. Even if the influences producing a free choice have never interacted before, they can all be traced to the initial state of the universe. There is always some uncertainty about what that state was; a huge range of possibilities would have led to the universe we see today. But the decision you make resolves some of that uncertainty. It acts as a measurement of those countless influences.
Yet in a deterministic universe, those is no justification for saying that the initial state caused the decision; it is equally valid to say that the decision caused the initial state. After all, physics is reversible. What determinism means is that the state at one time implies the state at all other times. It does not privilege one state over another. Thus your decision, in a very real sense, creates the initial conditions of the universe.
This backward causation, or retrocausality, was the “loony” aspect of Aaronson’s talk. Except there’s nothing loony about it. It is a concept that Einstein’s special theory of relativity made a live possibility. Relativity convinced most physicists that we live in a “block universe” in which past, present, and future are equally real. In that case, there’s no reason to suppose the past influences the future, but not vice-versa. Although their theories shout retrocausality, physicists haven’t fully grappled with the implications yet. It might, for one thing, explain many of the mysteries of quantum mechanics.
In a follow-up email, Aaronson told me that the connection between free will and cosmic initial state was also explored by philosopher Carl Hoefer in a 2002 paper. What Aaronson has done is apply the insights of quantum mechanics. If you can’t clone a quantum state perfectly, you can’t clone yourself perfectly, and if you can’t clone yourself perfectly, you can’t ever be fully simulated on a computer. Each decision you take is yours and yours alone. It is the unique record of some far-flung collection of particles in the early universe. Aaronson wrote, “What quantum mechanics lets you do here, basically, is ensure that the aspects of the initial microstate that are getting resolved with each decision are ‘fresh’ aspects, which haven’t been measured or recorded by anyone else.”
If  nothing else, let this reconcile parents to their willful toddlers. Carroll oncewrote that every time you break an egg, you are doing observational cosmology. A toddler playing the “no” game goes you one better. Every time the toddler says no, he or she is doing cosmological engineering, helping to shape the initial state of the universe.
Quantum art courtesy of garlandcannon. Slide courtesy of Scott Aaronson.

The Quantum world gets stranger!

I am very interested in the world of Quantum Physics, a a place of discovery and where the conventional ideas of physics seem to fall away to a new set of changing possibilities. I found this article here in Scientific America, which adds a new layer of interest and mind spinning confusion, read on...

Like a Cheshire Cat, the animal has become separated from the properties that constitute a cat.

Quantum Cheshire Cat: Even Weirder Than Schrödinger’s
Just when you thought you’d heard every quantum mystery that was possible, out pops another one. Jeff Tollaksen mentioned it in passing during his talk at the recent Foundation Questions Institute conference. Probably Tollaksen assumed we’d all heard it before. After all, his graduate advisor, Yakir Aharonov—who has made an illustrious career of poking the Schrödinger equation to see what wild beasts come scurrying out—first discovered it in the 1990s and discussed it in chapter 17 of his 2005 book, Quantum Paradoxes. But it was new to me.
The situation is an elaboration of Schrödinger’s thought experiment. You have a cat. It is either purring or meowing. It is curled up in one of two boxes. As in Schrödinger’s scenario, you couple the cat to some quantum system, like a radioactive atom, to make its condition ambiguous—a superposition of all possibilities—until you examine one of the boxes. If you reach into box 2, you feel the cat. If you listen to the boxes, you hear purring. But when you listen more closely, you notice that the purring is coming from box 1. The cat is in one box, the purring in the other. Like a Cheshire Cat, the animal has become separated from the properties that constitute a cat. What a cat does and what a cat is no longer coincide.
In practice, you’d pull this stunt on an electron rather than a cat. You’d find the electron in one box, its spin in the other. Even by the standards of quantum mechanics, this is surprising. It requires what quantum physicists call “weak measurement,” whereby you interact with a system so gently that you avoid collapsing it from a quantum state to a classical one. On the face of it, such an interaction scarcely qualifies as a measurement; any results get lost in the noise of Heisenberg’s Uncertainty Principle. What Aharonov realized is that, if you sift through the results, you can find patterns buried within them.
In practice, this means repeating the experiment on a large number of electrons (or cats) and then applying a filter or “postselection.” Only a few particles will pass through this filter, and among them, the result of the softly softly measurement will stand out.
Because you avoid collapsing the quantum state, quintessentially quantum phenomena such as wave interference still occur. So, for a Cheshire Cat, you apply the following filter: you change the sign of one term in the superposition, causing the location and spin of the electron to interfere constructively in one box and destructively in the other, zeroing out the probability of finding the electron in box 1 and zeroing out the net spin of the electron in box 2. Voilà, the electron is in box 2 and its spin in box 1.
If this leaves your head spinning, it should. The word “weak” describes not only the measurement but also my intuitive grasp for what’s really going on. The best I can do is recommend the article on weak measurement by Aharonov, Tollaksen, and Sandu Popescu in last November’s Physics Today, but be prepared to read it several times before you have the slightest idea of what they’re saying. I’ve commissioned an article about Aharonov’s work for an upcoming issue ofScientific American to collapse some of the uncertainty. In the meantime, try sitting in a different room from where your confusion is.