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Axial resolution improvement by spectral data fusion in simultaneous dual-band optical coherence tomography

机译:同步双波段光学相干断层扫描中通过光谱数据融合提高轴向分辨率

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A method for axial resolution improvement by adequate spectral data fusion of two parallel acquired disjunct wavelength bands in the 0.8 μm and 1.3 μm region in the field of simultaneous dual-band optical coherence tomography (OCT) is presented. The applied spectral domain dual-band OCT system is illuminated by a supercontinuum laser light source and allows simultaneous imaging at 800 nm and 1250 nm with free-space axial resolutions better than 4.5 μm and 7 μm, respectively, over the entire depth scan range. Each wavelength band is analyzed with an individual spectrometer at an A-scan rate of 12 kHz. To further improve axial resolution, the 1250 nm spectra are fused with the 800 nm spectra considering the spectrometer-inherent non-linear fringe frequency course of the interference light. The phase and amplitude of the 1250 nm spectra are matched to the 800 nm spectra by means of short time Fourier transform analysis in order to obtain ideally continuous joint spectra. The joint spectra then undergo conventional spectral shaping, wave number resampling, windowing and fast Fourier transformation. First results for single A-scans of a glass slide as well as entire cross-sectional images of biological tissue yield an axial resolution improvement of 52 % compared to conventional single band imaging at 800 nm. The obtained A-scans show a good sharpness with a side lobe suppression of 30 dB. Additional investigations have to be employed for the full understanding of the underlying physical background and the optimization of the applied data processing for further image quality enhancement.
机译:提出了一种通过同时在双波段光学相干层析成像(OCT)领域中在0.8μm和1.3μm区域内两个平行采集的分离波长带进行适当光谱数据融合来提高轴向分辨率的方法。所应用的光谱域双波段OCT系统由超连续激光光源照射,并允许在800 nm和1250 nm的同时成像,并且在整个深度扫描范围内的自由空间轴向分辨率分别优于4.5μm和7μm。每个光谱带均使用单独的光谱仪以12 kHz的A扫描速率进行分析。为了进一步提高轴向分辨率,考虑到分光计固有的干涉光非线性条纹频率变化,将1250 nm光谱与800 nm光谱融合在一起。通过短时傅立叶变换分析,将1250 nm光谱的相位和幅度与800 nm光谱匹配,以获得理想的连续联合光谱。然后,对联合光谱进行常规的光谱整形,波数重采样,加窗和快速傅立叶变换。与800 nm处的常规单波段成像相比,玻璃载玻片的单次A扫描以及生物组织的整个横截面图像的初步结果使轴向分辨率提高了52%。所获得的A扫描显示出良好的清晰度,旁瓣抑制为30 dB。为了进一步了解底层的物理背景以及优化所应用的数据处理以进一步提高图像质量,必须进行其他研究。

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