Showing posts with label encryption. Show all posts
Showing posts with label encryption. Show all posts

Friday, September 23, 2022

Black holes are mysterious objects. And one interesting thing orbits every single black hole in the Universe.

Image: Pinterest

 Black holes are mysterious objects. And one interesting thing orbits every single black hole in the Universe. 

That thing is the photon ring. The photon ring is the photons that are orbiting the event horizon. Those photons might be the reason why we cannot see a black hole. There is a theory that some information falls into a black hole by following the half-elliptic trajectory. That means the nucleus of the black hole would act as the gravitational sling and makes it possible that some of those superstrings can escape inside the black hole. 

That photon ring has the ability that it will encrypt the information that is escaping from the black hole. When superstrings or flat photons that could be visible are traveling across that photon ring those photons are cutting it into pieces. Or it turns the information into a form that we cannot observe it. 

That thing gave interesting ideas for things like quantum computers and protective fields. If the photon whirl protects the quantum computer or its quantum entanglements. That photon whirl protects those quantum systems from the outcoming energy fields. The fact is that the energy itself will not break the quantum entanglement. The change in the energy level is the thing that destroys things. 

Or sharply saying decreasing the energy level causes the particle sends light quantum. That light quantum, energy burst, or wave motion is the thing that destroys molecular and other bonds. 


The protective field can protect the layer against incoming material objects. Or even laser rays. A photon whirl can act like a laser ray that whirls around the object. 


The photonic whirl has caused an idea of the protective field. In this case, there are two-layer quantum fields. That is made by expanding two different elementary particles or their quantum fields. That thing will happen by stressing those particles with energy. 

The photons are trapped between those two internal quantum fields and they are starting to whirl in that bubble. When something hits that photon whirl. It erases that incoming thing immediately. That thing would be the real-life protective field. When those photons are impacting things they would erase that immediately. 

There are plans that by using an extremely high power electric field there is the possibility to capture photons between electrons around the layer. The electricity travels at the core of the wire. And it rises electrons to the upper energy level.

So there is a possibility. That the electrons are acting like a photonic trap. And if those photons are whirling around the layer they would encrypt the information that humans cannot see in that layer. So that thing could be the key to the ultimate stealth and protective systems. 


https://www.quantamagazine.org/black-holes-ring-of-light-could-encrypt-its-inner-secrets-20220908/

Saturday, December 4, 2021

The encryption algorithm is always more than just Riemann's conjecture.

 The encryption algorithm is always more than just Riemann's conjecture.


The image above: Quadratic formula

(Wikipedia, Quadratic formula)


The simple algorithm quadratic formula is a good explanation of how the quantum computer will handle data. The formula is well-known from college, and it's easy to cut into pieces. So the quantum computer will cut the formula into pieces. And every part of it will send to different routes. That thing makes the work of computers lighter. 

When we are thinking that encryption algorithms are easy to break. We mean encryption that is used only Riemann's conjecture. But if we connect Riemann's conjecture with some other algorithms like quadratic formulas or Euler's equation. That increases the safety of the algorithms.

So the encryption algorithm might look like this: (ASCII-code*(Riemann's conjecture), Euler's equation*...) There are no limits for the type and number of those algorithms. That is connected with Riemann's conjecture. The name of that formula is also Riemann's hypothesis or Riemann's zeta-function. And there might be an answer 1/2. 

But that formula is still useful for prime number generators. And if that is connected with other mathematical functions it can still serve as part of encryption algorithms. 

Have you ever heard the term "jumping algorithm"? In the simplest model, every ASCII mark in the message is encoded by using a unique prime number. But in the higher level of encoding. Every each mark of the message is encrypted by using individual encryption formula. 

When quantum computer simply uses division law. It can make that kind of formula turn lighter. The thing is that this kind of example shows why code-breaking is easier to make by using quantum computers than regular computers. 

The formula that encrypts the message can be like this: (ASCII-code*(Riemann's conjecture)*(quadratic formula)). This thing means another formula that covers Riemann's conjecture. Or maybe Riemann's conjecture will use multiple times. In that case, at the first, the system would multiplicate the ASCII codes of the message. 

The term "double algorithm" means that Riemann's conjecture is connected to another mathematical formula. The fact is that the number of those formulas is unlimited. And they can be any accepted mathematical formula. So the quadratic formula is only an example of the mathematical function formula connected with Riemann's conjecture.  

By using a series of prime numbers. Those numbers are created by using Riemann's conjecture. The thing is that they might be a series of quantum decimal prime numbers. And then the next formula would mess those numbers even more. The thing is that those formulas can be any possible mathematical formula. And the only necessary thing is that the receiving system must have the ability to calculate those calculations backward. 

The thing in secrecy or encryption algorithms is. They are not simple Riemann's conjectures. Those formulas might involve Riemann's conjecture but they are not just those conjectures. High-power computers can break any code in the world. So there is necessary to make the algorithms or mathematical formulas that are making the code-breaking harder. 

And of course, the system can use so-called virtual algorithms. In those very complicated systems, all messages are not using even secrecy. They are using extremely long decimal numbers for hiding data. But only important messages are using the quantum decimal binary numbers. And the mission for that thing is that their purpose is to slow the work of the code-breaking system. 

The idea is that there might be three or five very easy prime numbers that might be from the beginning of the series. The thing is that when the attacking system breaks code. It must test every single prime number to the captured message. 


https://en.wikipedia.org/wiki/Riemann_hypothesis

Gluons and the strong nuclear interaction.

When we think about energy flow from the strongest to the weakest. Free energy. That causes an atom’s decay. It is formed. Or. Released in t...