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physics Physics is the natural science that studies matter, its fundamental constituents, its motion and behavior through space and time, and the related entities of energy and force. "Physical science is that department of knowledge which rel ...
, in the area of
quantum information theory Quantum information is the information of the state of a quantum system. It is the basic entity of study in quantum information theory, and can be manipulated using quantum information processing techniques. Quantum information refers to both ...
and
quantum computation Quantum computing is a type of computation whose operations can harness the phenomena of quantum mechanics, such as superposition, interference, and entanglement. Devices that perform quantum computations are known as quantum computers. Thoug ...
, quantum steering is a special kind of nonlocal correlation, which is intermediate between Bell nonlocality and
quantum entanglement Quantum entanglement is the phenomenon that occurs when a group of particles are generated, interact, or share spatial proximity in a way such that the quantum state of each particle of the group cannot be described independently of the state o ...
. A state exhibiting Bell nonlocality must also exhibit quantum steering, a state exhibiting quantum steering must also exhibit quantum entanglement. But for mixed quantum states, there exist examples which lie between these different quantum correlation sets. The notion was initially proposed by Schrödinger, and later made popular by
Howard M. Wiseman Howard Mark Wiseman (born 19 June 1968) is a theoretical quantum physicist notable for his work on quantum feedback control, quantum measurements, quantum information (especially quantum steering), open quantum systems, the many interacting w ...
, S. J. Jones, and A. C. Doherty.


Definition

In the usual formulation of quantum steering, two distant parties, Alice and Bob, are considered, they share an unknown quantum state \rho with induced states \rho_A and \rho_B for Alice and Bob respectively. Alice and Bob can both perform local measurements on their own subsystems, for instance, Alice and Bob measure x and y and obtain the outcome a and b. After running the experiment many times, they will obtain measurement statistics p(a,b, x,y), this is just the symmetric scenario for nonlocal correlation. Quantum steering introduces some asymmetry between two parties, viz., Bob's measurement devices are trusted, he knows what measurement his device carried out, meanwhile, Alice's devices are untrusted. Bob's goal is to determine if Alice influences his states in a quantum mechanical way or just using some of her prior knowledge of his partial states and by some classical means. The classical way of Alice is known as the local hidden states model which is an extension of the local variable model for Bell nonlocality and also a restriction for separable states model for quantum entanglement. Mathematically, consider Alice having the measurement assemblage \mathcal=\, where the elements x_i make up a POVM and the set \ are the outcomes of observable x_i. Then Bob's local state assemblage corresponding to Alice's measurement assemblage \mathcal=\ is \mathcal=\ where each \rho_ is non-negative and \sum_p(a_i, x_i)\rho_=\rho_B for the probability p(a_i, x_i)=\mathrm(\rho_). Similar as in the case of quantum entanglement, to define entangled states, we must define the unentangled states (separable states). Here we need to introduce the local hidden states assemblage \mathcal=\ for which \sum_p(\lambda)=1, \sigma_'s are non-negative and \sum_p(\lambda)\sigma_=\rho_B. We say that a state is un-steerable if for an arbitrary measurement assemblage \mathcal=\ and state assemblage \mathcal=\, there exists a local hidden state assemblage \mathcal=\ such that \rho_=\sum_p(\lambda)p(a_i, x_i,\lambda)\sigma_ for all a_i and x_i. A state is called a steering state if it is not un-steerable.


Local hidden state model

Let us do some comparison among Bell nonlocality, quantum steering, and quantum entanglement. By definition, a Bell nonlocal which does not admit a local hidden variable model for some measurement setting, a quantum steering state is a state which does not admit a local hidden state model for some measurement assemblage and state assemblage, and quantum entangled state is a state which is not separable. They share a great similarity. * local hidden variable model p(a,b, x,y)=\sum_p(a, x,\lambda)p(b, y,\lambda)p(\lambda) * local hidden state model p(a,b, x,y)=\sum_p(a, x,\lambda)\mathrm(F_\sigma_)p(\lambda) * separable state model p(a,b, x,y)=\sum_\mathrm(E_\chi_)\mathrm(F_\sigma_)p(\lambda)


References

{{quantum information Quantum information theory