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Xiao, <i>et al<\/i>.: \u201cAccurate selection method of neutral grounding resistance in urban distribution network,\u201d ACDC 2020 (2020) (DOI: 10.1049\/icp.2020.0090).","DOI":"10.1049\/icp.2020.0090"},{"key":"2","doi-asserted-by":"crossref","unstructured":"[2] G. Wang, <i>et al<\/i>.: \u201cModeling and analysis of transient equivalent circuit of grounding fault in distribution network with neutral point grounded through low resistance,\u201d I&amp;CPS Asia (2022) 505 (DOI: 10.1109\/icpsasia55496.2022.9949906).","DOI":"10.1109\/ICPSAsia55496.2022.9949906"},{"key":"3","doi-asserted-by":"crossref","unstructured":"[3] K. Liu, <i>et al<\/i>.: \u201cReliability-enhanced hybrid grounding system based on active neutral-point voltage regulator and low-resistance,\u201d IEEE Trans. Power Del. <b>36<\/b> (2021) 3270 (DOI: 10.1109\/TPWRD.2021.3089055).","DOI":"10.1109\/TPWRD.2021.3089055"},{"key":"4","doi-asserted-by":"crossref","unstructured":"[4] Z. Tang, <i>et al<\/i>.: \u201cMulti-source data-cooperated neutral low-resistance grounding cable grid faulty segment identification,\u201d IEEE Trans. Power Syst. <b>37<\/b> (2022) 1413 (DOI: 10.1109\/TPWRS.2021.3106691).","DOI":"10.1109\/TPWRS.2021.3106691"},{"key":"5","doi-asserted-by":"crossref","unstructured":"[5] K. Liu, <i>et al<\/i>.: \u201cFlexible grounding system for single-phase to ground faults in distribution networks: a systematic review of developments,\u201d IEEE Trans. Power Del. <b>37<\/b> (2022) 1640 (DOI: 10.1109\/TPWRD.2021.3095228).","DOI":"10.1109\/TPWRD.2021.3095228"},{"key":"6","doi-asserted-by":"crossref","unstructured":"[6] C. Zhang, <i>et al<\/i>.: \u201cDiscrete Fr\u00e9chet distance algorithm-based faulty feeder selection method for flexible grounding system in distribution networks,\u201d TPEC (2021) 1 (DOI: 10.1109\/tpec51183.2021.9384920).","DOI":"10.1109\/TPEC51183.2021.9384920"},{"key":"7","doi-asserted-by":"crossref","unstructured":"[7] H. Zeng, <i>et al<\/i>.: \u201cResearch on single-phase to ground fault simulation base on a new type neutral point flexible grounding mode,\u201d IEEE Access <b>7<\/b> (2019) 82563 (DOI: 10.1109\/ACCESS.2019.2922361).","DOI":"10.1109\/ACCESS.2019.2922361"},{"key":"8","doi-asserted-by":"crossref","unstructured":"[8] B. Fan, <i>et al<\/i>.: \u201cPrinciple of flexible ground-fault arc suppression device based on zero-sequence voltage regulation,\u201d IEEE Access <b>9<\/b> (2021) 2382 (DOI: 10.1109\/ACCESS.2020.3047188).","DOI":"10.1109\/ACCESS.2020.3047188"},{"key":"9","doi-asserted-by":"crossref","unstructured":"[9] Q. Hao and L. Tianyou: \u201cHigh impedance fault line selection method for resonant grounding system based on wavelet packet analysis,\u201d CICED (2018) 1174 (DOI: 10.1109\/ciced.2018.8592331).","DOI":"10.1109\/CICED.2018.8592331"},{"key":"10","doi-asserted-by":"crossref","unstructured":"[10] A.K. Apolo Penaloza and G. Dorneles Ferreira: \u201cFaulted branch location in distribution networks based on the analysis of high-frequency transients,\u201d IEEE Latin America Trans. <b>16<\/b> (2018) 2207 (DOI: 10.1109\/TLA.2018.8528236).","DOI":"10.1109\/TLA.2018.8528236"},{"key":"11","doi-asserted-by":"crossref","unstructured":"[11] J. Gao, <i>et al<\/i>: \u201cA high-impedance fault detection method for distribution systems based on empirical wavelet transform and differential faulty energy,\u201d IEEE Trans. Smart Grid <b>13<\/b> (2022) 900 (DOI: 10.1109\/TSG.2021.3129315).","DOI":"10.1109\/TSG.2021.3129315"},{"key":"12","doi-asserted-by":"crossref","unstructured":"[12] X. Song, <i>et al<\/i>.: \u201cGrounding fault line selection method of distribution network based on time-frequency domain energy matrix,\u201d ICPRE (2022) 440 (DOI: 10.1109\/icpre55555.2022.9960361).","DOI":"10.1109\/ICPRE55555.2022.9960361"},{"key":"13","doi-asserted-by":"crossref","unstructured":"[13] X. Wang, <i>et al<\/i>.: \u201cTransient energy analysis based single-phase-to-ground fault location in distribution networks,\u201d 2018 EI2 (2018) 1 (DOI: 10.1109\/EI2.2018.8581902).","DOI":"10.1109\/EI2.2018.8581902"},{"key":"14","doi-asserted-by":"crossref","unstructured":"[14] X. Wang, <i>et al<\/i>.: \u201cFaulty line detection method based on optimized bistable system for distribution network,\u201d IEEE Trans. Ind. Inform. <b>14<\/b> (2018) 1370 (DOI: 10.1109\/tii.2017.2753227).","DOI":"10.1109\/TII.2017.2753227"},{"key":"15","doi-asserted-by":"crossref","unstructured":"[15] J. Hu, <i>et al<\/i>.: \u201cFault location and classification for distribution systems based on deep graph learning methods,\u201d Journal of Modern Power Systems and Clean Energy <b>11<\/b> (2023) 35 (DOI: 10.35833\/mpce.2022.000204).","DOI":"10.35833\/MPCE.2022.000204"},{"key":"16","doi-asserted-by":"crossref","unstructured":"[16] Z. Xu, <i>et al<\/i>.: \u201cFaulty feeder selection method for high resistance grounding fault in active flexible grounding distribution network,\u201d ICoPESA (2023) 115 (DOI: 10.1109\/icopesa56898.2023.10140634).","DOI":"10.1109\/ICoPESA56898.2023.10140634"},{"key":"17","doi-asserted-by":"crossref","unstructured":"[17] D. Paul: \u201cPhase-ground fault current analysis and protection of a high-resistance grounded power system,\u201d IEEE Trans. Ind. Appl. <b>56<\/b> (2020) 3306 (DOI: 10.1109\/tia.2020.2990116).","DOI":"10.1109\/TIA.2020.2990116"},{"key":"18","doi-asserted-by":"crossref","unstructured":"[18] X.Q. Wang, <i>et al<\/i>.: \u201cA method of faulty line selection for the flexible grounding system based on the parallel resistance identification,\u201d ICPST (2023) 103 (DOI: 10.1109\/icpst56889.2023.10165176).","DOI":"10.1109\/ICPST56889.2023.10165176"},{"key":"19","doi-asserted-by":"crossref","unstructured":"[19] M.H. Rezaeian Koochi, <i>et al<\/i>.: \u201cPMU placement with channel limitation for faulty line detection in transmission systems,\u201d IEEE Trans. Power Del. <b>35<\/b> (2020) 819 (DOI: 10.1109\/tpwrd.2019.2929097).","DOI":"10.1109\/TPWRD.2019.2929097"},{"key":"20","doi-asserted-by":"crossref","unstructured":"[20] P. Gopakumar, <i>et al<\/i>.: \u201cTransmission line fault detection and localisation methodology using PMU measurements,\u201d IET Gener. Transmiss. Distrib. <b>9<\/b> (2015) 1033 (DOI: 10.1049\/iet-gtd.2014.0788).","DOI":"10.1049\/iet-gtd.2014.0788"},{"key":"21","doi-asserted-by":"crossref","unstructured":"[21] A. Mishra and R.A. de Callafon: \u201cAlgebraic approach to PMU placement for minimum variance linear state estimation in power networks,\u201d IEEE Trans. Power Syst. <b>38<\/b> (2023) 4381 (DOI: 10.1109\/TPWRS.2022.3217013).","DOI":"10.1109\/TPWRS.2022.3217013"},{"key":"22","doi-asserted-by":"crossref","unstructured":"[22] Y. Zhang, <i>et al<\/i>.: \u201cRobust ensemble data analytics for incomplete PMU measurements-based power system stability assessment,\u201d IEEE Trans. Power Syst. <b>33<\/b> (2018) 1124 (DOI: 10.1109\/TPWRS.2017.2698239).","DOI":"10.1109\/TPWRS.2017.2698239"},{"key":"23","doi-asserted-by":"crossref","unstructured":"[23] P. Wang, <i>et al<\/i>.: \u201cFault location in resonant grounded network by adaptive control of neutral-to-earth complex impedance,\u201d IEEE Trans. Power Del. <b>33<\/b> (2018) 689 (DOI: 10.1109\/TPWRD.2017.2716955).","DOI":"10.1109\/TPWRD.2017.2716955"},{"key":"24","doi-asserted-by":"crossref","unstructured":"[24] B. Fan and X. Wang: \u201cEquivalent circuit model of grid-forming converters with circular current limiter for transient stability analysis,\u201d IEEE Trans. Power Syst. <b>37<\/b> (2022) 3141 (DOI: 10.1109\/TPWRS.2022.3173160).","DOI":"10.1109\/TPWRS.2022.3173160"},{"key":"25","unstructured":"[25] Y.D. Xue, <i>et al<\/i>.: \u201cTransient equivalent circuit of single-phase earth faults on isolated neutral system,\u201d CIRED (2013) 1 (DOI: 10.1049\/cp.2013.0741)."},{"key":"26","doi-asserted-by":"crossref","unstructured":"[26] W. Wu, <i>et al<\/i>.: \u201cAn improved Hausdorff distance method for locating single phase to ground fault in neutral non-effectively grounded system,\u201d IET Gener. Transm. Distrib. <b>15<\/b> (2021) 2747 (DOI: 10.1049\/gtd2.12212).","DOI":"10.1049\/gtd2.12212"},{"key":"27","doi-asserted-by":"crossref","unstructured":"[27] X. Wang, <i>et al<\/i>.: \u201cLocation of single phase to ground faults in distribution networks based on synchronous transients energy analysis,\u201d IEEE Trans. Smart Grid <b>11<\/b> (2020) 774 (DOI: 10.1109\/tsg.2019.2938667).","DOI":"10.1109\/TSG.2019.2938667"},{"key":"28","doi-asserted-by":"crossref","unstructured":"[28] Y. He, <i>et al<\/i>.: \u201cFaulty line selection method based on comprehensive dynamic time warping distance in a flexible grounding system,\u201d Energies <b>15<\/b> (2022) 471 (DOI: 10.3390\/en15020471).","DOI":"10.3390\/en15020471"},{"key":"29","doi-asserted-by":"crossref","unstructured":"[29] H. Guo, <i>et al<\/i>.: \u201cA lightweight cross-version binary code similarity detection based on similarity and correlation coefficient features,\u201d IEEE Access <b>8<\/b> (2020) 120501 (DOI: 10.1109\/ACCESS.2020.3004813).","DOI":"10.1109\/ACCESS.2020.3004813"},{"key":"30","doi-asserted-by":"crossref","unstructured":"[30] Y. Li and W. Chen: \u201cA correlation coefficient sparsity adaptive matching pursuit algorithm,\u201d IEEE Signal Process. 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