Examples of using Classical computers in English and their translations into Greek
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Computer
This assumption is valid for classical computers.
In classical computers, you give me a certain input, I put it in my computer, .
That is not possible to solve with classical computers.
In present-day classical computers the smallest unit of information is a bit that takes the value of either 1 or 0.
Mikhail Lukin: Let's start with how classical computers work.
When classical computers were being developed, people had some ideas of which algorithms to run on them.
This is exactly where quantum computers differ from classical computers.
In classical computers, data is rendered as binary bits, which are always in one of two states: 0 or 1.
But there are problems that are mathematically hard for even the best classical computers.
In classical computers, you give me a certain input, I put it in my computer, I give you an output.
So quantum computers can solve certain problems much faster than classical computers.
This is analogous to connecting several classical computers to form a computer cluster in classical computing.
There are quantum computers already, butnot of sufficient power to replace classical computers.
In classical computers, you formulate any problem you want to solve in the form of some input, which is basically a stream of 0s and 1s.
When it gets beyond say 10,000 by 10,000 entries, it becomes hard for classical computers", hence the need for a new type of algorithm.
Quantum computers have the potential for solving certain types of problems much faster than classical computers.
Fortunately, for small enough systems classical computers are still able to accomplish this”, as Max Tillmann, first author of the publication, points out.
Quantum computers are expected to process algorithms andsolve problems much faster than classical computers.
When classical computers were first developed, they were mostly used to do scientific calculations, numerical experiments to understand how complex physical systems behave.
Pan said quantum computers could, in principle,solve certain problems faster than classical computers.
Classical computers are extraordinarily powerful and will continue to advance and underpin everything we do in business and society,” said senior vice president of IBM Systems, Tom Rosamilia.
Quantum computers may be able to efficiently solve problems which are not practically feasible to solve on classical computers.
Unlike classical computers which rely on bits that can only exist in one of two states(0 or 1), quantum computers use quantum bits which can exist in multiple states at once.
On the other hand,quantum computers may be able to efficiently solve problems not feasible on classical computers.
What makes encryption codes so difficult even for modern classical computers to break is the fact that they're based on factors of extremely large numbers, requiring inordinate amounts of time to isolate by"brute force.".
Those familiar with the company's history might recall that, back in the 1940s, IBM‘s classical computers took up an entire room.
The new quantum design is an alternative, as it uses light to operate on a large scale,as is needed for quantum computers to eventually outperform classical computers.
It is therefore not surprising that quantum computing is unlikely to achieve the distribution level of classical computers anytime within the next 10 years.
Because of this, quantum computers are expected to process algorithms andsolve problems much faster than classical computers.
An international team has shown that quantum computers can do one such analysis faster than classical computers for a wider array….