| Literature DB >> 31664056 |
M T Islam1, M Z Mahmud2,3, M Tarikul Islam4, S Kibria4, M Samsuzzaman4.
Abstract
Globally, breast cancer is a major reason for female mortality. Due to the limitations of current clinical imaging, the researchers are encouraged to explore alternative and complementary tools to available techniques to detect the breast tumor in an earlier stage. This article outlines a new, portable, and low-cost microwave imaging (MWI) system using an iterative enhancing technique for breast imaging. A compact side slotted tapered slot antenna is designed for microwave imaging. The radiating fins of tapered slot antenna are modified by etching nine rectangular side slots. The irregular slots on the radiating fins enhance the electrical length as well as produce strong directive radiation due to the suppression of induced surface currents that radiate vertically at the outer edges of the radiating arms with end-fire direction. It has remarkable effects on efficiency and gain. With the addition of slots, the side-lobe levels are reduced, the gain of the main-lobe is increased and corrects the squint effects simultaneously, thus improving the characteristics of the radiation. For experimental validation, a heterogeneous breast phantom was developed that contains dielectric properties identical to real breast tissues with the inclusion of tumors. An alternative PC controlled and microcontroller-based mechanical MWI system is designed and developed to collect the antenna scattering signal. The radiated backscattered signals from the targeted area of the human body are analyzed to reveal the changes in dielectric properties in tissues. The dielectric constants of tumorous cells are higher than that of normal tissues due to their higher water content. The remarkable deviation of the scattered field is processed by using newly proposed Iteratively Corrected Delay and Sum (IC-DAS) algorithm and the reconstruction of the image of the phantom interior is done. The developed UWB (Ultra-Wideband) antenna based MWI has been able to perform the detection of tumorous cells in breast phantom that can pave the way to saving lives.Entities:
Mesh:
Year: 2019 PMID: 31664056 PMCID: PMC6820549 DOI: 10.1038/s41598-019-51620-z
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Developed heterogeneous breast phantom (a) without tumor (b) with two tumors.
Figure 2The diagram and different components of the proposed breast imaging system.
Figure 3The graphic view of the proposed portable breast imaging system.
Figure 4Imaging domain (a) Side view (b) Top view.
Figure 5Fundamental geometry (a) exponentially tapered slot (b) proposed modified antenna (c) front view of fabricated prototype (d) back view of fabricated prototype.
Figure 6Effect of irregular slots (a) To the reflection coefficient and (b) To the gain.
Figure 7Radiation Pattern of xy-plane (a) 3 GHz (b) 3.75 GHz (c) 4.77 GHz (d) 5.78 GHz.
Optimized parameters of proposed SSVA (in mm).
| Parameters | Value | Parameters | Value | Parameters | Value |
|---|---|---|---|---|---|
| Length (L) | 51 | Opening rate (R) | 0.04 | Coupler width(Wc) | 1.4 |
| Width (W) | 42 | Stub Radius (R1) | 9 | Coupler Length (Lc) | 9 |
| Flare Height (Hf) | 41 | Stub angle (ϕ)(deg) | 180 | Slot-line length (SL) | 1.5 |
| Flare length (Lf) | 38 | Cavity Diameter(Cd) | 8 | Quadrilaterals outer(P1) | 11.15 |
| Slotted area(Sa) | 36 | Cavity Distance(C0) | 0.76 | Quadrilaterals inner(P2) | 5.07 |
| No slotted area(Sna) | 15 | Tapered Width(Tw) | 3.5 | Quadrilaterals height(h) | 4 |
| Slot-line width (Sw) | 0.5 | Tapered Length (TL) | 13 | Quadrilaterals cross (d) | 6.08 |
Figure 8Experimental setup of the imaging system.
Figure 9Reconstructed images for DAS (Left) and Proposed IC-DAS (Right) algorithm for two different phantoms (a) Phantom with a single tumor and (b) Phantom having two tumors.
Signal to mean ratio.
| Phantom | DAS | IC DAS |
|---|---|---|
| (1 tumor) | 5.0645 | 5.0690 |
| (2 tumors) | 4.6943 | 4.6973 |
Comparison of the different measurements system with the proposed system.
| Ref. | Antenna Type | Operating Freq. GHz) | Elements/Position | Fixed/Movable | Frequency/Time domain | Imaging Method | Phantom And tumor object |
|---|---|---|---|---|---|---|---|
|
[ | Pyramidal Horn Antenna | 2.0–10.0 | 8 × 241 Scanned position on transmission reception | Movable Multistatic | Frequency domain | No Results | No No |
|
[ | Balanced antipodal Vivaldi antenna | 1.0–13.0 | 36 Single element scanned position | Fixed Tank Rotate monostatic | Frequency domain | TSAR (Tissue Sensing Adaptive Radar) | Sample Tissue No |
|
[ | Tapered and transmission loaded antenna | 2.0–8.0 | 16 element Array 16 × 15 scanned position | Fixed Switching Matrix | Time-domain | DMAS (Delay Multiply and Sum Algorithm) | Lab-based breast phantom Yes Single |
|
[ | Slotted patch | 3.5–15.0 | 4 × 4 Single element | Fixed Switching Matrix | Frequency domain | Confocal Imaging | Simulated phantom Yes |
|
[ | Corrugated Antipodal Vivaldi Antenna | 1.0–4.0 | 16 Single element Scanned position | Fixed Rotated Platform Monostatic | Frequency domain | DAS Delay and Sum Algorithm) | Lab-based breast phantom No |
|
[ | UWB transceiver | 3.0–10.0 | 16 Element array | Fixed Switching Matrix | Time-domain | DAS Simulation only | No No No |
|
[ | Slotted antipodal Vivaldi antenna | 3.01–11.0 | Two element 2 × 50 position | Fixed Platform rotated | Time-domain | DMAS | Yes Yes Single |
|
[ | CPW feed Monopole | 2.0–4.0 | 16 Elements array 16 × 15 scanned position | Fixed Switching Matrix | Time-domain | DMAS | Yes Yes Single |
|
[ | CPW feed EBG structure Antenna | 3.1–7.6 | 2 antenna elements 2 × 120 scanned position | Fixed Platform rotated | Frequency Domain | DMAS | Commercial phantoms Single tumor object |
|
[ | Horn like 3D UWB antenna | 2.0–6.5 | 2 antenna elements 24 × 19 transmission-reception position | Movable multistatic | Time and Frequency Domain | DMAS | No phantom No tumor |
| Proposed | Side slotted Vivaldi antenna | 2.80–7.00 GHz | 9 Antenna array 8 × 50 scanned position | Movable multistatic | Frequency and Time Domain | IC-DAS | Lab-made heterogeneous phantom 1 and 2 tumor object |