Quantum entanglement is not as out of the ordinary as you might think

Simplification using single particle experiment explanations

Consider a single particle source.  The particle is equally likely to emit in any direction.  That situation is depicted below
   

What you imagine is that a localized particle emanates from the emitter and you detect it somewhere on your ring of detectors surrounding your experimental set up.  You can use your detectors ringing the emitter to verify that emissions are equally probable at any angle.   I imagine the situation differently.  What I imagine is below:

 
The concentric blue rings depict the phase waves of de broglie  propagating outwards from the emitter. They have no preference in direction.  They propagate in all directions.   When they encounter the ring of detectors one of the detectors detects the particle.   Now something has to prevent all the other detectors from firing and saying they also have detected the particle.  This would violate conservation of energy and what ever other conservation laws.  This is the "collapse" into the measured state above.

Note that this "communication" or universal book keeping function occurs in similar method as entanglement experiments show.  The instant the particle interacts with one detector all other detectors are prohibited from detecting the instant the particle is detected.  An instantaneous non communication book keeping function occurs just like described in polarized entangled photon experiments.   

This thought experiment reduces thinking about entanglement to how the universe uses book keeping functions across space to maintain conservation laws.   Let us apply this to the double slit experiment.   Most explanations of the double slit experiment leave you with the paradox of saying "It looks like 1 particle went through both slits".  Where as the two slit experiment possibly demonstrates the book keeping aspect.

Two entangle Photons

What about the case of 2 entangle photons?   They are created coherently and are assumed identical and indistinguishable.   Their phase waves travel out concentrically and totally overlapping as shown above in the second diagram.   The book keeping rules can not discern if it is received photon number 1 or photon number 2.   In fact it is even meaningless to talk about photon number 1 and 2.  They are identical in every way.  Thus the results of 1 hitting the detector are no different from 2 hitting the detector.  Thus what you measure for 1 is what you will measure for 2.   The book keeping detectors first detect one photon then the second.   Since the book keeping conservations laws govern the detection of the second photon they must see a redundant identical measurement with same instantaneous resolution.  The mechanism is the book keeping principles this resolution occurs instantaneously instead of propagating at the speed of light.  It is only after detection measurement that the "particle" is localized.  Conservation book keeping forces this localization.  

Why does quantum computing appear to be able to do something standard computing based on thermodynamic electronics can not ?

What is the reason for quantum computing being able to do more than classical thermodynamic computing? Quantum computing harnesses physical conservation laws that we have up till now not harnesses in regular calculations. These laws do not propagate at the speed of light but rather instantaneously as a conservation law "book keeping" function.

What could be more boring than a traffic jam?

I always wondered why a freeway with no accidents or other driver diversions such as a policeman pulling over a speeder can come to an almost complete halt.  I think if have figured out this mystery.  The following graph is velocity versus distance on a freeway.  Here in Phoenix there is a location on the freeway where you can be driving at a normal highway rate and then encounter a traffic jam.  Once through the 4 miles of the traffic jam the freeway opens up again to acceptable conditions.

 

   

 

Note the oscillatory behavior in the jammed area where cars alternate between a maximum low speed and complete stop.

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Video: The Story of the Graphing Calculator

It is a nerds nurd story.  Some parts are hilarious and most situations are recognizable as straight out of the land of Dilbert.   What you will find is Mr Ron Avitzur is not from the land of group think.  I like and practice his philosophy of "I live simply"
It's midnight. I've been working sixteen hours a day, seven days a week. I'm not being paid. In fact, my project was canceled six months ago, so I'm evading security, sneaking into Apple Computer's main offices in the heart of Silicon Valley, doing clandestine volunteer work for an eight-billion-dollar corporation.

What is the graphing calculator software?

Asian Hus on First

The characters

  • President Hu
  • Leutenant Hung
  • General Lee
  • Secretary Wee
  • Ambassador Ho
  • Planner Wa
  • Janitor Hee

Two americans spies have bugged the Chinese government meeting room.  The president and some of his staff are in the meeting room discussing top secret topics.

Flynt:   Is that Hu speaking?

Smart:   Wa

Flynt: Is that Hu speaking?

Smart: Wa

Flynt: I really want to know who is speaking

Smart: Wa

Another one of the principles has his turn on the soap box

Flynt: Is he hung?

Smart: How am I supposed to know?

Flynt: Because of his voice!

Video: Ultraconservation and living fossils Mysteries of the Human Genome

Genetic code is reused in exactly the same manner human programmers reuse code.  Thus once some random string of genetic coding is found useful there is a process that preserves it from change.  That change is called survival.  If it is a random string with no purpose then it is swept from the system by error.  Error is death.  Thus if you sequence the human genome you can compare useful portions with those of widely separated animals such as mice and find almost identical code.

Gill Bejerano holds a BSc, summa cum laude, in Mathematics, Physics, and Computer Science, and a PhD in Computer Science from the Hebrew University of Jerusalem, Israel. Twice recipient of the RECOMB best paper by a young scientist award, and a former Eshkol pre-doctoral Scholar and HHMI postdoc. As co-discoverer of ultraconserved elements, his research focuses on deciphering the function and evolution of the non-coding regions of the Human Genome. Gill is currently a postdoc with David Haussler at UC Santa Cruz, and in early 2007 he will join Stanford university as an Assistant Professor in the Department of Developmental Biology and the Department of Computer…