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Experimental decoherence mitigation using a weak measurement-based scheme and the duality quantum algorithm
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We experimentally demonstrate a weak measurement and measurement reversal-based scheme to ameliorate the effects of decoherence due to amplitude damping, on an NMR quantum processor. The weak measurement and measurement reversal processes require the implementation of non-unitary operations, which are typically infeasible on conventional quantum processors, where only unitary quantum operations are allowed. The duality quantum algorithm is used to efficiently implement the required non-unitary quantum operations corresponding to weak measurement and measurement reversal. We experimentally validate the efficacy of the weak measurement-based decoherence mitigation scheme by showing state protection on a four-qubit system, with one qubit being designated as the 'system qubit', while the remaining three qubits serve as 'ancilla qubits'. Our experimental results clearly demonstrate the success of the weak measurement-based decoherence mitigation scheme in protecting the desired state. Since the measurement process involved has trace less than unity, the scheme can be thought of as a filtration scheme, where a subset of the spins is protected while the rest of the spins can be discarded.
Forward citations
Cited by 2 Pith papers
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Two-time weak measurement protocol for ergotropy protection in open quantum batteries
A two-time weak measurement protocol can slow the self-discharge of open quantum batteries and yield a positive ergotropy gain with zero net measurement-induced energy and ergotropy shifts.
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UniConvNet: Expanding Effective Receptive Field while Maintaining Asymptotically Gaussian Distribution for ConvNets of Any Scale
The Petz recovery map was built and tested on an NMR quantum processor for amplitude and phase damping, confirming recovery fidelity depends on matching the reference state to the input state.
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