Fine Surveying and 3D Modeling Approach for Wooden Ancient Architecture via Multiple Laser Scanner Integration
Abstract
:1. Introduction
2. Background
2.1. Liangyi Temple in Wudang Mountains
2.2. Threats on Liangyi Temple
2.3. Problems and Solution: Fine Surveying and 3D Documentation for Liangyi Temple
3. Methodology
3.1. 3D Data Collection Based on Multiple Laser Scanner Integration
3.2. 3D Data Registration and Preprocessing
3.3. Data Processing: Point Cloud Projection and Slicing
3.4. 3D Modeling
4. Results and Discussions
4.1. Results and Analysis
4.2. Discussions
5. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Type | Components | Description | Map Scale | Number |
---|---|---|---|---|
Plane drawing | building | two floors | 1:50, 1:100 | 3 |
Facade drawing | building | front and side views | 1:50 | 2 |
Section drawing | building | cross and vertical sections | 1:50 | 9 |
Detail design | bracket set | four corners | 1:10, 1:20 | 8 |
Bottom view | beam | hall and corridor | 1:50 | 2 |
Detail design | components | entablature, column base, hip rafter, architrave, tile end, inverted V-shaped brace, camel hump-shaped support, partition door | 1:5 1:10 1:20 | 124 |
Components | Type | View | Measurement a (mm) | Measurement b (mm) | Error (mm) |
---|---|---|---|---|---|
Narrow tie beam under ridged purlin | Length | Left | 122 | 119 | −3 |
wide tie beam under ridged purlin | Width | Left | 168 | 169 | 1 |
narrow tie beam under south Quan | Length | Left | 211 | 212 | 1 |
wide tie beam under south Quan | Width | Left | 76 | 78 | 2 |
narrow tie beam under north Quan | Length | Left | 205 | 204 | −1 |
wide tie beam under north Quan | Width | Left | 178 | 183 | 5 |
inverted V-shaped brace | Width | Left | 143 | 142 | −1 |
inverted V-shaped brace | Thickness | Plane | 77 | 81 | 4 |
bracing of crescent beam | Length | Plane | 301 | 302 | 1 |
bracing of crescent beam | Width | Plane | 256 | 258 | 2 |
bracing of hip rafter | Length | Plane | 213 | 213 | 0 |
bracing of hip rafter | Width | Plane | 275 | 274 | −1 |
door of front hall | Width | Back | 3585 | 3588 | 3 |
crossbar of front hall door | Width | Back | 113 | 111 | −2 |
main door | Width | Front | 2835 | 2838 | 3 |
right side of the second door | Width | Front | 164 | 162 | −2 |
bottom side of the second door | Height | Front | 193 | 195 | 2 |
height of the wall | Height | Back | 795 | 798 | 3 |
window | Width | Back | 2862 | 2863 | 1 |
half of window | Width | Back | 894 | 891 | −3 |
baluster | Width | Back | 1265 | 1263 | −2 |
inside baluster | Width | Back | 1078 | 1076 | −2 |
Mean square error (MSE) | 2.3 |
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Hu, Q.; Wang, S.; Fu, C.; Ai, M.; Yu, D.; Wang, W. Fine Surveying and 3D Modeling Approach for Wooden Ancient Architecture via Multiple Laser Scanner Integration. Remote Sens. 2016, 8, 270. https://doi.org/10.3390/rs8040270
Hu Q, Wang S, Fu C, Ai M, Yu D, Wang W. Fine Surveying and 3D Modeling Approach for Wooden Ancient Architecture via Multiple Laser Scanner Integration. Remote Sensing. 2016; 8(4):270. https://doi.org/10.3390/rs8040270
Chicago/Turabian StyleHu, Qingwu, Shaohua Wang, Caiwu Fu, Mingyao Ai, Dengbo Yu, and Wende Wang. 2016. "Fine Surveying and 3D Modeling Approach for Wooden Ancient Architecture via Multiple Laser Scanner Integration" Remote Sensing 8, no. 4: 270. https://doi.org/10.3390/rs8040270
APA StyleHu, Q., Wang, S., Fu, C., Ai, M., Yu, D., & Wang, W. (2016). Fine Surveying and 3D Modeling Approach for Wooden Ancient Architecture via Multiple Laser Scanner Integration. Remote Sensing, 8(4), 270. https://doi.org/10.3390/rs8040270