Примери за използване на Classical computer на Английски и техните преводи на Български
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This assumption is valid for classical computers.
A classical computer uses 0s and 1s to store data.
We experience the benefits of classical computers every day.
Now, in a classical computer, the electron is either over here, 0, or over there, 1.
To better understand this point, consider a classical computer that operates on a three-bit register.
We have no such,because the molecules are incredibly hard to simulate on a classical computer.
He notes that A classical computer uses 0s and 1s to store data.
Free Mahjong- is a great game that relate to classical computer and board games.
Consider first a classical computer that operates on a 3 bit register.
These companies are trying to build hardware that replicates the circuit model of classical computers.
For example: Consider first a classical computer that operates on a three-bit register.
We do not have these things because molecules are ridiculously hard to model on a classical computer.
乐动体育开户In classical computers, small noise is corrected by taking advantage of a concept known as thresholding.
But a quantum computing system lends itself to such calculations better than a classical computer does.
Unlike classical computers, which store information as bits(binary digits of either 0 or 1), quantum computers code information into quantum bits, or qubits.
I will now use this sophisticated lite-brite device to demonstrate the difference between classical computers and quantum computers. .
Unlike the basic binary elements of classical computers, or bits, which represent either zeros or ones, quantum bits, or qubits, can represent both at the same time.
A quantum computer would be able to solve certain problems much faster than classical computers by exploiting superposition and entanglement.
Another goal is the development of quantum computers, which are expected to perform certain computational tasks exponentially faster than classical computers.
At the same time,if you ask me whether quantum computers will replace classical computers for climate-change modeling, I say it's unlikely.
D-Wave Systems, based in Canada, has built optimization systems that use qubits for this purpose, butcritics also claim that these systems are no better than classical computers.
A quantum computer with a given number of qubits is different from a classical computer made of the same number of classical bits.
Whereas classical computers can stack millions of operating bits in their processors, quantum computers struggle to scale the number of qubits they can operate with.
Perhaps the quantum computer will change our everyday lives in this century in the same radical way as the classical computer did in the last century.
Quantum computers might be more powerful than classical computers, but some applications will require even more computing power than one quantum computer can provide on its own.
As a result, even a tiny quantum computer with a few hundred quantum bits in it could be more powerful than a classical computer the size of the whole universe.
If you see a phenomena that can't be simulated by a classical computer, that means we can't be part of a huge classical computer that is simulated while someone steals our energy, for example.
I say that there is no way that the quantum computer will change our lives in the same radical way as the classical computer transformed life in the last century.
Instead of employing classical computer bits that store information encoded in 0s and 1s, one would create“quantum bits”(or qubits) that would use the quantum mechanical laws to store any number between 0 and 1, thus exponentially increasing the computing speed and resulting in the advent of quantum computers. .
Perhaps the quantum computer will change our everyday lives in this century in the same radical way as the classical computer did in the last century.".