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[ "刘参(1990−),男,杭州电子科技大学通信工程学院硕士生,主要研究方向为无线传感器网络、无线定位等。" ]
[ "尚俊娜(1979−),女,博士,杭州电子科技大学通信工程学院副教授,主要研究方向为通信信号处理、智能算法。" ]
[ "李蕊江(1993−),男,杭州电子科技大学通信工程学院硕士生,主要研究方向为信号处理、无线定位等。" ]
[ "岳克强(1984−),男,博士,杭州电子科技大学电子信息学院讲师,主要研究方向为进化计算、通信信号处理。" ]
网络出版日期:2018-08,
纸质出版日期:2018-08-20
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刘参, 尚俊娜, 李蕊江, 等. 基于迁移学习的室内动态环境定位算法[J]. 电信科学, 2018,34(8):98-108.
Can LIU, Junna SHANG, Ruijiang LI, et al. Indoor dynamic environment lo calization algorithm based on transfer learning[J]. Telecommunications science, 2018, 34(8): 98-108.
刘参, 尚俊娜, 李蕊江, 等. 基于迁移学习的室内动态环境定位算法[J]. 电信科学, 2018,34(8):98-108. DOI: 10.11959/j.issn.1000−0801.2018170.
Can LIU, Junna SHANG, Ruijiang LI, et al. Indoor dynamic environment lo calization algorithm based on transfer learning[J]. Telecommunications science, 2018, 34(8): 98-108. DOI: 10.11959/j.issn.1000−0801.2018170.
传统室内指纹定位系统的精度受指纹库中参考位置节点的密度和室内环境特征等多方面因素的制约。室内环境动态变化时RSS波动较大,通常不满足同分布的假设条件,故传统指纹定位方法难以满足高精度需求。针对室内环境动态变化导致传统算法无法精准定位问题,设计并实现了一种基于室内指纹库的迁移学习动态环境定位算法,该算法采用迁移学习的思想把不同分布的数据集嵌入对齐到潜在特征空间中,从而有效缓解了环境动态变化对系统造成的不利影响。本文算法实验数据均来自于真实的环境,通过仿真得到该算法的平均定位误差是1.23m。
The accuracy of the traditional indoor fingerprint lo calization system is limited bymany factors
such as the density of the reference location node in the fingerprint database and the characteristics of the indoor environment.When the indoor environment changes dynami cally
the RSS fluctuates
and usually does notmeet the assumption of the same distribution.Therefore
it was difficult to obtain high-precision requirements for conventional fingerprint positioningmethod.Aiming at the problem that the traditional algorithm couldn’t locate accurately
an algorithm based on the indoor fingerprint database was designed and implemented.The algorithm adopted the idea ofmigration learning to embed different data sets into the latent feature space
and the adverse effects of environmental changes on the system weremitigated.The simulation results show that the average positioning error of this algorithm is 1.23m.
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