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相关论文: Semiquantum private comparison based on Bell state…

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In this paper, a novel semiquantum private comparison (SQPC) protocol based on single kind of Bell states is proposed, which allows two classical parties to judge the equality of their private inputs securely and correctly under the help of…

量子物理 · 物理学 2022-12-16 Mao-Jie Geng , Ying Chen , Tian-Jie Xu , Tian-Yu Ye

Semi-quantum private comparison (SQPC) enables two classical users with limited quantum capabilities to compare confidential information using a semi-honest third party (TP) with full quantum power. However, entanglement swapping, as an…

量子物理 · 物理学 2023-08-28 Chong-Qiang Ye , Jian Li , Xiu-Bo Chen , Yanyan Hou

Semi-quantum private comparison (SQPC) allows two participants with limited quantum ability to securely compare the equality of their secrets with the help of a semi-dishonest third party (TP). Recently, Jiang proposed a SQPC protocol based…

量子物理 · 物理学 2021-01-07 Li Xie , Qin Li , Fang Yu , Xiaoping Lou , Cai Zhang

In this paper, we adopt \c{hi}-type states to design a novel circular semiquantum private comparison (SQPC) protocol which can determine the equality of private inputs from two semiquantum users within one round implementation under the…

量子物理 · 物理学 2025-04-11 Jiang-Yuan Lian , Tian-Yu Ye

In this paper, we successfully design the semi-quantum private comparison (SQPC) protocol with the measure-resend characteristic by using two-particle product states as the initial prepared quantum resource which allows two classical users…

量子物理 · 物理学 2022-05-16 Tian-Yu Ye , Chong-Qiang Ye

In this paper, we propose a novel semiquantum private comparison (SQPC) protocol of size relationship based on d-level single-particle states. The designed protocol can compare the size relationship of different privacy messages from two…

量子物理 · 物理学 2022-08-03 Mao-Jie Geng , Tian-Jie Xu , Ying Chen , Tian-Yu Ye

In this paper, we put forward a multi-party quantum private comparison (MQPC) protocol with two semi-honest third parties (TPs) by adopting d-dimensional Bell states, which can judge the size relationship of private integers from more than…

量子物理 · 物理学 2023-02-16 Jiang-Yuan Lian , Xia Li , Tian-Yu Ye

This study points out a semi-quantum protocol for private comparison using Bell states (SQPC) suffering from the double C-NOT attack and the malicious agent attack. The attacker can easily obtain information through these attacks. An…

量子物理 · 物理学 2020-12-23 You-Lin Chen , Yu-Chin Lu , Zhong-Xuan Lin , Tzonelih Hwang

By using d-level single-particle states, the first multi-party semiquantum private comparison (MSQPC) protocol which can judge the size relationship of private inputs from more than two classical users within one execution of protocol is…

量子物理 · 物理学 2023-01-24 Tian-Yu Ye , Jiang-Yuan Lian

Private comparison is a primitive for many cryptographic tasks, and recently several schemes for the quantum private comparison (QPC) have been proposed, where two users can compare the equality of their secrets with the help of a…

量子物理 · 物理学 2022-06-07 Kishore Thapliyal , Rishi Dutt Sharma , Anirban Pathak

In this paper, we design the first semiquantum private comparison (SQPC) protocol which is realized via cavity quantum electrodynamics (QED) by making use of the evolution law of atom. With the help of a semi-honest third party (TP), the…

量子物理 · 物理学 2024-05-10 Xin Xu , Jiang-Yuan Lian , Tian-Yu Ye

Semi-quantum protocols construct connections between quantum users and ``classical'' users who can only perform certain ``classical'' operations. In this paper, we present a new semi-quantum private comparison protocol based on entangled…

量子物理 · 物理学 2022-10-10 Chong-Qiang Ye , Jian Li , Xiu-Bo Chen , Yanyan Hou , Zhou Wang

Recently, Liu et al. [Commun. Theor. Phys. 57, 583, 2012] proposed a quantum private comparison protocol based on entanglement swapping of Bell states, which aims to securely compare the equality of two participants' information with the…

量子物理 · 物理学 2024-04-30 Wen-Jie Liu , Chao Liu , Yu Zheng , Zheng-Fei Chen

In this paper, a novel multi-party quantum private comparison (MQPC) protocol with a semi-honest third party (TP) is proposed based on the entanglement swapping of d-level cat states and d-level Bell states. Here, TP is allowed to misbehave…

量子物理 · 物理学 2022-05-11 Zhao-Xu Ji , Tian-Yu Ye

This study presents the first semi-quantum private comparison protocol under an almost-dishonest third party. The proposed protocol allows two classical participants to compare their secret information without compromising it's privacy. The…

量子物理 · 物理学 2016-08-24 Wen-Han Chou , Tzonelih Hwang , Jun Gu

Recently, Liu W et al. proposed a two-party quantum private comparison (QPC) protocol using entanglement swapping of Bell entangled state (Commun. Theor. Phys. 57(2012)583-588). Subsequently, Liu W J et al. pointed out that in Liu W et…

量子物理 · 物理学 2022-05-18 Tian-Yu Ye

Quantum private comparison (QPC) aims to accomplish the equality comparison of the secrets from different users without disclosing their genuine contents by using the principles of quantum mechanics. In this paper, we summarize eight modes…

量子物理 · 物理学 2022-05-11 Tian-Yu Ye , Zhao-Xu Ji

Quantum privacy comparison(QPC) plays an important role in secret ballot elections, private auctions and so on. To date, many multi-party QPC(MQPC) protocols have been proposed to compare the equality of $k(k\geq 3)$ participants. However,…

量子物理 · 物理学 2019-02-12 Hao Cao , Wenping Ma , Liangdong Lyu , Yefeng He , Ge Liu

The first quantum private comparison (QPC) protocol via cavity quantum electrodynamics (QED) is proposed in this paper by making full use of the evolution law of atom via cavity QED, where the third party (TP) is allowed to misbehave on his…

量子物理 · 物理学 2022-05-18 Tian-Yu Ye

The purpose of quantum private comparison (QPC) is to solve "Tierce problem" using quantum mechanics laws, where the "Tierce problem" is to judge whether the secret data of two participants are equal under the condition of protecting data…

量子物理 · 物理学 2022-05-17 Peiru Fan , Atta Ur Rahman , Zhaoxu Ji , Xiangmin Ji , Zhiqiang Hao , Huanguo Zhang
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