Noise-Resilient and Reduced Depth Approximate Adders for NISQ Quantum Computing
Author:
Affiliation:
1. University of Tennessee, Knoxville, Knoxville, TN, USA
2. Oak Ridge National Laboratory, Oak Ridge, TN, USA
Publisher
ACM
Link
https://dl.acm.org/doi/pdf/10.1145/3583781.3590315
Reference13 articles.
1. Steven A Cuccaro Thomas G Draper etal 2004. A new quantum ripple-carry addition circuit. arXiv preprint quant-ph/0410184 (2004). Steven A Cuccaro Thomas G Draper et al. 2004. A new quantum ripple-carry addition circuit. arXiv preprint quant-ph/0410184 (2004).
2. IBM Quantum. 2022. Qiskit noise models. https://qiskit.org/documentation/tutorials/simulators/3_building_noise_models.html and https://qiskit.org/documentation/stubs/qiskit_aer.noise.ReadoutError.html. IBM Quantum. 2022. Qiskit noise models. https://qiskit.org/documentation/tutorials/simulators/3_building_noise_models.html and https://qiskit.org/documentation/stubs/qiskit_aer.noise.ReadoutError.html.
3. Achieving fault tolerance against amplitude-damping noise
4. Yonghae Lee et al. 2019. Hybrid quantum linear equation algorithm and its experimental test on IBM Quantum Experience. Scientific reports Vol. 9 1 (2019) 4778. Yonghae Lee et al. 2019. Hybrid quantum linear equation algorithm and its experimental test on IBM Quantum Experience. Scientific reports Vol. 9 1 (2019) 4778.
5. Variational quantum algorithms for nonlinear problems
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1. Novel Optimized Designs of Modulo 2 n +1 Adder for Quantum Computing;IEEE Transactions on Very Large Scale Integration (VLSI) Systems;2024-09
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