Implementation and measurement of quantum entanglement using IBM quantum platforms

被引:4
|
作者
Karimi, Naser [1 ]
Navid Elyasi, Seyed [2 ]
Yahyavi, Marziyeh [3 ]
机构
[1] Farhangian Univ, Dept Phys Educ, POB 14665-889, Tehran, Iran
[2] Univ Kurdistan, Dept Phys, Kurdistan, Iran
[3] Univ Tabriz, Dept Theoret Phys & Astrophys, Tabriz 5166616471, Iran
关键词
gate; qubits; Implementation; measurement; quantum entanglement; IBM quantum platforms; STATES; REALIZATION; DISTANCE;
D O I
10.1088/1402-4896/ad3518
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The use of quantum entanglement has garnered increasing attention among researchers in recent years due to its wide range of applications, not only revolutionizing the field of information processing but also enhancing quantum-safe communications. Identifying the degree of entanglement present in quantum states is a crucial focus, and designing an algorithm capable of feasibly measuring entanglement is imperative. While theoretical calculations hold high regard, the ease of implementing these algorithms in a laboratory setting is essential to gauge their efficiency.In this context, IBM quantum computers stand out as discrete value NISQ (Noisy Intermediate-Scale Quantum) platforms These platforms are based on superconducting qubits, providing an opportunity to test our algorithms without the need for extravagant laboratory equipment. This paper proposes an algorithm designed to measure entanglement in a bipartite system. We will execute the algorithm on IBM's 127-qubit backends to compare our calculations with real-world results. Furthermore, we aim to address and mitigate errors inherent in these devices by utilizing local mitigation technique available in the IBM Experiments Python package, aiming for more accurate and reliable outcomes.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Implementation of Quantum Gates based Logic Circuits using IBM Qiskit
    Shaik, Enaul haq
    Rangaswamy, Nakkeeran
    PROCEEDINGS OF THE 2020 5TH INTERNATIONAL CONFERENCE ON COMPUTING, COMMUNICATION AND SECURITY (ICCCS-2020), 2020,
  • [22] Experimental measurement of bipartite entanglement using parameterized quantum circuits
    Shunzhong Xue
    Yulei Huang
    Dafa Zhao
    Chao Wei
    Jun Li
    Ying Dong
    Jiancun Gao
    Dawei Lu
    Tao Xin
    Gui-Lu Long
    Science China Physics, Mechanics & Astronomy, 2022, 65
  • [23] Entanglement and quantity in quantum space - About quantum measurement (II)
    Ren, DM
    COMMUNICATIONS IN THEORETICAL PHYSICS, 2004, 42 (01) : 33 - 36
  • [24] Experimental Measurement of Quantum Entanglement and Quantum Information Remote Control
    Wang, Z. G.
    ADVANCES IN FUNCTIONAL MANUFACTURING TECHNOLOGIES, 2010, 33 : 55 - 60
  • [25] Direct measurement of nonlocal quantum entanglement
    Eroshenko, Yu N.
    PHYSICS-USPEKHI, 2019, 62 (11) : 1170 - 1170
  • [26] Experimental measurement of bipartite entanglement using parameterized quantum circuits
    Shunzhong Xue
    Yulei Huang
    Dafa Zhao
    Chao Wei
    Jun Li
    Ying Dong
    Jiancun Gao
    Dawei Lu
    Tao Xin
    Gui-Lu Long
    Science China(Physics,Mechanics & Astronomy), 2022, Mechanics & Astronomy)2022 (08) : 77 - 88
  • [27] Experimental measurement of bipartite entanglement using parameterized quantum circuits
    Xue, Shunzhong
    Huang, Yulei
    Zhao, Dafa
    Wei, Chao
    Li, Jun
    Dong, Ying
    Gao, Jiancun
    Lu, Dawei
    Xin, Tao
    Long, Gui-Lu
    SCIENCE CHINA-PHYSICS MECHANICS & ASTRONOMY, 2022, 65 (08)
  • [28] Testing Quantum Entanglement with Local Measurement
    Xie Qing
    Wu Xian-Xin
    Ding Xiang-Mao
    Yang Wen-Li
    Yue Rui-Hong
    Fan Heng
    CHINESE PHYSICS LETTERS, 2012, 29 (07)
  • [29] Linking Quantum Discord to Entanglement in a Measurement
    Streltsov, Alexander
    Kampermann, Hermann
    Bruss, Dagmar
    PHYSICAL REVIEW LETTERS, 2011, 106 (16)
  • [30] Information theory of quantum entanglement and measurement
    Cerf, NJ
    Adami, C
    PHYSICA D-NONLINEAR PHENOMENA, 1998, 120 (1-2) : 62 - 81