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首页> 外文期刊>Review of Scientific Instruments >3D parallel-detection microwave tomography for clinical breast imaging
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3D parallel-detection microwave tomography for clinical breast imaging

机译:用于临床乳房成像的3D并行检测微波层析成像

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A biomedical microwave tomography system with 3D-imaging capabilities has been constructed and translated to the clinic. Updates to the hardware and reconfiguration of the electronic-network layouts in a more compartmentalized construct have streamlined system packaging. Upgrades to the data acquisition and microwave components have increased data-acquisition speeds and improved system performance. By incorporating analog-to-digital boards that accommodate the linear amplification and dynamic-range coverage our system requires, a complete set of data (for a fixed array position at a single frequency) is now acquired in 5.8 s. Replacement of key components (e.g., switches and power dividers) by devices with improved operational bandwidths has enhanced system response over a wider frequency range. High-integrity, low-power signals are routinely measured down to −130 dBm for frequencies ranging from 500 to 2300 MHz. Adequate inter-channel isolation has been maintained, and a dynamic range >110 dB has been achieved for the full operating frequency range (500–2900 MHz). For our primary band of interest, the associated measurement deviations are less than 0.33% and 0.5° for signal amplitude and phase values, respectively. A modified monopole antenna array (composed of two interwoven eight-element sub-arrays), in conjunction with an updated motion-control system capable of independently moving the sub-arrays to various in-plane and cross-plane positions within the illumination chamber, has been configured in the new design for full volumetric data acquisition. Signal-to-noise ratios (SNRs) are more than adequate for all transmit/receive antenna pairs over the full frequency range and for the variety of in-plane and cross-plane configurations. For proximal receivers, in-plane SNRs greater than 80 dB are observed up to 2900 MHz, while cross-plane SNRs greater than 80 dB are seen for 6 cm sub-array spacing (for frequencies up to 1500 MHz). We demo- strate accurate recovery of 3D dielectric property distributions for breast-like phantoms with tumor inclusions utilizing both the in-plane and new cross-plane data.
机译:具有3D成像功能的生物医学微波断层扫描系统已构建并转化为临床。在更加分隔的结构中,硬件的更新和电子网络布局的重新配置简化了系统包装。数据采集​​和微波组件的升级提高了数据采集速度,并提高了系统性能。通过整合适应线性放大和动态范围覆盖范围的模数板,我们的系统需要在5.8 s内获取一套完整的数据(对于单个频率上的固定阵列位置)。使用具有改进的操作带宽的设备替换关键组件(例如开关和功率分配器),可以在更宽的频率范围内增强系统响应。对于频率范围从500到2300 MHz的信号,通常会低至-130 dBm来测量高完整性,低功率信号。保持了足够的通道间隔离,并且在整个工作频率范围(500–2900 MHz)下,动态范围> 110 dB。对于我们感兴趣的主要频段,信号幅度和相位值的相关测量偏差分别小于0.33%和0.5°。修改后的单极天线阵列(由两个交织的八元素子阵列组成),结合更新的运动控制系统,能够独立地将子阵列移动到照明室内的各个面内和横面位置,在新设计中已配置为完整的体积数据采集。对于整个频率范围内的所有发射/接收天线对以及各种平面内和交叉平面配置,信噪比(SNR)都绰绰有余。对于近端接收器,在2900 MHz之前观察到的平面内SNR大于80 dB,而在6 cm子阵列间距(对于1500 MHz以下的频率)下,观察到的跨平面SNR大于80 dB。我们利用平面内和新的横断面数据,对带有肿瘤夹杂物的乳腺状幻象的3D介电特性分布进行了精确恢复。

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