| related words |
| proposals |
| propose |
| imperfect |
| avoid |
| accomplished |
| demonstration |
| promising |
| attempt |
| preparing |
| passage |
| appropriately |
| difficulty |
| advanced |
| manipulation |
| clarity |
| interact |
| feasible |
| ideally |
| successful |
| serve |
|
| related documents |
| Non-orthogonal preferred projectors for modal interpretations of quantum
mechanics [0003092v1] |
| Toward a finite-dimensional formulation of Quantum Field Theory [9805010v1] |
| Teleportation and Secret Sharing with Pure Entangled States [0002032v1] |
| Probability in the Everett World: Comments on Wallace and Greaves [0604191v1] |
| Popper's test of Quantum Mechanics [0501134v1] |
| Selective pulse implementation of two-qubit gates for spin-3/2 based
fullerene quantum information processing [0311178v2] |
| Quantum optical implementation of quantum information processing [0405030v1] |
| Fault-tolerant quantum repeaters with minimal physical resources, and
implementations based on single photon emitters [0502112v1] |
| Sensible Quantum Mechanics: Are Only Perceptions Probabilistic? [9506010v2] |
| Encoded Recoupling and Decoupling: An Alternative to Quantum Error
Correcting Codes, Applied to Trapped Ion Quantum Computation [0211088v1] |
| Hybrid cluster state proposal for a quantum game [0509066v1] |
| Toward scalable quantum computation with cavity QED systems [0004107v1] |
| Quantum Information Processing and Entanglement in Solid State Devices [0410005v1] |
| Measuring the mean value of vibrational observables in trapped ion
systems [0203111v1] |
| Resource-efficient linear optical quantum computation [0405157v2] |
| Fast quantum computing with semiconductor quantum dots in a microcavity [0211147v1] |
| Efficient many-party controlled teleportation of multi-qubit quantum
information via entanglement [0402138v2] |
| Quantum Key Distribution with vacuum--one-photon entangled states [0504150v2] |
| Logical Structure of Physical Probability Assertions [0508059v1] |
| On the Relationship between Resolution Enhancement and Multiphoton
Absorption Rate in Quantum Lithography [0607114v4] |
|
| related topics |
| {state, phys, rev} |
| {observables, space, algebra} |
| {trap, ion, state} |
| {photon, photons, single} |
| {spin, pulse, spins} |
| {theory, mechanics, state} |
| {alice, bob, state} |
| {particle, mechanics, theory} |
| {energy, gaussian, time} |
| {field, particle, equation} |
| {phase, path, phys} |
| {cavity, atom, atoms} |
| {qubit, qubits, gate} |
| {state, algorithm, problem} |
| {time, decoherence, evolution} |
| {state, states, coherent} |
| {error, code, errors} |
| {let, theorem, proof} |
| {force, casimir, field} |
| {information, entropy, channel} |
|