Acta Geodaetica et Cartographica Sinica ›› 2025, Vol. 54 ›› Issue (7): 1305-1317.doi: 10.11947/j.AGCS.2025.20240448
• Cartography and Geoinformation • Previous Articles Next Articles
Min DENG(
), Chong PENG, Kaiqi CHEN(
)
Received:2024-11-01
Revised:2025-06-18
Online:2025-08-18
Published:2025-08-18
Contact:
Kaiqi CHEN
E-mail:dengmin@csu.edu.cn;chenkaiqi@csu.edu.cn
About author:DENG Min (1974—), male, PhD, professor, majors in spatio-temporal big data mining and intelligent services. E-mail: dengmin@csu.edu.cn
Supported by:CLC Number:
Min DENG, Chong PENG, Kaiqi CHEN. A predictability measurement methodology for spatial panel data considering geo-spatial effects[J]. Acta Geodaetica et Cartographica Sinica, 2025, 54(7): 1305-1317.
Tab. 1
Neighborhood transfer entropy calculation results"
| 研究区域 | 空间面板数据 | 邻域转移熵 | 具有显著增益的邻域单元数占比(一阶邻域)/(%) | ||||
|---|---|---|---|---|---|---|---|
| 平均值 | 最大值 | 0个单元 | 1~3个单元 | 4~6个单元 | 7~8个单元 | ||
| 米兰 | Mi-Call | 0.078 | 0.421 | 0.19 | 34.62 | 61.94 | 3.25 |
| Mi-SMS | 0.056 | 0.238 | 0.68 | 52.25 | 45.94 | 1.13 | |
| Mi-Internet | 0.060 | 0.290 | 0.25 | 46.56 | 50.94 | 2.25 | |
| 特伦托 | Te-Call | 0.076 | 0.303 | 0.22 | 51.00 | 47.78 | 1.00 |
| Te-SMS | 0.054 | 0.193 | 0.78 | 67.78 | 31.22 | 0.22 | |
| Te-Internet | 0.044 | 0.206 | 1.33 | 71.11 | 26.67 | 0.89 | |
Tab. 2
Comparative analysis between changes in prediction accuracy and changes in neighborhood transfer entropy"
| 顾及邻域单元个数 | Mi-Call | Mi-SMS | Mi-Internet | Te-Call | Te-SMS | Te-Internet |
|---|---|---|---|---|---|---|
| 0 | 23.09 | 29.81 | 155.99 | 5.24 | 8.56 | 26.86 |
| 1 | 21.45(0.046) | 28.98(0.034) | 151.38(0.039) | 4.94(0.063) | 8.28(0.05) | 26.4(0.038) |
| 2 | 18.92(0.106) | 27.35(0.069) | 149.88(0.077) | 4.84(0.100) | 8.12(0.075) | 26.15(0.060) |
| 3 | 18.13(0.132) | 25.81(0.099) | 145.92(0.106) | 4.57(0.123) | 7.15(0.091) | 24.55(0.087) |
| 4 | 16.69(0.154) | 24.91(0.120) | 137.55(0.132) | 4.05(0.134) | 6.92(0.110) | 23.51(0.100) |
| 5 | 14.69(0.179) | 22.68(0.135) | 136.16(0.16) | 3.62(0.169) | 5.69(0.130) | 17.97(0.131) |
| 6 | 14.57(0.198) | 22.67(0.155) | 130.03(0.177) | 2.22(0.184) | 4.83(0.156) | 14.96(0.151) |
Tab. 7
Generalization performance test results using subregion 2 of the Te-Internet dataset as the source region"
| 源区域 | 目标区域 | 交叉区域熵 | 预测精度(MAE) |
|---|---|---|---|
| Te-Internet的子区域2 | Mi-Internet的子区域12 | 0.442 | 15.71 |
| Mi-Internet的子区域11 | 0.449 | 69.50 | |
| Mi-Internet的子区域4 | 0.450 | 128.77 | |
| Mi-Internet的子区域13 | 0.453 | 169.16 | |
| Mi-Internet的子区域8 | 0.462 | 326.74 | |
| Mi-Internet的子区域6 | 0.519 | 525.57 |
Tab. 8
Generalization performance test results using subregion 5 of the Te-Internet dataset as the source region"
| 源区域 | 目标区域 | 交叉区域熵 | 预测精度(MAE) |
|---|---|---|---|
| Te-Internet的子区域5 | Mi-Internet的子区域3 | 0.281 | 88.04 |
| Mi-Internet的子区域9 | 0.402 | 147.81 | |
| Mi-Internet的子区域4 | 0.426 | 152.05 | |
| Mi-Internet的子区域16 | 0.482 | 159.23 | |
| Mi-Internet的子区域13 | 0.521 | 218.63 | |
| Mi-Internet的子区域3 | 0.606 | 421.04 |
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