Optimization of a random linear ultrasonic therapeutic array based on a genetic algorithm
•A genetic algorithm based method proposed to optimize the random arrangement of array elements.•The suppression effect of grating lobes can be effectively improved with reduced calculating time.•The impact factors affecting the suppression of grating lobes were discussed based on simulations.•An Ex...
        Saved in:
      
    
          | Published in | Ultrasonics Vol. 124; p. 106751 | 
|---|---|
| Main Authors | , , , , | 
| Format | Journal Article | 
| Language | English | 
| Published | 
        Netherlands
          Elsevier B.V
    
        01.08.2022
     | 
| Subjects | |
| Online Access | Get full text | 
| ISSN | 0041-624X 1874-9968 1874-9968  | 
| DOI | 10.1016/j.ultras.2022.106751 | 
Cover
| Abstract | •A genetic algorithm based method proposed to optimize the random arrangement of array elements.•The suppression effect of grating lobes can be effectively improved with reduced calculating time.•The impact factors affecting the suppression of grating lobes were discussed based on simulations.•An Experimental array was fabricated based on GA-based design to verify the simulation results.
Given their advantage of suppressing grating lobes, randomly arranged linear arrays have potential for use in ultrasonic treatment. The current work proposes a method based on genetic algorithm to optimize the random arrangement of array elements, so that the suppression effect of grating lobes can be significantly improved with reduced calculating time. The maximum and average kerfs of array elements are used as genes, and the ratio of the maximum to the secondary maximum sound pressure at the focal plane is used as the optimized target. Typically, the calculation requirements of the current method can be reduced to ∼ 25% of the traversing method. We further discuss how the kerf width, the effective ratio of element areas and the ratio of focal distance to array aperture affect the suppression of grating lobes. For a typical linear array with 32 elements (1-MHz operating frequency, 1.5-mm element width and 150-mm focal distance), the results suggest that the grating lobes are suppressed well when (1) the ratio of maximum width to average width of the element is between 5 and 8, (2) the ratio of the effective element area to the area of the whole array is between 0.5 and 0.9, and (3) the ratio of the effective emission aperture to the actual emission aperture of the array is as large as possible. Based on optimized parameters, an experimental array was fabricated and the measured results of corresponding sound field were entirely consistent with the simulated results (Given her role as an Associate Editor of this journal, Juan Tu had no involvement in the peer-review of articles for which she was an author and had no access to information regarding the peer-review. Full responsibility for the peer-review process for this article was delegated to another Editor of this journal.). | 
    
|---|---|
| AbstractList | •A genetic algorithm based method proposed to optimize the random arrangement of array elements.•The suppression effect of grating lobes can be effectively improved with reduced calculating time.•The impact factors affecting the suppression of grating lobes were discussed based on simulations.•An Experimental array was fabricated based on GA-based design to verify the simulation results.
Given their advantage of suppressing grating lobes, randomly arranged linear arrays have potential for use in ultrasonic treatment. The current work proposes a method based on genetic algorithm to optimize the random arrangement of array elements, so that the suppression effect of grating lobes can be significantly improved with reduced calculating time. The maximum and average kerfs of array elements are used as genes, and the ratio of the maximum to the secondary maximum sound pressure at the focal plane is used as the optimized target. Typically, the calculation requirements of the current method can be reduced to ∼ 25% of the traversing method. We further discuss how the kerf width, the effective ratio of element areas and the ratio of focal distance to array aperture affect the suppression of grating lobes. For a typical linear array with 32 elements (1-MHz operating frequency, 1.5-mm element width and 150-mm focal distance), the results suggest that the grating lobes are suppressed well when (1) the ratio of maximum width to average width of the element is between 5 and 8, (2) the ratio of the effective element area to the area of the whole array is between 0.5 and 0.9, and (3) the ratio of the effective emission aperture to the actual emission aperture of the array is as large as possible. Based on optimized parameters, an experimental array was fabricated and the measured results of corresponding sound field were entirely consistent with the simulated results (Given her role as an Associate Editor of this journal, Juan Tu had no involvement in the peer-review of articles for which she was an author and had no access to information regarding the peer-review. Full responsibility for the peer-review process for this article was delegated to another Editor of this journal.). Given their advantage of suppressing grating lobes, randomly arranged linear arrays have potential for use in ultrasonic treatment. The current work proposes a method based on genetic algorithm to optimize the random arrangement of array elements, so that the suppression effect of grating lobes can be significantly improved with reduced calculating time. The maximum and average kerfs of array elements are used as genes, and the ratio of the maximum to the secondary maximum sound pressure at the focal plane is used as the optimized target. Typically, the calculation requirements of the current method can be reduced to ∼ 25% of the traversing method. We further discuss how the kerf width, the effective ratio of element areas and the ratio of focal distance to array aperture affect the suppression of grating lobes. For a typical linear array with 32 elements (1-MHz operating frequency, 1.5-mm element width and 150-mm focal distance), the results suggest that the grating lobes are suppressed well when (1) the ratio of maximum width to average width of the element is between 5 and 8, (2) the ratio of the effective element area to the area of the whole array is between 0.5 and 0.9, and (3) the ratio of the effective emission aperture to the actual emission aperture of the array is as large as possible. Based on optimized parameters, an experimental array was fabricated and the measured results of corresponding sound field were entirely consistent with the simulated results (Given her role as an Associate Editor of this journal, Juan Tu had no involvement in the peer-review of articles for which she was an author and had no access to information regarding the peer-review. Full responsibility for the peer-review process for this article was delegated to another Editor of this journal.).Given their advantage of suppressing grating lobes, randomly arranged linear arrays have potential for use in ultrasonic treatment. The current work proposes a method based on genetic algorithm to optimize the random arrangement of array elements, so that the suppression effect of grating lobes can be significantly improved with reduced calculating time. The maximum and average kerfs of array elements are used as genes, and the ratio of the maximum to the secondary maximum sound pressure at the focal plane is used as the optimized target. Typically, the calculation requirements of the current method can be reduced to ∼ 25% of the traversing method. We further discuss how the kerf width, the effective ratio of element areas and the ratio of focal distance to array aperture affect the suppression of grating lobes. For a typical linear array with 32 elements (1-MHz operating frequency, 1.5-mm element width and 150-mm focal distance), the results suggest that the grating lobes are suppressed well when (1) the ratio of maximum width to average width of the element is between 5 and 8, (2) the ratio of the effective element area to the area of the whole array is between 0.5 and 0.9, and (3) the ratio of the effective emission aperture to the actual emission aperture of the array is as large as possible. Based on optimized parameters, an experimental array was fabricated and the measured results of corresponding sound field were entirely consistent with the simulated results (Given her role as an Associate Editor of this journal, Juan Tu had no involvement in the peer-review of articles for which she was an author and had no access to information regarding the peer-review. Full responsibility for the peer-review process for this article was delegated to another Editor of this journal.). Given their advantage of suppressing grating lobes, randomly arranged linear arrays have potential for use in ultrasonic treatment. The current work proposes a method based on genetic algorithm to optimize the random arrangement of array elements, so that the suppression effect of grating lobes can be significantly improved with reduced calculating time. The maximum and average kerfs of array elements are used as genes, and the ratio of the maximum to the secondary maximum sound pressure at the focal plane is used as the optimized target. Typically, the calculation requirements of the current method can be reduced to ∼ 25% of the traversing method. We further discuss how the kerf width, the effective ratio of element areas and the ratio of focal distance to array aperture affect the suppression of grating lobes. For a typical linear array with 32 elements (1-MHz operating frequency, 1.5-mm element width and 150-mm focal distance), the results suggest that the grating lobes are suppressed well when (1) the ratio of maximum width to average width of the element is between 5 and 8, (2) the ratio of the effective element area to the area of the whole array is between 0.5 and 0.9, and (3) the ratio of the effective emission aperture to the actual emission aperture of the array is as large as possible. Based on optimized parameters, an experimental array was fabricated and the measured results of corresponding sound field were entirely consistent with the simulated results (Given her role as an Associate Editor of this journal, Juan Tu had no involvement in the peer-review of articles for which she was an author and had no access to information regarding the peer-review. Full responsibility for the peer-review process for this article was delegated to another Editor of this journal.).  | 
    
| ArticleNumber | 106751 | 
    
| Author | Zhang, Xin Xue, Honghui Guo, Xiasheng Zhang, Dong Tu, Juan  | 
    
| Author_xml | – sequence: 1 givenname: Honghui surname: Xue fullname: Xue, Honghui organization: Key Laboratory of Modern Acoustics (MOE), School of Physics, Collaborative Innovation Center of Advanced Microstructure, Nanjing University, Nanjing 210093, China – sequence: 2 givenname: Xin surname: Zhang fullname: Zhang, Xin organization: Key Laboratory of Modern Acoustics (MOE), School of Physics, Collaborative Innovation Center of Advanced Microstructure, Nanjing University, Nanjing 210093, China – sequence: 3 givenname: Xiasheng surname: Guo fullname: Guo, Xiasheng organization: Key Laboratory of Modern Acoustics (MOE), School of Physics, Collaborative Innovation Center of Advanced Microstructure, Nanjing University, Nanjing 210093, China – sequence: 4 givenname: Juan surname: Tu fullname: Tu, Juan email: juantu@nju.edu.cn organization: Key Laboratory of Modern Acoustics (MOE), School of Physics, Collaborative Innovation Center of Advanced Microstructure, Nanjing University, Nanjing 210093, China – sequence: 5 givenname: Dong surname: Zhang fullname: Zhang, Dong email: dzhang@nju.edu.cn organization: Key Laboratory of Modern Acoustics (MOE), School of Physics, Collaborative Innovation Center of Advanced Microstructure, Nanjing University, Nanjing 210093, China  | 
    
| BackLink | https://www.ncbi.nlm.nih.gov/pubmed/35512579$$D View this record in MEDLINE/PubMed | 
    
| BookMark | eNqFkE1rFTEUQINU7Gv1H4hk6WaeuZlMPlwIUvyCQjcW6iokmfvaPGYmzyQj1F_vtFNduGhXCck598I5IUdTmpCQ18C2wEC-22_noWZXtpxxvjxJ1cEzsgGtRGOM1Edkw5iARnJxdUxOStkzBkJD-4Ict10HvFNmQ35cHGoc429XY5po2lFHs5v6NNIhTugyXZekKQZabzC7A851ubuc3S31rmBPF9HRa5zw_mO4TjnWm_Eleb5zQ8FXD-cpufz86fvZ1-b84su3s4_nTWglr40AL4SXWqtOGKWZ5E72Rps-ePCgmMOWAwhvdO-F0l4JUKE1qI1TUoNrT8nbde4hp58zlmrHWAIOg5swzcVyKYEZ1hq9oG8e0NmP2NtDjqPLt_ZvjgUQKxByKiXj7h8CzN5Vt3u7BrF31e1afdHe_6eFWO-LLmgcnpI_rDIukX5FzLaEiFPAPmYM1fYpPj7gD7x7n4M | 
    
| CitedBy_id | crossref_primary_10_1088_1361_665X_ace40a crossref_primary_10_1088_1361_6501_ad688a crossref_primary_10_1109_TASLP_2023_3304491  | 
    
| Cites_doi | 10.3390/app8101881 10.1109/TUFFC.2021.3127222 10.2522/ptj.20050392 10.1016/j.ultras.2020.106167 10.1016/j.ultras.2008.02.004 10.1063/1.4766912 10.1109/ULTSYM.1985.198637 10.1109/TUFFC.2006.1593370 10.1063/1.5022622 10.1109/ISBI.2004.1398465 10.1109/TUFFC.2018.2800160 10.1016/j.ultrasmedbio.2006.01.010 10.1016/j.ultras.2021.106459 10.1109/ULTSYM.2015.0166 10.1109/ULTSYM.2018.8579952 10.1109/TBME.2013.2264484 10.1007/s00266-011-9700-5 10.1088/0031-9155/48/16/301 10.1080/02656730601186138 10.1109/ACCESS.2020.2989337 10.1016/j.ultras.2021.106548 10.1109/TUFFC.2015.007202 10.1109/58.542054 10.1007/s40846-019-00464-z 10.1088/1361-6560/aaf5f1  | 
    
| ContentType | Journal Article | 
    
| Copyright | 2022 Elsevier B.V. Copyright © 2022 Elsevier B.V. All rights reserved.  | 
    
| Copyright_xml | – notice: 2022 Elsevier B.V. – notice: Copyright © 2022 Elsevier B.V. All rights reserved.  | 
    
| DBID | AAYXX CITATION NPM 7X8  | 
    
| DOI | 10.1016/j.ultras.2022.106751 | 
    
| DatabaseName | CrossRef PubMed MEDLINE - Academic  | 
    
| DatabaseTitle | CrossRef PubMed MEDLINE - Academic  | 
    
| DatabaseTitleList | MEDLINE - Academic PubMed  | 
    
| Database_xml | – sequence: 1 dbid: NPM name: PubMed url: https://proxy.k.utb.cz/login?url=http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?db=PubMed sourceTypes: Index Database  | 
    
| DeliveryMethod | fulltext_linktorsrc | 
    
| Discipline | Engineering Physics  | 
    
| EISSN | 1874-9968 | 
    
| ExternalDocumentID | 35512579 10_1016_j_ultras_2022_106751 S0041624X22000622  | 
    
| Genre | Journal Article | 
    
| GroupedDBID | --- --K --M -~X .DC .~1 0R~ 123 1B1 1RT 1~. 1~5 29Q 4.4 457 4G. 53G 5RE 5VS 7-5 71M 8P~ 9JM 9JN AACTN AAEDT AAEDW AAIAV AAIKJ AAKOC AALRI AAOAW AAQFI AAQXK AAXUO ABBQC ABEFU ABFNM ABJNI ABLJU ABLVK ABMAC ABMZM ABNEU ABTAH ABXDB ABYKQ ACDAQ ACFVG ACGFS ACNNM ACRLP ADBBV ADEZE ADMUD AEBSH AEKER AENEX AFFNX AFKWA AFTJW AFXIZ AGHFR AGUBO AGYEJ AHHHB AIEXJ AIKHN AITUG AIVDX AJBFU AJOXV AJRQY ALMA_UNASSIGNED_HOLDINGS AMFUW AMRAJ ANZVX ASPBG AVWKF AXJTR AZFZN BBWZM BKOJK BLXMC BNPGV C45 CS3 EBS EFJIC EFLBG EJD EO8 EO9 EP2 EP3 F5P FDB FEDTE FGOYB FIRID FNPLU FYGXN G-Q G8K GBLVA HMV HVGLF HZ~ IHE J1W KOM LCYCR M38 M41 MO0 N9A NDZJH O-L O9- OAUVE OGIMB OVD OZT P-8 P-9 P2P PC. Q38 R2- RIG RNS ROL RPZ SDF SDG SES SEW SPC SPCBC SPD SPG SSH SSQ SSZ T5K TAE TEORI UHS WH7 WUQ XPP ZGI ZMT ZXP ZY4 ~02 ~G- AATTM AAXKI AAYWO AAYXX ABDPE ABWVN ACIEU ACLOT ACRPL ACVFH ADCNI ADNMO AEIPS AEUPX AFJKZ AFPUW AGQPQ AIGII AIIUN AKBMS AKRWK AKYEP ANKPU APXCP CITATION EFKBS ~HD NPM 7X8  | 
    
| ID | FETCH-LOGICAL-c362t-41b44b688754978062a6d989dcb1b170ae32114b98db478b7417c39e89a7681a3 | 
    
| IEDL.DBID | .~1 | 
    
| ISSN | 0041-624X 1874-9968  | 
    
| IngestDate | Thu Oct 02 06:18:14 EDT 2025 Thu Apr 03 07:01:31 EDT 2025 Wed Oct 01 05:17:15 EDT 2025 Thu Apr 24 23:02:29 EDT 2025 Fri Feb 23 02:40:29 EST 2024  | 
    
| IsPeerReviewed | true | 
    
| IsScholarly | true | 
    
| Keywords | Ultrasonic therapy Random linear ultrasonic array Genetic algorithm Grating lobe suppression  | 
    
| Language | English | 
    
| License | Copyright © 2022 Elsevier B.V. All rights reserved. | 
    
| LinkModel | DirectLink | 
    
| MergedId | FETCHMERGED-LOGICAL-c362t-41b44b688754978062a6d989dcb1b170ae32114b98db478b7417c39e89a7681a3 | 
    
| Notes | ObjectType-Article-1 SourceType-Scholarly Journals-1 ObjectType-Feature-2 content type line 23  | 
    
| PMID | 35512579 | 
    
| PQID | 2661090398 | 
    
| PQPubID | 23479 | 
    
| ParticipantIDs | proquest_miscellaneous_2661090398 pubmed_primary_35512579 crossref_primary_10_1016_j_ultras_2022_106751 crossref_citationtrail_10_1016_j_ultras_2022_106751 elsevier_sciencedirect_doi_10_1016_j_ultras_2022_106751  | 
    
| ProviderPackageCode | CITATION AAYXX  | 
    
| PublicationCentury | 2000 | 
    
| PublicationDate | 2022-08-01 | 
    
| PublicationDateYYYYMMDD | 2022-08-01 | 
    
| PublicationDate_xml | – month: 08 year: 2022 text: 2022-08-01 day: 01  | 
    
| PublicationDecade | 2020 | 
    
| PublicationPlace | Netherlands | 
    
| PublicationPlace_xml | – name: Netherlands | 
    
| PublicationTitle | Ultrasonics | 
    
| PublicationTitleAlternate | Ultrasonics | 
    
| PublicationYear | 2022 | 
    
| Publisher | Elsevier B.V | 
    
| Publisher_xml | – name: Elsevier B.V | 
    
| References | Goss, Frizzell, Kouzmanoff, Barich, Yang (b0100) 1996; 43 Pernot, Aubry, Tanter, Thomas, Fink (b0130) 2003; 48 Bae, Song (b0110) 2018; 8 Snehota, Vachutka, ter Haar, Dolezal, Kolarova (b0015) 2020; 107 Duryea, Cain, Roberts, Hall, Duryea, Cain, Roberts, Hall (b0070) 2015; 62 Rosnitskiy, Vysokanov, Gavrilov, Sapozhnikov, Khokhlova (b0125) 2018; 65 Li, Jiaming, Yang, Guo, Tu, Huang, Zhang (b0040) 2018; 123 Watson (b0030) 2008; 48 ter Haar, Coussios (b0035) 2007; 23 Zhang, Mao, Zhang, Lu, Li, Liu, Liu, Yang, Wang, Geng, Qi, Wan (b0105) 2022; 69 Jewell, Solish, Desilets (b0025) 2011; 35 Zheng, Li, Hsu, Liu, Chiu, Lee, Kim, Shung (b0080) 2012; 101 Zhao, Kim (b0055) 2018; 2018 B. Diarra, R. Samikannu, D. Vray, C. Cachard, J. Chuma, A. Yahya, H. Liebgott, Feasibility of Genetic Algorithms in 2D Ultrasound Array Optimization, in: 2018 IEEE International Ultrasonics Symposium (IUS), IEEE, 2018, pp. 1-9. Y. Hui, E.S. Ebbini, Dual-mode ultrasound phased arrays for imaging and therapy, in: 2004 2nd IEEE International Symposium on Biomedical Imaging: Nano to Macro (IEEE Cat No. 04EX821), 2004, pp. 25-28 Vol. 21. J.H. Jang, M.F. Rasmussen, A. Bhuyan, H. Yoon, A. Moini, C. Chang, R.D. Watkins, J.W. Choe, A. Nikoozadeh, D. Stephens, O. Ö, K.B. Pauly, B. Khuri-Yakub, Dual-mode integrated circuit for imaging and HIFU with 2-D CMUT arrays, in: 2015 IEEE International Ultrasonics Symposium (IUS), 2015, pp. 1-4. Chen, Liu, Grondin, Konofagou, Luo (b0095) 2019; 64 Zeng, Shen, Fang, Li, Zhu (b0045) 2021; 117 Casper, Liu, Ballard, Ebbini (b0065) 2013; 60 Selfridge, Gehlbach (b0120) 1985 Liu, Chen, Chen, Shih, Chen, Lin (b0010) 2006; 32 Wong, Schumann, Townsend, Phelps (b0020) 2007; 87 Kumar, Lee, Kim, Fatemi, Alizad (b0090) 2020; 8 Sanchez, Barrere, Treilleux, Chopin, Melodelima (b0005) 2021; 115 Chang-Hong, Xiao-Chen, Cannata, Yen, Shung (b0050) 2006; 53 Lean, Zhou (b0060) 2019; 39 ter Haar (10.1016/j.ultras.2022.106751_b0035) 2007; 23 Goss (10.1016/j.ultras.2022.106751_b0100) 1996; 43 Jewell (10.1016/j.ultras.2022.106751_b0025) 2011; 35 Li (10.1016/j.ultras.2022.106751_b0040) 2018; 123 Liu (10.1016/j.ultras.2022.106751_b0010) 2006; 32 Pernot (10.1016/j.ultras.2022.106751_b0130) 2003; 48 Sanchez (10.1016/j.ultras.2022.106751_b0005) 2021; 115 Chang-Hong (10.1016/j.ultras.2022.106751_b0050) 2006; 53 10.1016/j.ultras.2022.106751_b0085 Selfridge (10.1016/j.ultras.2022.106751_b0120) 1985 Zeng (10.1016/j.ultras.2022.106751_b0045) 2021; 117 Zheng (10.1016/j.ultras.2022.106751_b0080) 2012; 101 Duryea (10.1016/j.ultras.2022.106751_b0070) 2015; 62 Lean (10.1016/j.ultras.2022.106751_b0060) 2019; 39 Snehota (10.1016/j.ultras.2022.106751_b0015) 2020; 107 Watson (10.1016/j.ultras.2022.106751_b0030) 2008; 48 Kumar (10.1016/j.ultras.2022.106751_b0090) 2020; 8 Chen (10.1016/j.ultras.2022.106751_b0095) 2019; 64 Rosnitskiy (10.1016/j.ultras.2022.106751_b0125) 2018; 65 10.1016/j.ultras.2022.106751_b0075 Casper (10.1016/j.ultras.2022.106751_b0065) 2013; 60 10.1016/j.ultras.2022.106751_b0115 Zhao (10.1016/j.ultras.2022.106751_b0055) 2018; 2018 Zhang (10.1016/j.ultras.2022.106751_b0105) 2022; 69 Wong (10.1016/j.ultras.2022.106751_b0020) 2007; 87 Bae (10.1016/j.ultras.2022.106751_b0110) 2018; 8  | 
    
| References_xml | – volume: 23 start-page: 89 year: 2007 end-page: 104 ident: b0035 article-title: High intensity focused ultrasound: Physical principles and devices publication-title: Int. J. Hyperth. – volume: 101 year: 2012 ident: b0080 article-title: Acoustic trapping with a high frequency linear phased array publication-title: Appl. Phys. Lett. – volume: 64 year: 2019 ident: b0095 article-title: Compressed sensing reconstruction of synthetic transmit aperture dataset for volumetric diverging wave imaging publication-title: Phys Med Biol – volume: 115 year: 2021 ident: b0005 article-title: Development of a noninvasive HIFU treatment for breast adenocarcinomas using a toroidal transducer based on preliminary attenuation measurements publication-title: Ultrasonics – volume: 117 year: 2021 ident: b0045 article-title: Experimental realization of ultrasonic retroreflection tweezing via metagratings publication-title: Ultrasonics – volume: 43 start-page: 1111 year: 1996 end-page: 1121 ident: b0100 article-title: Sparse random ultrasound phased array for focal surgery publication-title: IEEE Trans. Ultrason. Ferroelectr. Freq. Control – volume: 123 year: 2018 ident: b0040 article-title: Fourier and non-Fourier bio-heat transfer models to predict ex vivo temperature response to focused ultrasound heating publication-title: J. Appl. Phys. – reference: B. Diarra, R. Samikannu, D. Vray, C. Cachard, J. Chuma, A. Yahya, H. Liebgott, Feasibility of Genetic Algorithms in 2D Ultrasound Array Optimization, in: 2018 IEEE International Ultrasonics Symposium (IUS), IEEE, 2018, pp. 1-9. – reference: J.H. Jang, M.F. Rasmussen, A. Bhuyan, H. Yoon, A. Moini, C. Chang, R.D. Watkins, J.W. Choe, A. Nikoozadeh, D. Stephens, O. Ö, K.B. Pauly, B. Khuri-Yakub, Dual-mode integrated circuit for imaging and HIFU with 2-D CMUT arrays, in: 2015 IEEE International Ultrasonics Symposium (IUS), 2015, pp. 1-4. – volume: 107 year: 2020 ident: b0015 article-title: Therapeutic ultrasound experiments in vitro: Review of factors influencing outcomes and reproducibility publication-title: Ultrasonics – volume: 8 start-page: 1881 year: 2018 ident: b0110 article-title: Methods for Grating Lobe Suppression in Ultrasound Plane Wave Imaging publication-title: Applied Sciences – volume: 39 start-page: 919 year: 2019 end-page: 931 ident: b0060 article-title: Acoustic Field of Phased-Array Ultrasound Transducer with the Focus/Foci Shifting publication-title: Journal of Medical and Biological Engineering – volume: 53 start-page: 317 year: 2006 end-page: 323 ident: b0050 article-title: Development of a real-time, high-frequency ultrasound digital beamformer for high-frequency linear array transducers publication-title: IEEE Trans. Ultrason. Ferroelectr. Freq. Control – volume: 65 start-page: 630 year: 2018 end-page: 637 ident: b0125 article-title: Method for Designing Multielement Fully Populated Random Phased Arrays for Ultrasound Surgery Applications publication-title: IEEE Trans. Ultrason. Ferroelectr. Freq. Control – volume: 69 start-page: 565 year: 2022 end-page: 579 ident: b0105 article-title: Multiple-Focus Patterns of Sparse Random Array Using Particle Swarm Optimization for Ultrasound Surgery publication-title: IEEE Trans Ultrason Ferroelectr Freq Control – volume: 32 start-page: 759 year: 2006 end-page: 767 ident: b0010 article-title: Cavitation-enhanced ultrasound thermal therapy by combined low- and high-frequency ultrasound exposure publication-title: Ultrasound Med Biol – volume: 35 start-page: 901 year: 2011 end-page: 912 ident: b0025 article-title: Noninvasive body sculpting technologies with an emphasis on high-intensity focused ultrasound publication-title: Aesthetic Plast Surg – volume: 48 start-page: 2577 year: 2003 end-page: 2589 ident: b0130 article-title: High power transcranial beam steering for ultrasonic brain therapy publication-title: Phys. Med. Biol. – start-page: 875 year: 1985 end-page: 877 ident: b0120 article-title: KLN Transducer Model Implementation Using Transfer Matrices, in publication-title: IEEE 1985 Ultrasonics Symposium – volume: 48 start-page: 321 year: 2008 end-page: 329 ident: b0030 article-title: Ultrasound in contemporary physiotherapy practice publication-title: Ultrasonics – volume: 62 start-page: 2068 year: 2015 end-page: 2078 ident: b0070 article-title: Removal of residual cavitation nuclei to enhance histotripsy fractionation of soft tissue publication-title: IEEE Trans. Ultrason. Ferroelectr. Freq. Control – volume: 8 start-page: 76276 year: 2020 end-page: 76286 ident: b0090 article-title: Gap-filling method for suppressing grating lobes in ultrasound imaging: Experimental study with deep-learning approach publication-title: IEEE Access – volume: 2018 start-page: 245 year: 2018 end-page: 248 ident: b0055 article-title: Focused ultrasound transducer with electrically controllable focal length, in publication-title: IEEE Micro Electro Mechanical Systems (MEMS) – reference: Y. Hui, E.S. Ebbini, Dual-mode ultrasound phased arrays for imaging and therapy, in: 2004 2nd IEEE International Symposium on Biomedical Imaging: Nano to Macro (IEEE Cat No. 04EX821), 2004, pp. 25-28 Vol. 21. – volume: 87 start-page: 986 year: 2007 end-page: 994 ident: b0020 article-title: A Survey of Therapeutic Ultrasound Use by Physical Therapists Who Are Orthopaedic Certified Specialists publication-title: Phys. Ther. – volume: 60 start-page: 2751 year: 2013 end-page: 2759 ident: b0065 article-title: Real-time implementation of a dual-mode ultrasound array system: in vivo results publication-title: IEEE Trans Biomed Eng – volume: 8 start-page: 1881 issue: 10 year: 2018 ident: 10.1016/j.ultras.2022.106751_b0110 article-title: Methods for Grating Lobe Suppression in Ultrasound Plane Wave Imaging publication-title: Applied Sciences doi: 10.3390/app8101881 – volume: 69 start-page: 565 year: 2022 ident: 10.1016/j.ultras.2022.106751_b0105 article-title: Multiple-Focus Patterns of Sparse Random Array Using Particle Swarm Optimization for Ultrasound Surgery publication-title: IEEE Trans Ultrason Ferroelectr Freq Control doi: 10.1109/TUFFC.2021.3127222 – volume: 87 start-page: 986 year: 2007 ident: 10.1016/j.ultras.2022.106751_b0020 article-title: A Survey of Therapeutic Ultrasound Use by Physical Therapists Who Are Orthopaedic Certified Specialists publication-title: Phys. Ther. doi: 10.2522/ptj.20050392 – volume: 107 year: 2020 ident: 10.1016/j.ultras.2022.106751_b0015 article-title: Therapeutic ultrasound experiments in vitro: Review of factors influencing outcomes and reproducibility publication-title: Ultrasonics doi: 10.1016/j.ultras.2020.106167 – volume: 48 start-page: 321 year: 2008 ident: 10.1016/j.ultras.2022.106751_b0030 article-title: Ultrasound in contemporary physiotherapy practice publication-title: Ultrasonics doi: 10.1016/j.ultras.2008.02.004 – volume: 101 year: 2012 ident: 10.1016/j.ultras.2022.106751_b0080 article-title: Acoustic trapping with a high frequency linear phased array publication-title: Appl. Phys. Lett. doi: 10.1063/1.4766912 – start-page: 875 year: 1985 ident: 10.1016/j.ultras.2022.106751_b0120 article-title: KLN Transducer Model Implementation Using Transfer Matrices, in publication-title: IEEE 1985 Ultrasonics Symposium doi: 10.1109/ULTSYM.1985.198637 – volume: 53 start-page: 317 year: 2006 ident: 10.1016/j.ultras.2022.106751_b0050 article-title: Development of a real-time, high-frequency ultrasound digital beamformer for high-frequency linear array transducers publication-title: IEEE Trans. Ultrason. Ferroelectr. Freq. Control doi: 10.1109/TUFFC.2006.1593370 – volume: 123 year: 2018 ident: 10.1016/j.ultras.2022.106751_b0040 article-title: Fourier and non-Fourier bio-heat transfer models to predict ex vivo temperature response to focused ultrasound heating publication-title: J. Appl. Phys. doi: 10.1063/1.5022622 – ident: 10.1016/j.ultras.2022.106751_b0075 doi: 10.1109/ISBI.2004.1398465 – volume: 65 start-page: 630 year: 2018 ident: 10.1016/j.ultras.2022.106751_b0125 article-title: Method for Designing Multielement Fully Populated Random Phased Arrays for Ultrasound Surgery Applications publication-title: IEEE Trans. Ultrason. Ferroelectr. Freq. Control doi: 10.1109/TUFFC.2018.2800160 – volume: 32 start-page: 759 year: 2006 ident: 10.1016/j.ultras.2022.106751_b0010 article-title: Cavitation-enhanced ultrasound thermal therapy by combined low- and high-frequency ultrasound exposure publication-title: Ultrasound Med Biol doi: 10.1016/j.ultrasmedbio.2006.01.010 – volume: 115 year: 2021 ident: 10.1016/j.ultras.2022.106751_b0005 article-title: Development of a noninvasive HIFU treatment for breast adenocarcinomas using a toroidal transducer based on preliminary attenuation measurements publication-title: Ultrasonics doi: 10.1016/j.ultras.2021.106459 – ident: 10.1016/j.ultras.2022.106751_b0085 doi: 10.1109/ULTSYM.2015.0166 – ident: 10.1016/j.ultras.2022.106751_b0115 doi: 10.1109/ULTSYM.2018.8579952 – volume: 60 start-page: 2751 year: 2013 ident: 10.1016/j.ultras.2022.106751_b0065 article-title: Real-time implementation of a dual-mode ultrasound array system: in vivo results publication-title: IEEE Trans Biomed Eng doi: 10.1109/TBME.2013.2264484 – volume: 35 start-page: 901 year: 2011 ident: 10.1016/j.ultras.2022.106751_b0025 article-title: Noninvasive body sculpting technologies with an emphasis on high-intensity focused ultrasound publication-title: Aesthetic Plast Surg doi: 10.1007/s00266-011-9700-5 – volume: 2018 start-page: 245 year: 2018 ident: 10.1016/j.ultras.2022.106751_b0055 article-title: Focused ultrasound transducer with electrically controllable focal length, in publication-title: IEEE Micro Electro Mechanical Systems (MEMS) – volume: 48 start-page: 2577 year: 2003 ident: 10.1016/j.ultras.2022.106751_b0130 article-title: High power transcranial beam steering for ultrasonic brain therapy publication-title: Phys. Med. Biol. doi: 10.1088/0031-9155/48/16/301 – volume: 23 start-page: 89 issue: 2 year: 2007 ident: 10.1016/j.ultras.2022.106751_b0035 article-title: High intensity focused ultrasound: Physical principles and devices publication-title: Int. J. Hyperth. doi: 10.1080/02656730601186138 – volume: 8 start-page: 76276 year: 2020 ident: 10.1016/j.ultras.2022.106751_b0090 article-title: Gap-filling method for suppressing grating lobes in ultrasound imaging: Experimental study with deep-learning approach publication-title: IEEE Access doi: 10.1109/ACCESS.2020.2989337 – volume: 117 year: 2021 ident: 10.1016/j.ultras.2022.106751_b0045 article-title: Experimental realization of ultrasonic retroreflection tweezing via metagratings publication-title: Ultrasonics doi: 10.1016/j.ultras.2021.106548 – volume: 62 start-page: 2068 year: 2015 ident: 10.1016/j.ultras.2022.106751_b0070 article-title: Removal of residual cavitation nuclei to enhance histotripsy fractionation of soft tissue publication-title: IEEE Trans. Ultrason. Ferroelectr. Freq. Control doi: 10.1109/TUFFC.2015.007202 – volume: 43 start-page: 1111 year: 1996 ident: 10.1016/j.ultras.2022.106751_b0100 article-title: Sparse random ultrasound phased array for focal surgery publication-title: IEEE Trans. Ultrason. Ferroelectr. Freq. Control doi: 10.1109/58.542054 – volume: 39 start-page: 919 year: 2019 ident: 10.1016/j.ultras.2022.106751_b0060 article-title: Acoustic Field of Phased-Array Ultrasound Transducer with the Focus/Foci Shifting publication-title: Journal of Medical and Biological Engineering doi: 10.1007/s40846-019-00464-z – volume: 64 year: 2019 ident: 10.1016/j.ultras.2022.106751_b0095 article-title: Compressed sensing reconstruction of synthetic transmit aperture dataset for volumetric diverging wave imaging publication-title: Phys Med Biol doi: 10.1088/1361-6560/aaf5f1  | 
    
| SSID | ssj0014813 | 
    
| Score | 2.3623083 | 
    
| Snippet | •A genetic algorithm based method proposed to optimize the random arrangement of array elements.•The suppression effect of grating lobes can be effectively... Given their advantage of suppressing grating lobes, randomly arranged linear arrays have potential for use in ultrasonic treatment. The current work proposes a...  | 
    
| SourceID | proquest pubmed crossref elsevier  | 
    
| SourceType | Aggregation Database Index Database Enrichment Source Publisher  | 
    
| StartPage | 106751 | 
    
| SubjectTerms | Genetic algorithm Grating lobe suppression Random linear ultrasonic array Ultrasonic therapy  | 
    
| Title | Optimization of a random linear ultrasonic therapeutic array based on a genetic algorithm | 
    
| URI | https://dx.doi.org/10.1016/j.ultras.2022.106751 https://www.ncbi.nlm.nih.gov/pubmed/35512579 https://www.proquest.com/docview/2661090398  | 
    
| Volume | 124 | 
    
| hasFullText | 1 | 
    
| inHoldings | 1 | 
    
| isFullTextHit | |
| isPrint | |
| journalDatabaseRights | – providerCode: PRVESC databaseName: Baden-Württemberg Complete Freedom Collection (Elsevier) customDbUrl: eissn: 1874-9968 dateEnd: 99991231 omitProxy: true ssIdentifier: ssj0014813 issn: 0041-624X databaseCode: GBLVA dateStart: 20110101 isFulltext: true titleUrlDefault: https://www.sciencedirect.com providerName: Elsevier – providerCode: PRVESC databaseName: Elsevier SD Complete Freedom Collection [SCCMFC] customDbUrl: eissn: 1874-9968 dateEnd: 99991231 omitProxy: true ssIdentifier: ssj0014813 issn: 0041-624X databaseCode: ACRLP dateStart: 19950101 isFulltext: true titleUrlDefault: https://www.sciencedirect.com providerName: Elsevier – providerCode: PRVESC databaseName: Elsevier SD Freedom Collection Journals [SCFCJ] customDbUrl: eissn: 1874-9968 dateEnd: 99991231 omitProxy: true ssIdentifier: ssj0014813 issn: 0041-624X databaseCode: AIKHN dateStart: 19950101 isFulltext: true titleUrlDefault: https://www.sciencedirect.com providerName: Elsevier – providerCode: PRVESC databaseName: ScienceDirect (Elsevier) customDbUrl: eissn: 1874-9968 dateEnd: 99991231 omitProxy: true ssIdentifier: ssj0014813 issn: 0041-624X databaseCode: .~1 dateStart: 19950101 isFulltext: true titleUrlDefault: https://www.sciencedirect.com providerName: Elsevier – providerCode: PRVLSH databaseName: Elsevier Journals customDbUrl: mediaType: online eissn: 1874-9968 dateEnd: 99991231 omitProxy: true ssIdentifier: ssj0014813 issn: 0041-624X databaseCode: AKRWK dateStart: 19630101 isFulltext: true providerName: Library Specific Holdings  | 
    
| link | http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwnV3NT9swFH9CoEnsgFhho8AqI-3qNo7dJj4iBOo2DS5DKqfIju2tqG1QSA9c-Nt5Lx8VOyCkHZM8K86z834_2-8D4FsurJdjJXiIXODKqMBtCJ6nLrY6NomJHG3o_7qeTG_Vj9l4tgUXXSwMuVW2tr-x6bW1bu-MWm2OHuZzivFFMhGrWVxHm8Rkh5VKqIrB8Hnj5oFsX7SnzIKTdBc-V_t4rRdVaShpdxwPKZfaWLwFT2_RzxqGrvZhr-WP7Lzp4ifY8qsefHyVVbAHH2qvzvzxAO5u0CAs20hLVgRmGEKTK5aMyKUpWdMzyo7LXgViMVOW5okRwDmGDQ3DWebrB4s_RTmv_i4P4fbq8vfFlLe1FHiOEFVxJaxSdoImZUw15VBfZuJ0ql1uhRVJZLzEpaCyOnVWJalFopHkUvtUG1yQCCM_w_aqWPkjYCEVeRoMApuUKhivkXS5PPIShX2kQx9kp8IsbxONU72LRdZ5lN1nzedlpPisUXwf-KbVQ5No4x35pBud7J8JkyEWvNPyrBvMDP8lOiAxK1-sUWhCyecjqdM-fGlGedMX5GXIBRN9_N_vPYFdumq8B09huyrX_isymsoO6ik7gJ3z7z-n1y8VkvV- | 
    
| linkProvider | Elsevier | 
    
| linkToHtml | http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwnV1NT9wwEB0hEGo5IKAUFig1EldDHDub-IgQaPnsBaTlZNmxTbfa3aCQPXDhtzPOxwoOCKnXZKw4Y2feczzzDHCYM-N4Ihj1kfVUaOGp8d7RzMZGxjrVkQ0_9G9u-4N7cTlMhgtw2tXChLTKNvY3Mb2O1u2V49abx0-jUajxRTIRi2FcV5vEGIeXRBKnYQV29DrP80C6z9ptZkaDeVc_Vyd5zcZVqYNqdxwfBTG1hH2GT5_xzxqHztdgtSWQ5KTp4zosuOkGrLyTFdyA5TqtM3_-AQ9_MCJM2lJLUniiCWKTLSYksEtdkqZnQR6XvKvEIros9QsJCGcJNtQEp5mrb4wfi3JU_Z1swv352d3pgLaHKdAcMaqighkhTB9jShIOlUOH6b6VmbS5YYalkXYc14LCyMwakWYGmUaac-kyqXFFwjT_CYvTYuq2gfiM5ZnXiGycC6-dRNZl88hxNHaR9D3gnQtV3iqNhwMvxqpLKfunmtdTwfGqcXwP6LzVU6O08YV92o2O-jBjFILBFy0PusFU-DGFHRI9dcUMjfpBfT7iMuvBVjPK874gMUMymMqd_37ub_g2uLu5VtcXt1e78D3caVIJ92CxKmfuF9KbyuzX0_cNxC_3Ew | 
    
| openUrl | ctx_ver=Z39.88-2004&ctx_enc=info%3Aofi%2Fenc%3AUTF-8&rfr_id=info%3Asid%2Fsummon.serialssolutions.com&rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&rft.genre=article&rft.atitle=Optimization+of+a+random+linear+ultrasonic+therapeutic+array+based+on+a+genetic+algorithm&rft.jtitle=Ultrasonics&rft.au=Xue%2C+Honghui&rft.au=Zhang%2C+Xin&rft.au=Guo%2C+Xiasheng&rft.au=Tu%2C+Juan&rft.date=2022-08-01&rft.pub=Elsevier+B.V&rft.issn=0041-624X&rft.eissn=1874-9968&rft.volume=124&rft_id=info:doi/10.1016%2Fj.ultras.2022.106751&rft.externalDocID=S0041624X22000622 | 
    
| thumbnail_l | http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/lc.gif&issn=0041-624X&client=summon | 
    
| thumbnail_m | http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/mc.gif&issn=0041-624X&client=summon | 
    
| thumbnail_s | http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/sc.gif&issn=0041-624X&client=summon |