| Literature DB >> 32933534 |
Tao Hu1, Heng Yang2, Wei Ni2, Yu Lei2, Zhuoyun Jiang1, Keke Shi1, Jinhua Yu3, Yuxiang Gu4, Yuanyuan Wang1.
Abstract
BACKGROUND: Intracranial aneurysm is a common type of cerebrovascular disease with a risk of devastating subarachnoid hemorrhage if it is ruptured. Accurate computer-aided detection of aneurysms can help doctors improve the diagnostic accuracy, and it is very helpful in reducing the risk of subarachnoid hemorrhage. Aneurysms are detected in 2D or 3D images from different modalities. 3D images can provide more vascular information than 2D images, and it is more difficult to detect. The detection performance of 2D images is related to the angle of view; it may take several angles to determine the aneurysm. As the gold standard for the diagnosis of vascular diseases, the detection on digital subtraction angiography (DSA) has more clinical value than other modalities. In this study, we proposed an adaptive multiscale filter to detect intracranial aneurysms on 3D-DSA.Entities:
Keywords: Adaptive thresholding; Aneurysm detection; Bayesian optimization; Multiscale filter
Mesh:
Year: 2020 PMID: 32933534 PMCID: PMC7493845 DOI: 10.1186/s12938-020-00817-9
Source DB: PubMed Journal: Biomed Eng Online ISSN: 1475-925X Impact factor: 2.819
Fig. 1The first aneurysm detection process. a Display the original image with MIP. b Display the original image with 3D rendering. c The process of searching parameters by Bayesian optimization for the first aneurysm detection. d The first aneurysm detected is shown by MIP. e The first aneurysm detected is shown by 3D rendering. f Image after removing the first aneurysm is shown by MIP. g Image after removing the first aneurysm is shown by 3D rendering
Fig. 2The second aneurysm detection process. a Image after removing the first aneurysm is shown by MIP. b Image after removing the first aneurysm is shown by 3D rendering. c The process of searching parameters by Bayesian optimization for the second aneurysm detection. d The second aneurysm detected is shown by MIP. e The second aneurysm detected is shown by 3D rendering. f Image after removing the second aneurysm is shown by MIP. g Image after removing the second aneurysm is shown by 3D rendering
Fig. 3The PR curve of the detection results
Fig. 4The ROC curve of the detection results
Detection results of 3D-DSA and 2D-DSA
| Precision (%) | Recall (%) | AUC | ||
|---|---|---|---|---|
| 3D-DSA | 94.6 | 96.4 | 95.5 | 0.98 |
| 3D-DSA | 82.1 | 88.7 | 85.2 | 0.94 |
| 2D-DSA | 85.8 | 89.8 | 87.8 | 0.95 |
| 2D-DSA | 87.2 | 75.0 | 80.6 | 0.91 |
| 2D-observed | 94.5 | 93.3 | 93.9 | – |
Fig. 5Histogram of aneurysm size and detection results
Performance comparison with other aneurysm detection methods in different data sets
| Algorithms | Modality | SE (%) | ||
|---|---|---|---|---|
| Sichterman et al. [ | 3D-MRA | 85 | – | 87.0 |
| Sulaymana et al. [ | 2D-DSA | 19 | – | 89.5 |
| Jin et al. [ | 2D-DSA | 493 | – | 89.3 |
| Hanaoka et al. [ | 3D-MRA | 300 | – | 89.2 |
| Zhou et al. [ | 3D-RA + 3D-MRI | 121 | 94.7 | 94.8 |
| Hentschke et al. [ | 3D-MRA + 3D-CTA | 66 | – | 95.0 |
| Proposed | 3D-DSA | 145 | 95.5 | 96.4 |
N: number of cases; SE: sensitivity
Baseline characters of patients in this study
| Parameters | Single ( | Multiple ( |
|---|---|---|
| Sex (number) | ||
| Male | 43 | 7 |
| Female | 84 | 11 |
| Age (mean ± standard deviation) | ||
| Male | 57.8 ± 11.6 | 52.6 ± 11.2 |
| Female | 56.9 ± 10.7 | 57.6 ± 11.3 |
| Size (mm) | ||
| < 3 | 20 | 16 |
| 3–6 | 61 | 15 |
| 6–10 | 29 | 4 |
| > 10 | 17 | 3 |
| Location | ||
| ACoA | 7 | 4 |
| MCA | 22 | 6 |
| PCoA | 8 | 5 |
| ICA | 84 | 20 |
| ACA | 6 | 3 |
ACoA anterior communicating artery, ACA anterior cerebral artery, ICA internal carotid artery, MCA middle cerebral artery, PCoA posterior communicating artery
Fig. 6The scheme of the proposed algorithm
Fig. 7Image preprocessing process
Enhancement pattern in 2D and 3D (H = high, L = low, ± indicates the sign of eigenvalue, )
| 2D | 3D | Shape (enhancement) | |||
|---|---|---|---|---|---|
| H− | H− | H− | H− | H− | Spherical (bright) |
| H+ | H+ | H+ | H+ | H+ | Spherical (dark) |