Smartphone-Based LiDAR Application for Easy and Accurate Wound Size Measurement
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Design and Patient Selection
- Exclusion criteria:
- ○
- Object of interest (mass, wound, or flap) smaller than 2.0 × 2.0 cm2.
- ○
- Object of interest (mass, wound, or flap) with uneven depth that may cause inaccurate recognition by LiDAR-based surface-area scanning.
- Inclusion criteria:
- ○
- Patients who underwent flap surgery for defect coverage.
- ○
- Patients who underwent abdominoplasty surgery for rectal diastasis.
- ○
- Patients who underwent excisional biopsy with uniform depth.
2.2. Measurement Methods
- (1)
- Traditional ruler-based rectangular method
- (2)
- LiDAR technique-based method (AR Ruler App: Tape Measure Cam, GRYMALA Company, Minsk, Belarus)
- (3)
- ImageJ analysis
- ImageJ software(version 1.53t) was opened.
- File > Open (Alternatively, the picture can be dragged and dropped into the software).
- A segment was drawn along the ruler using the “straight line” tool. The examiners drew a 1 cm line along the ruler. The software then calculated the distance in the pixels of the segment.
- Analyze menu > set scale > known distance (we used 1) > unit of length (cm). The software automatically recalculated the number of pixels in cm.
- The wound outline was created using the “Freehand selections” tool by tracing the wound shape with the computer mouse (desktop computers) or trackpad (laptops).
- Analyze menu > measure. The area was calculated in cm2.
- A screenshot was taken of the screen along with the measurement window to save in the database.
2.3. Statistical Analyses
3. Results
3.1. Statistical Interpretation
3.2. Representative Patients
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Methods | Advantages | Disadvantages | Examples |
---|---|---|---|
Traditional rectangular method | Simplest measurement method No additional device is required | Inaccuracies of up to 44% [1,2,3] | Ruler |
LiDAR-based assessment | Easy to use No probe required for calibration | Unknown: no prior studies have investigated this technique | AR Ruler App: tape Measure Cam (not for wound analysis) |
ImageJ surface analysis | Most common method used to assess size measurement Easy to use Can measure complex objects | Image files must be transferred to a computer Probe necessary for calibration | Wound size measurement Determination of the photosynthetic portion of a variegated leaf Particle counting in molecular biology |
Hardware Information |
---|
iPhone 12 PRO MAX Key Specifications: Screen: 6.7 inches. Processor: Apple A14 Bionic. Storage: 128, 256, and 512 GB. Camera: Three 12-megapixel rear cameras; 12-megapixel front-facing camera. Weight: 226 g. List of cell phones (and devices) that Apple produces that use LiDAR technology iPhone 14 Pro Max iPhone 14 Pro iPhone 13 Pro Max iPhone 13 Pro iPhone 12 Pro iPhone 12 Pro Max iPad Pro (2020 Version and Later) |
Ruler | LiDAR | ImageJ | |
---|---|---|---|
N | 28 | 28 | 28 |
Average | 112.99 | 73.59 | 74.29 |
Standard Deviation (SD) | 110.07 | 72.97 | 72.15 |
Range | 455.05 | 332.90 | 310.56 |
Minimum | 15.99 | 9.40 | 12.80 |
Maximum | 471.04 | 342.30 | 323.36 |
Ruler | LiDAR | ImageJ | ||
---|---|---|---|---|
Ruler | Pearson Correlation | 1 | 0.984 ** | 0.990 ** |
Sig. (2-tailed) | 0.000 | 0.000 | ||
N | 28 | 28 | 28 | |
LiDAR | Pearson Correlation | 0.984 ** | 1 | 0.995 ** |
Sig. (2-tailed) | 0.000 | 0.000 | ||
N | 28 | 28 | 28 | |
ImageJ | Pearson Correlation | 0.990 ** | 0.995 ** | 1 |
Sig. (2-tailed) | 0.000 | 0.000 | ||
N | 28 | 28 | 28 |
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Song, B.; Kim, J.; Kwon, H.; Kim, S.; Oh, S.-H.; Ha, Y.; Song, S.-H. Smartphone-Based LiDAR Application for Easy and Accurate Wound Size Measurement. J. Clin. Med. 2023, 12, 6042. https://doi.org/10.3390/jcm12186042
Song B, Kim J, Kwon H, Kim S, Oh S-H, Ha Y, Song S-H. Smartphone-Based LiDAR Application for Easy and Accurate Wound Size Measurement. Journal of Clinical Medicine. 2023; 12(18):6042. https://doi.org/10.3390/jcm12186042
Chicago/Turabian StyleSong, Bokeun, Jeonghee Kim, Hyeokjae Kwon, Sunje Kim, Sang-Ha Oh, Yooseok Ha, and Seung-Han Song. 2023. "Smartphone-Based LiDAR Application for Easy and Accurate Wound Size Measurement" Journal of Clinical Medicine 12, no. 18: 6042. https://doi.org/10.3390/jcm12186042
APA StyleSong, B., Kim, J., Kwon, H., Kim, S., Oh, S.-H., Ha, Y., & Song, S.-H. (2023). Smartphone-Based LiDAR Application for Easy and Accurate Wound Size Measurement. Journal of Clinical Medicine, 12(18), 6042. https://doi.org/10.3390/jcm12186042