Acta Armamentarii ›› 2025, Vol. 46 ›› Issue (2): 240178-.doi: 10.12382/bgxb.2024.0178
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REN Jie, JIANG Haiyan*(), JI Jianrong
Received:
2024-03-12
Online:
2025-02-28
Contact:
JIANG Haiyan
CLC Number:
REN Jie, JIANG Haiyan, JI Jianrong. A Point Cloud Splicing Method of Rectangular Fragment Interception Target Based on Euclidean Space Transformation[J]. Acta Armamentarii, 2025, 46(2): 240178-.
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i | Fi/m | Gi/m | Ii/m | ni/m | αi/rad | γi/rad | βi/rad | Ri | ti/m |
---|---|---|---|---|---|---|---|---|---|
1 | (6.213, 5.306, 151.789) | (8.823, -4.303, 152.273) | (8.400, -4.603, 149.360) | (28.136, 7.398, -4.848) | -0.580 | 1.314 | -0.510 | (-25.671, 0, 0) | |
2 | (6.952, -2.174, 152.653) | (-5.012, -2.960, 153.996) | (-5.268, -3.813, 151.219) | (3.329, -33.571, 10.007) | -0.290 | -0.099 | 0.088 | (-22.500, -31.720, 5.978) | |
3 | (3.901, -6.698, 153.523) | (-0.098, 4.301, 154.942) | (-0.637, 4.433, 152.113) | (-31.303, -12.078, 5.402) | -0.421 | 1.203 | 0.513 | (-10.326, -6.694, -0.615) | |
4 | (1.365, -6.849, 156.680) | (-5.528, -3.143, 156.741) | (-5.417, -2.876, 153.757) | (-11.075, -20.560, -2.249) | 0.109 | 0.494 | -0.044 | (21.435, 11.228, -5.211) |
Table 1 Point cloud data calculation parameters
i | Fi/m | Gi/m | Ii/m | ni/m | αi/rad | γi/rad | βi/rad | Ri | ti/m |
---|---|---|---|---|---|---|---|---|---|
1 | (6.213, 5.306, 151.789) | (8.823, -4.303, 152.273) | (8.400, -4.603, 149.360) | (28.136, 7.398, -4.848) | -0.580 | 1.314 | -0.510 | (-25.671, 0, 0) | |
2 | (6.952, -2.174, 152.653) | (-5.012, -2.960, 153.996) | (-5.268, -3.813, 151.219) | (3.329, -33.571, 10.007) | -0.290 | -0.099 | 0.088 | (-22.500, -31.720, 5.978) | |
3 | (3.901, -6.698, 153.523) | (-0.098, 4.301, 154.942) | (-0.637, 4.433, 152.113) | (-31.303, -12.078, 5.402) | -0.421 | 1.203 | 0.513 | (-10.326, -6.694, -0.615) | |
4 | (1.365, -6.849, 156.680) | (-5.528, -3.143, 156.741) | (-5.417, -2.876, 153.757) | (-11.075, -20.560, -2.249) | 0.109 | 0.494 | -0.044 | (21.435, 11.228, -5.211) |
i | 包含点数 | 欧式变换用时/s |
---|---|---|
1 | 6638258 | 0.180 |
2 | 10927116 | 0.297 |
3 | 9849981 | 0.292 |
4 | 7042787 | 0.242 |
Table 2 Time of local point cloud euclidean transformation
i | 包含点数 | 欧式变换用时/s |
---|---|---|
1 | 6638258 | 0.180 |
2 | 10927116 | 0.297 |
3 | 9849981 | 0.292 |
4 | 7042787 | 0.242 |
i | Fi/m | Gi/m | Ii/m | 高度/m | 长度/m |
---|---|---|---|---|---|
1 | (6.213,5.306,151.789) | (8.823,-4.303,152.273) | (8.400,-4.603,149.360) | 2.959 | 9.969 |
2 | (6.952,-2.174,152.653) | (-5.012,-2.960,153.996) | (-5.268,-3.813,151.219) | 2.917 | 12.065 |
3 | (3.901,-6.698,153.523) | (-0.098,4.301,154.942) | (-0.637,4.433,152.113) | 2.883 | 11.789 |
4 | (1.365,-6.849,156.680) | (-5.528,-3.143,156.741) | (-5.417,-2.876,153.757) | 2.998 | 7.827 |
Table 3 Calculation parameters about the size of target point cloud before splicing
i | Fi/m | Gi/m | Ii/m | 高度/m | 长度/m |
---|---|---|---|---|---|
1 | (6.213,5.306,151.789) | (8.823,-4.303,152.273) | (8.400,-4.603,149.360) | 2.959 | 9.969 |
2 | (6.952,-2.174,152.653) | (-5.012,-2.960,153.996) | (-5.268,-3.813,151.219) | 2.917 | 12.065 |
3 | (3.901,-6.698,153.523) | (-0.098,4.301,154.942) | (-0.637,4.433,152.113) | 2.883 | 11.789 |
4 | (1.365,-6.849,156.680) | (-5.528,-3.143,156.741) | (-5.417,-2.876,153.757) | 2.998 | 7.827 |
i | F″i/m | G″i/m | I″i/m | 高度/m | 长度/m | 高度相对 误差/% | 长度相对 误差/% |
---|---|---|---|---|---|---|---|
1 | (-11.652,4.471,151.295) | (-12.065,14.432,151.295) | (-11.998,14.472,148.337) | 2.959 | 9.969 | 1.376 | 0.308 |
2 | (-12.065,14.432,151.295) | (0,14.383,151.295) | (0,14.382,148.378) | 2.917 | 12.065 | 2.779 | 0.539 |
3 | (0,14.432,151.295) | (11.785,14.757,151.295) | (11.750,14.801,148.412) | 2.883 | 11.789 | 3.905 | 1.757 |
4 | (11.785,14.432,151.295) | (11.804,6.605,151.295) | (11.804,6.600,148.297) | 2.998 | 7.827 | 0.081 | 2.165 |
Table 4 Calculation parameters about the size of target point cloud after splicing
i | F″i/m | G″i/m | I″i/m | 高度/m | 长度/m | 高度相对 误差/% | 长度相对 误差/% |
---|---|---|---|---|---|---|---|
1 | (-11.652,4.471,151.295) | (-12.065,14.432,151.295) | (-11.998,14.472,148.337) | 2.959 | 9.969 | 1.376 | 0.308 |
2 | (-12.065,14.432,151.295) | (0,14.383,151.295) | (0,14.382,148.378) | 2.917 | 12.065 | 2.779 | 0.539 |
3 | (0,14.432,151.295) | (11.785,14.757,151.295) | (11.750,14.801,148.412) | 2.883 | 11.789 | 3.905 | 1.757 |
4 | (11.785,14.432,151.295) | (11.804,6.605,151.295) | (11.804,6.600,148.297) | 2.998 | 7.827 | 0.081 | 2.165 |
[1] |
刘佳畅, 黄艳, 贾亚青, 等. 现代光学三维扫描仪工作原理及技术现状综述[J]. 激光杂志, 2023, 44(7):21-26.
|
|
|
[2] |
|
[3] |
|
[4] |
|
[5] |
陶俊峰, 刘海鸥, 关海杰, 等. 基于可通行度估计的无人履带车辆路径规划[J]. 兵工学报, 2023, 44(11):3320-3332.
doi: 10.12382/bgxb.2023.0262 |
doi: 10.12382/bgxb.2023.0262 |
|
[6] |
霍健, 陈慧敏, 马云飞, 等. 基于MEMS激光雷达的车辆目标识别算法[J]. 兵工学报, 2023, 44(4):940-948.
|
doi: 10.12382/bgxb.2021.0822 |
|
[7] |
|
[8] |
|
[9] |
姜金佐, 徐翔云, 任王军, 等. 战斗部动态爆炸破片威力场综述[J]. 兵工学报, 2023, 44(增刊1):1-8.
|
doi: 10.12382/bgxb.2023.0715 |
|
[10] |
|
[11] |
|
[12] |
葛超, 王晋, 郑元枫, 等. 线性聚焦式杀伤战斗部设计及破片飞散特性[J]. 北京理工大学学报, 2022, 42(12):1219-1228.
|
|
|
[13] |
|
[14] |
何性顺, 苏健军, 段奇三. 基于TLS的靶板穿孔特征识别提取方法[J]. 兵器装备工程学报, 2021, 42(1):249-253.
|
|
|
[15] |
|
[16] |
刘今越, 翟志国, 贾晓辉, 等. 基于面结构光的工件内壁点云旋转拼接研究[J]. 红外与激光工程, 2022, 51(9):277-283.
|
|
|
[17] |
任栋宇, 李晓娟, 林涛, 等. 基于Kinect v2传感器的果树枝干三维重建方法[J]. 农业机械学报, 2022, 53(增刊2):197-203.
|
|
|
[18] |
魏加立, 曲慧东, 王永宪, 等. 基于飞行时间法的3D相机研究综述[J]. 红外技术, 2021, 43(1):60-67.
|
|
|
[19] |
|
[20] |
冯田, 冯志辉, 南亚明, 等. 基于激光雷达的非合作航天器姿态测量[J]. 传感器与微系统, 2024, 43(2):139-142,147.
|
|
|
[21] |
|
[22] |
|
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