Tren dan Tantangan Adopsi Teknologi Informasi di Industri Manufaktur Tekstil dan Garmen (Systematic Literature Review)

Isi Artikel Utama

Nungky Amalia Imran
https://orcid.org/0009-0000-2509-4961

Abstrak

Dampak dari perkembangan teknologi informasi telah mempengaruhi berbagai proses bisnis pada banyak bidang, termasuk industri manufaktur sektor tekstil dan garmen. Penerapan teknologi seperti Enterprise Resource Planning (ERP), Internet of Things (IoT), Artificial Intelligence (AI), Big Data Analytics, hingga automation system telah meningkatkan efisiensi produksi, mengoptimalkan rantai pasok, sampai dengan pengambilan keputusan dengan basis data. Penelitian ini dilakukan bertujuan untuk melakukan analisis untuk berbagai tren, peluang, hingga tantangan pada penerapan dan penggunaan teknologi informasi di perusahaan manufaktur pada bidang tekstil dan garmen. Systematic literature review dilakukan dengan melakukan analisis terhadap artikel-artikel yang terkait dengan topik penelitian. Hasil akhir dari penelitian menunjukkan bahwa masih ada beberapa peluang dan tantangan pada penerapan teknologi informasi yang dilakukan. Hal ini menunjukkan bahwa masih terdapat peluang yang dapat dikembangkan sehingga penggunaan teknologi informasi pada industri dapat dilakukan dengan maksimal.

Unduhan

Data unduhan belum tersedia.

Rincian Artikel

Cara Mengutip
Imran, N. A. (2025). Tren dan Tantangan Adopsi Teknologi Informasi di Industri Manufaktur Tekstil dan Garmen (Systematic Literature Review). Jurnal Tekstil, 8(2), 130–140. https://doi.org/10.59432/jurnaltekstil.v8i2.169
Bagian
##section.default.title##

Referensi

Ayad, A., Iyiola, K., Alzubi, A. B., & Oz, T. (2025). From disaster to flourish: how and when supply chain memory drives supply chain performance under the knowledge-based view. Kybernetes, 1–31. https://doi.org/10.1108/K-11-2024-2992

Carnevale, A., Massaroni, C., Presti, D. Lo, Formica, D., Longo, U. G., Schena, E., & Denaro, V. (2020). Wearable stretchable sensor based on conductive textile fabric for shoulder motion monitoring. 2020 IEEE International Workshop on Metrology for Industry 4.0 & IoT, 106–110. https://doi.org/10.1109/MetroInd4.0IoT48571.2020.9138267

Corchia, L., De Benedetto, E., Monti, G., Cataldo, A., Angrisani, L., Arpaia, P., & Tarricone, L. (2019). Radio-frequency Identification Based on Textile, Wearable, Chipless Tags for IoT Applications. 2019 II Workshop on Metrology for Industry 4.0 and IoT (MetroInd4.0&IoT), 1–5. https://doi.org/10.1109/METROI4.2019.8792919

Dejene, B. K. (2025). The future of fabric: A comprehensive review of self-powered smart textiles and their emerging applications. In Energy Reports (Vol. 14, pp. 898–943). Elsevier Ltd. https://doi.org/10.1016/j.egyr.2025.07.002

Dikhanbayeva, D., Aitzhanova, M., Shehab, E., & Turkyilmaz, A. (2022). Analysis of Textile Manufacturing SMEs in Kazakhstan for Industry 4.0. Procedia CIRP, 107, 888–893. https://doi.org/10.1016/j.procir.2022.05.080

Garbie, I., & Garbie, A. (2022). Identifying and Estimating the Implementation Level for Industry 4.0. 2022 Advances in Science and Engineering Technology International Conferences, ASET 2022. https://doi.org/10.1109/ASET53988.2022.9734986

Gellerstedt, F., Apell, P., & Haskal, Z. J. (2025). Textile-based radiation protection of staff during fluoroscopic guided interventions: enhancing durability, comfort and safety. CVIR Endovascular, 8(1). https://doi.org/10.1186/s42155-025-00585-4

Islam, M. S., Tushar, S. R., Bappy, M. M., Ali, M., & Al Nadim, A. (2025). An interval valued intuitionistic fuzzy approach to evaluate the challenges for adopting the smart textiles in readymade garment industries: Implications for sustainable business development. Green Technologies and Sustainability, 3(3). https://doi.org/10.1016/j.grets.2025.100225

Jordan, J., de Morais de Lima, T. A., Nugent, M., & Laaksonen, P. (2025). Lightfastness of polypropylene pigmented with natural indigo of Isatis Tinctoria. Pigment and Resin Technology. https://doi.org/10.1108/PRT-03-2024-0026

Khan, M., Muhmood, K., Mahmood, H. Z., Khaliq, I. H., & Zaman, S. (2024). The health and economic burden of dust pollution in the textile industry of Faisalabad, Pakistan. Journal of the Egyptian Public Health Association, 99(1). https://doi.org/10.1186/s42506-024-00150-2

Kim, H., Rho, S., & Jeong, W. (2025). Manufacturing and characterization of conductive threads based on twisting process for applying smartwear. Fashion and Textiles, 12(1). https://doi.org/10.1186/s40691-024-00406-7

Kim, S. U., & Kim, J. (2022). Analysis of driving forces of 3D knitted shape memory textile actuators using scale-up finite element method. Fashion and Textiles, 9(1). https://doi.org/10.1186/s40691-022-00307-7

Kitchenham, B., Pearl Brereton, O., Budgen, D., Turner, M., Bailey, J., & Linkman, S. (2009). Systematic literature reviews in software engineering – A systematic literature review. Information and Software Technology, 51(1), 7–15. https://doi.org/10.1016/j.infsof.2008.09.009

Konstantinidis, F. K., Kansizoglou, I., Tsintotas, K. A., Mouroutsos, S. G., & Gasteratos, A. (2021). The role of machine vision in industry 4.0: A textile manufacturing perspective. IST 2021 - IEEE International Conference on Imaging Systems and Techniques, Proceedings. https://doi.org/10.1109/IST50367.2021.9651459

Küsters, D., Praß, N., & Gloy, Y. S. (2017). Textile Learning Factory 4.0 – Preparing Germany’s Textile Industry for the Digital Future. Procedia Manufacturing, 9, 214–221. https://doi.org/10.1016/j.promfg.2017.04.035

Lee, H., & Roh, J. S. (2021). Charging device for wearable electromagnetic energy-harvesting textiles. Fashion and Textiles, 8(1). https://doi.org/10.1186/s40691-020-00233-6

Mahmood, A., Asif Habib, M., Ahmad, M., & Ahmad Baig, S. (2025). Assessing Industry 4.0 Readiness and Adoption Barriers in Textile Sector: Strategic Insights for Sustainable Industrial Transformation. IEEE Access, 13, 122698–122725. https://doi.org/10.1109/ACCESS.2025.3586326

Mahmood, A., Asif Habib, M., Ahmad, M., & Baig, S. A. (2025). Barriers to Adoption Industry 4.0 in Textile Sector: Analyzing Challenges in Transitioning to Smart Manufacturing With ISM and MICMAC. IEEE Access, 13, 146722–146744. https://doi.org/10.1109/ACCESS.2025.3600580

Manaia, J. P., Cerejo, F., & Duarte, J. (2023). Revolutionising textile manufacturing: a comprehensive review on 3D and 4D printing technologies. In Fashion and Textiles (Vol. 10, Issue 1). Springer. https://doi.org/10.1186/s40691-023-00339-7

Mehedi, S., Nahar, S., Hossain, M. S., Rahman, M. A., & Jahan, M. A. (2025). Corporate modern slavery and worker rights reporting: What does corporate board? Evidence from emerging economy. Asian Review of Accounting, 1–31. https://doi.org/10.1108/ARA-01-2025-0023

Mim, I. Z., Rayhan, M. G. S., & Syduzzaman, M. (2024). Prospects and current scenario of industry 4.0 in Bangladeshi textile and apparel industry. Heliyon, 10(11). https://doi.org/10.1016/j.heliyon.2024.e32044

Orasugh, J. T., Botlhoko, O. J., Temane, L. T., & Ray, S. S. (2024). Progress in polymer nonwoven textile materials in electromagnetic interference shielding applications. Functional Composite Materials, 5(1). https://doi.org/10.1186/s42252-024-00054-6

Pant, K., & Palanisamy, P. (2025). Navigating the path to Industry 4.0: a study on key barriers in Indian textile supply chain. Benchmarking. https://doi.org/10.1108/BIJ-11-2024-0970

R., P. P., & Menon, R. (2020). Investigation of Energy Management and Optimization Using Penalty Based Reinforcement Learning Algorithms for Textile Industry. 2020 International Conference on Innovative Trends in Information Technology (ICITIIT), 1–8. https://doi.org/10.1109/ICITIIT49094.2020.9071554

Rath, M., Gannouni, A., Luetticke, D., & Gries, T. (2021). Digitizing a distributed textile production process using industrial internet of things: A use-case. Proceedings - 2021 4th IEEE International Conference on Industrial Cyber-Physical Systems, ICPS 2021, 315–320. https://doi.org/10.1109/ICPS49255.2021.9468203

Rayhan, M. G. S., Nabi, M. N., Masum, M., Tushar, S. R., Fahim, M. R., & Rahman, M. M. (2025). Drivers and barriers to implementing industrial revolution 4.0 technologies: application of multi-method of ISM-MICMAC-DEMATEL. International Journal of Industrial Engineering and Operations Management. https://doi.org/10.1108/IJIEOM-01-2025-0016

Rozy, T. F., Zia, H., & Khan, N. (2025). Developing an inventory system for mapping Indian textile industrial heritage. Built Heritage, 9(1). https://doi.org/10.1186/s43238-025-00190-3

Saggiomo, M., Loehrer, M., Kerpen, D., Lemm, J., & Gloy, Y. S. (2016). Human-and task-centered assistance systems in production processes of the textile industry: determination of operator-critical weaving machine components for AR-prototype development. Proceedings of the Annual Hawaii International Conference on System Sciences, 2016-March, 560–568. https://doi.org/10.1109/HICSS.2016.76

Santos-Roldán, L., Palacios-Florencio, B., & Berbel-Pineda, J. M. (2020). The textile products labelling analysis and requirements. In Fashion and Textiles (Vol. 7, Issue 1). Springer. https://doi.org/10.1186/s40691-019-0202-4

Scholz, M., & Valilai, O. F. (2025). Integrating Chipless RFID Technology to Provide Seamless Data Interoperability for Textile Industry Circularity. Procedia Computer Science, 253, 393–402. https://doi.org/10.1016/j.procs.2025.01.101

Sharma, A., & Narula, S. A. (2020). What motivates and inhibits Indian textile firms to embrace sustainability? Asian Journal of Sustainability and Social Responsibility, 5(1). https://doi.org/10.1186/s41180-020-0032-8

Syed, R., Bandara, W., & Eden, R. (2023). Public sector digital transformation barriers: A developing country experience. Information Polity, 28(1), 5–27. https://doi.org/10.3233/IP-220017