Phantom Agar-Agar sebagai Media Kalibrasi USG Alternatif: Evaluasi Lima Parameter Kualitas Citra

Authors

  • Diah Tiara Ayu Utami Sekolah Tinggi Ilmu Kesehatan Semarang
  • Muhamad Sofie Sekolah Tinggi Ilmu Kesehatan Semarang
  • Pramesti Kusumaningtyas Sekolah Tinggi Ilmu Kesehatan Semarang

DOI:

https://doi.org/10.55606/jcsr-politama.v4i4.6468

Keywords:

Agar-Agar, Grayscale Uniformity, Phantom USG, Quality Control, Ultrasonography

Abstract

Routine ultrasound (USG) calibration is essential for maintaining diagnostic accuracy, yet the high cost of commercial phantoms remains a significant barrier. This study aimed to develop an affordable agar-based USG phantom and evaluate its performance across five image quality parameters: vertical and horizontal distance accuracy, grayscale uniformity, penetration and attenuation, and slice thickness. The phantom was assessed using a Mindray DP-10 system equipped with a 4.5 MHz convex probe. Results demonstrated mean percentage errors of 0.803% for vertical distance and 1.860% for horizontal distance, both within the tolerances prescribed by AAPM TG-128. Grayscale uniformity yielded a mean coefficient of variation of 8.77%, exceeding the 5% threshold, presumably attributable to non-uniform graphite dispersion. Penetration error was recorded at 0.275%, while the attenuation coefficient was measured at 0.6466 dB/cm/MHz, approximating the soft tissue reference value. Slice thickness was determined to be 0.1885 cm. In comparison with a commercial CRIS, phantom, the fabricated phantom exhibited superior vertical accuracy and comparable horizontal accuracy. These findings indicate that the agar-based phantom constitutes a viable, low-cost alternative for USG quality assurance, contingent upon optimization of graphite dispersion to enhance grayscale uniformity..

Downloads

Download data is not yet available.

References

Armstrong, S. A., et al. (2022). Tissue-mimicking materials for ultrasound-guided needle intervention phantoms: A comprehensive review. Ultrasound in Medicine & Biology, 49(1), 18–30. https://doi.org/10.1016/j.ultrasmedbio.2022.07.016

Bitarafan-Rajabi, A., Takavar, A., Ghiasi, H. R., Alibabaei, N., Riyahi, N., Alam, A. R., Fard-Esfahani, A., Sohrabi, M., & Bitarafan-Rajabi, A. (2014). Assessment of attenuation coefficient in tissue-mimicking phantoms. Journal of Medical Physics, 39(3), 165–172.

Bracq, A., Dap, F., & Dautel, G. (2022). Fabrication of SEBS block copolymer-based ultrasound phantom containing mimic tumors for ultrasound-guided needle biopsy training. Ultrasound in Medicine & Biology, 48(6), 985–994. https://doi.org/10.1016/j.ultrasmedbio.2022.00085

Cabrelli, L. C., Pelissari, P. I. B., & Carneiro, A. A. O. (2016). Stability study of polyvinyl alcohol cryogel for tissue-mimicking phantom. IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control, 63(10), 1540–1549.

Cinta, C. N., & Lasiyah, N. (2026). The Effect of Ultrasonic Wave Frequency and Resolution on Image Quality in Ultrasonic Devices. Journal of Engineering Science and Technology Management (JES-TM), 6(1), 316–328.

Fakhira, N., & Widita, R. (2025). Analysis of the use of agar phantom in the spatial resolution test of ultrasound images. Journal of Physics: Conference Series, 2980(1), 012030. https://doi.org/10.1088/1742-6596/2980/1/012030

Gaitini, D., Ewertsen, C., Piskunowicz, M., Secil, M., Ricci, P., Fischer, T., ... & Clevert, D. A. (2023). Diversity of current ultrasound practice within and outside radiology departments with a vision for 20 years into the future. Insights into Imaging, 14, 207. https://doi.org/10.1186/s13244-023-01548-w

Goodsitt, M. M., Carson, P. L., Witt, S., Hykes, D. L., & Kofler, J. M. (1998). Real-time B-mode ultrasound quality control test procedures. Report of AAPM Ultrasound Task Group No. 1. Medical Physics, 25(8), 1385–1406.

Harris-Love, M. O., Monfaredi, R., & Ismail, C. (2016). Quantitative ultrasound: Measurement considerations for the assessment of muscle and adipose tissue. Journal of the American Geriatrics Society, 64(2), 418–425.

Hoskins, P. R., Martin, K., & Thrush, A. (2019). Diagnostic Ultrasound: Physics and Equipment (3rd ed.). CRC Press.

Jackson, S. J., & Russell, S. (2019). A precise, reproducible method for measuring ultrasound probe slice thickness using a Gammex 403 phantom. Ultrasound, 27(3), 148–155. https://doi.org/10.1177/1742271X19830742

Jawli, N. M., Oglat, A. A., & Saleh, M. S. (2024). Tissue-mimicking materials for ultrasound phantom: A comprehensive review. Journal of Medical Ultrasound, 32(1), 12–25.

Nguyen, T., Tran, Y., & Seshadri, V. (2014). Strengthening brachytherapy programs with ultrasound (US) quality assurance (QA). 2014 CSM. https://doi.org/10.1594/ranzcr2014/R-0149

Oglat, A. A. (2022). A review of blood-mimicking fluid properties using Doppler ultrasound applications. Journal of Medical Ultrasound, 30(4), 255–265.

Oglat, A. A., Matjafri, M. Z., Suardi, N., Oqlat, M. A., & Abdelrahman, M. A. (2018). A new scatter particle and mixture fluid for preparing blood mimicking fluid for wall-less flow phantom. Journal of Medical Ultrasound, 26(3), 135–142. https://doi.org/10.4103/JMU.JMU_40_18

Patent US5689443. (1997). Method and apparatus for evaluating ultrasound image quality. United States Patent and Trademark Office.

Pfeiffer, D., Sutlief, S., Feng, W., Pierce, H. M., & Kofler, J. (2008). AAPM Task Group 128: Quality assurance tests for prostate brachytherapy ultrasound systems. Medical Physics, 35(12), 5471–5489. https://doi.org/10.1118/1.3006337

Putri, A. R., Sari, D. P., & Wijaya, I. K. (2021). Karakterisasi phantom USG berbasis agar-agar untuk pengujian kualitas citra. Jurnal Fisika Indonesia, 25(3), 145–152.

Pye, S. D., Ellis, W., & MacGillivray, T. (2017). Broadband acoustic measurement of an agar-based tissue-mimicking material: A longitudinal study. Ultrasound in Medicine and Biology, 43(7), 1494–1505.

Qonitin, M., Harsoyo, I. T., & Kusumaningtyas, P. (2025). Evaluasi air dan oli sebagai material dasar phantom anechoic untuk aplikasi ultrasonography. Jurnal Teknologi Kesehatan, 17(1), 78–90.

Septyawan, I. D. (2026). Komparasi phantom berbasis agar dan minyak dalam pengujian vertical distance dan horizontal distance pada perangkat USG. Jurnal Elektromedik dan Kesehatan, 9(1), 34–47.

Songsaeng, D., Ngamsombat, C., & Suwannakarn, K. (2024). Quality control of ultrasound machines: A comprehensive review of current practices and standards. Journal of Health Science and Medical Research, 42(2), 89–105.

Yuristika, K. D., Harsoyo, I. T., & Kusumaningtyas, P. (2025). Perbandingan stabilitas bahan dan kualitas citra grayscale pada phantom ultrasonography berbasis agar dan oli. Jurnal Teknologi Laboratorium Medik, 14(1), 23–38.

Downloads

Published

2026-08-01

How to Cite

Diah Tiara Ayu Utami, Muhamad Sofie, & Pramesti Kusumaningtyas. (2026). Phantom Agar-Agar sebagai Media Kalibrasi USG Alternatif: Evaluasi Lima Parameter Kualitas Citra. Journal of Creative Student Research, 4(4), 40–56. https://doi.org/10.55606/jcsr-politama.v4i4.6468

Similar Articles

<< < 2 3 4 5 6 7 8 9 10 11 > >> 

You may also start an advanced similarity search for this article.