[1] Yang Y G, Wen Q Y. An efficient two-party quantum private comparison protocol with decoy photons and two-photon entanglement[J]. Journal of Physics A: Mathematical and Theoretical, 42, 055305(2009).
[2] Yang Y G, Cao W F, Wen Q Y. Secure quantum private comparison[J]. Physica Scripta, 80, 065002(2009).
[3] Ye T Y, Ye C Q. Measure-resend semi-quantum private comparison without entanglement[J]. International Journal of Theoretical Physics, 57, 3819-3834(2018).
[4] Liu W, Wang Y B, Cui W. Quantum private comparison protocol based on bell entangled states[J]. Communications in Theoretical Physics, 57, 583-588(2012).
[5] Ji Z X, Ye T Y. Multi-party quantum private comparison based on the entanglement swapping of d-level cat states and d-level Bell states[J]. Quantum Information Processing, 16, 177(2017).
[6] Wu W Q, Zhao Y X. Quantum private comparison of size using d-level Bell states with a semi-honest third party[J]. Quantum Information Processing, 20, 155(2021).
[7] Liu W, Wang Y B. Quantum private comparison based on GHZ entangled states[J]. International Journal of Theoretical Physics, 51, 3596-3604(2012).
[8] Huang S L, Hwang T, Gope P. Multi-party quantum private comparison protocol with an almost-dishonest third party using GHZ states[J]. International Journal of Theoretical Physics, 55, 2969-2976(2016).
[9] Ji Z X, Fan P R, Zhang H G et al. Greenberger-Horne-Zeilinger-based quantum private comparison protocol with bit-flipping[J]. Physica Scripta, 96, 015103(2021).
[10] Zhang W W, Li D, Li Y B. Quantum private comparison protocol with W states[J]. International Journal of Theoretical Physics, 53, 1723-1729(2014).
[11] Sun Z W, Long D Y. Quantum private comparison protocol based on cluster states[J]. International Journal of Theoretical Physics, 52, 212-218(2013).
[12] Zhou M K. Improvements of quantum private comparison protocol based on cluster states[J]. International Journal of Theoretical Physics, 57, 42-47(2018).
[13] Ye T Y, Ji Z X. Two-party quantum private comparison with five-qubit entangled states[J]. International Journal of Theoretical Physics, 56, 1517-1529(2017).
[14] Liu W, Wang Y B, Jiang Z T et al. New quantum private comparison protocol using χ-type state[J]. International Journal of Theoretical Physics, 51, 1953-1960(2012).
[15] Pan H M. Quantum private comparison based on χ-type entangled states[J]. International Journal of Theoretical Physics, 56, 3340-3347(2017).
[16] Ji Z X, Ye T Y. Quantum private comparison of equal information based on highly entangled six-qubit genuine state[J]. Communications in Theoretical Physics, 65, 711-715(2016).
[17] Boyer M, Kenigsberg D, Mor T. Quantum key distribution with classical bob[J]. Physical Review Letters, 99, 140501(2007).
[18] Yin A H, Chen T. Authenticated semi-quantum secret sharing based on GHZ-type states[J]. International Journal of Theoretical Physics, 60, 265-273(2021).
[19] Tian Y, Li J, Chen X B et al. An efficient semi-quantum secret sharing protocol of specific bits[J]. Quantum Information Processing, 20, 1-11(2021).
[20] Tsai C W, Yang C W, Lee N Y. Semi-quantum secret sharing protocol using W-state[J]. Modern Physics Letters A, 34, 1950213(2019).
[21] Tsai C W, Yang C W, Lee N Y. Lightweight mediated semi-quantum key distribution protocol[J]. Modern Physics Letters A, 34, 1950281(2019).
[22] Lin P H, Tsai C W, Hwang T. Mediated semi-quantum key distribution using single photons[J]. Annalen Der Physik, 531, 1800347(2019).
[23] Hajji H, El Baz M. Qutrit-based semi-quantum key distribution protocol[J]. Quantum Information Processing, 20, 1-25(2021).
[24] Rong Z B, Qiu D W, Mateus P et al. Mediated semi-quantum secure direct communication[J]. Quantum Information Processing, 20, 1-13(2021).
[25] Sun Y H, Yan L L, Chang Y et al. Two semi-quantum secure direct communication protocols based on Bell states[J]. Modern Physics Letters A, 34, 1950004(2019).
[26] Rong Z B, Qiu D W, Zou X F. Semi-quantum secure direct communication using entanglement[J]. International Journal of Theoretical Physics, 59, 1807-1819(2020).
[27] Lin P H, Hwang T, Tsai C W. Efficient semi-quantum private comparison using single photons[J]. Quantum Information Processing, 18, 207(2019).
[28] Jiang L Z. Semi-quantum private comparison based on Bell states[J]. Quantum Information Processing, 19, 1-21(2020).
[29] Zhou N R, Xu Q D, Du N S et al. Semi-quantum private comparison protocol of size relation with d-dimensional Bell states[J]. Quantum Information Processing, 20, 1-15(2021).
[30] Yan L L, Zhang S B, Chang Y et al. Semi-quantum private comparison protocol with three-particle G-like states[J]. Quantum Information Processing, 20, 17(2021).
[32] Xu Q D, Chen H Y, Gong L H et al. Quantum private comparison protocol based on four-particle GHZ states[J]. International Journal of Theoretical Physics, 59, 1798-1806(2020).
[33] Deng F G, Li X H, Zhou H Y et al. Improving the security of multiparty quantum secret sharing against Trojan horse attack[J]. Physical Review A, 72, 044302(2005).
[34] Cai Q Y. Eavesdropping on the two-way quantum communication protocols with invisible photons[J]. Physics Letters A, 351, 23-25(2006).
[35] Li X H, Deng F G, Zhou H Y. Improving the security of secure direct communication based on the secret transmitting order of particles[J]. Physical Review A, 74, 054302(2006).