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Z. Salim and E. Munadi, “Info Komoditi Furnitur,” Badan Pengkaj. dan Pengemb. Perdagang. Kementeri. Perdagang. Republik Indones., 2017.Search in Google Scholar
Pijar Sukma, “4 Greatest Asian Exporting Countries for (Wooden) Furniture Manufacture,” 2020. https://pijarsukma-furniture.com/furniture-manufacturers-asia/ (accessed Dec. 12, 2023).Search in Google Scholar
N. Chang, “2022 Global Wooden Furniture Export Summary,” 2022. https://www.ptgofada.com/post/2022-global-wooden-furniture-export-summary (accessed Dec. 12, 2023).Search in Google Scholar
S. Nurkomariyah, M. Firdaus, D.R. Nurrochmat, and J.T. Erbaugh, “Questioning The Competitiveness of Indonesian Wooden Furniture in The Global Market,” IOP Conf. Ser. Earth Environ. Sci., vol. 285, no. 1, p. 012015, May 2019, doi: 10.1088/1755-1315/285/1/012015.Search in Google Scholar
AMKRI, “Roadmap Industri Mebel dan Kerajinan Indonesia ‘Target Pencapaian Ekspor 5 Milyar USD, Jakarta, 2015.Search in Google Scholar
KLHK, “Statistik Kementerian Lingkungan Hidup Dan Kehutanan 2014.”, Jakarta, 2015.Search in Google Scholar
A.C. Ewasechko, Upgrading the Central Java wood furniture industry: a value-chain approach. ILO-SRO, 2005.Search in Google Scholar
O. Panchenko, M. Domashenko, O. Lyulyov, N. Dalevska, T. Pimonenko, and N. Letunovska, “Objectivation of the Ecological and Economic Losses from Solid Domestic Waste at the Heating Enterprises,” Manag. Syst. Prod. Eng., vol. 29, no. 3, pp. 235-241, 2021, doi: 10.2478/mspe-2021-0029.Search in Google Scholar
J. Dyczkowska, Y. Bulhakova, Z. Łukaszczyk, and A. Maryniak, “Waste Management as an Element of the Creation of a Closed Loop of Supply Chains on the Example of Mining and Extractive Industry,” Manag. Syst. Prod. Eng., vol. 28, no. 1, pp. 60-69, 2020, doi: 10.2478/mspe-2020-0010.Search in Google Scholar
A. Forrest, M. Hilton, A. Ballinger, and D. Whittaker, “Circular economy opportunities in the furniture sector,” Eur. Environ. Bur. Brussels, Belgium, 2017.Search in Google Scholar
J. Kirchherr, D. Reike, and M. Hekkert, “Conceptualizing the circular economy: An analysis of 114 definitions,” Resour. Conserv. Recycl., vol. 127, pp. 221-232, 2017.Search in Google Scholar
M.C. Den Hollander, C.A. Bakker, and E.J. Hultink, “Product design in a circular economy: Development of a typology of key concepts and terms,” J. Ind. Ecol., vol. 21, no. 3, pp. 517-525, 2017.Search in Google Scholar
A. Wiśniewska-Sałek, “Managing a Sustainable Supply Chain-Statistical Analysis of Natural Resources in the Furniture Industry,” Manag. Syst. Prod. Eng., vol. 29, no. 3, pp. 227-234, 2021, doi: 10.2478/mspe-2021-0028.Search in Google Scholar
Y. Akao, Quality function deployment: integrating customer requirements into product design. SteinerBooks, 2004.Search in Google Scholar
J.B. Revelle, J.W. Moran, and C.A. Cox, The QFD handbook. John Wiley & Sons, 1998.Search in Google Scholar
B. Bergman and B. Klefsjö, Quality from customer needs to customer satisfaction. Studentlitteratur AB, 2010.Search in Google Scholar
E. Vezzetti, S. Moos, and S. Kretli, “A product lifecycle management methodology for supporting knowledge reuse in the consumer packaged goods domain,” Comput. Des., vol. 43, no. 12, pp. 1902-1911, 2011.Search in Google Scholar
C. Rao, X. Xiao, M. Goh, J. Zheng, and J. Wen, “Compound mechanism design of supplier selection based on multi-attribute auction and risk management of supply chain,” Comput. Ind. Eng., vol. 105, pp. 63-75, 2017.Search in Google Scholar
C. Yang, J. Cheng, and X. Wang, “Hybrid quality function deployment method for innovative new product design based on the theory of inventive problem solving and Kansei evaluation,” Adv. Mech. Eng., vol. 11, no. 5, p. 1687814019848939, 2019.Search in Google Scholar
J. A. Carnevalli and P. C. Miguel, “Review, analysis and classification of the literature on QFD – Types of research, difficulties and benefits,” Int. J. Prod. Econ., vol. 114, no. 2, pp. 737-754, 2008.Search in Google Scholar
M. Fargnoli and T. Sakao, “Uncovering differences and similarities among quality function deployment-based methods in Design for X: Benchmarking in different domains,” Qual. Eng., vol. 29, no. 4, pp. 690-712, 2017.Search in Google Scholar
S. Dror, “Improving business objectives by reducing testing in the transition from development to production,” Qual. Reliab. Eng. Int., vol. 36, no. 6, pp. 2108-2118, 2020.Search in Google Scholar
W. Yang, G. Cao, Q. Peng, and Y. Sun, “Effective radical innovations using integrated QFD and TRIZ,” Comput. Ind. Eng., vol. 162, p. 107716, 2021.Search in Google Scholar
D. D. Sheu, M.-C. Chiu, and D. Cayard, “The 7 pillars of TRIZ philosophies,” Comput. Ind. Eng., vol. 146, p. 106572, 2020.Search in Google Scholar
C. Leonid, E. Kalle, and L. Mika, “TRIZ Integration into a Product Design Roadmap,” in Proceedings of the 25thinternational conference on flexible automation and intelligent manufacturing, 2015, pp. 198-205.Search in Google Scholar
S.-M. Wu, H.-C. Liu, and L.-E. Wang, “Hesitant fuzzy integrated MCDM approach for quality function deployment: a case study in electric vehicle,” Int. J. Prod. Res., vol. 55, no. 15, pp. 4436-4449, 2017.Search in Google Scholar
A.A. Bolar, S. Tesfamariam, and R. Sadiq, “Framework for prioritizing infrastructure user expectations using Quality Function Deployment (QFD),” Int. J. Sustain. Built Environ., vol. 6, no. 1, pp. 16-29, 2017.Search in Google Scholar
T.T. Sousa-Zomer and P.A.C. Miguel, “A QFD-based approach to support sustainable product-service systems conceptual design,” Int. J. Adv. Manuf. Technol., vol. 88, pp. 701-717, 2017.Search in Google Scholar
C.K.M. Lee, C.T.Y. Ru, C.L. Yeung, K.L. Choy, and W. H. Ip, “Analyze the healthcare service requirement using fuzzy QFD,” Comput. Ind., vol. 74, pp. 1-15, 2015.Search in Google Scholar
I. Vanany, G.A. Maarif, and J.M. Soon, “Application of multi-based quality function deployment (QFD) model to improve halal meat industry,” J. Islam. Mark., vol. 10, no. 1, pp. 97-124, 2019.Search in Google Scholar
L. Chechurin and Y. Borgianni, “Understanding TRIZ through the review of top cited publications,” Comput. Ind., vol. 82, pp. 119-134, 2016.Search in Google Scholar
S. Ren, F. Gui, Y. Zhao, Z. Xie, H. Hong, and H. Wang, “Accelerating preliminary low-carbon design for products by integrating TRIZ and Extenics methods,” Adv. Mech. Eng., vol. 9, no. 9, p. 1687814017725461, 2017.Search in Google Scholar
H.T. Hsieh and J.L. Chen, “Using TRIZ methods in friction stir welding design,” Int. J. Adv. Manuf. Technol., vol. 46, pp. 1085-1102, 2010.Search in Google Scholar
C.J. Yang and J.L. Chen, “Accelerating preliminary eco-innovation design for products that integrates case-based reasoning and TRIZ method,” J. Clean. Prod., vol. 19, no. 9-10, pp. 998-1006, 2011.Search in Google Scholar
V. Nikolić, S. Sajjadi, D. Petković, S. Shamshirband, Ž. Ćojbašić, and L.Y. Por, “Design and state of art of innovative wind turbine systems,” Renew. Sustain. Energy Rev., vol. 61, pp. 258-265, 2016.Search in Google Scholar
P. Števko, R. Kohár, D. Cechmánek, D. Medvecká, and F. Nový, “Optimization of the Tire Building Drum for Passenger Tires Using the TRIZ Methodology,” Manag. Syst. Prod. Eng., vol. 31, no. 3, pp. 361-372, 2023, doi: 10.2478/mspe-2023-0040.Search in Google Scholar
G. Caligiana, A. Liverani, D. Francia, L. Frizziero, and G. Donnici, “Integrating QFD and TRIZ for innovative design,” J. Adv. Mech. Des. Syst. Manuf., vol. 11, no. 2, 2017, doi: 10.1299/jamdsm.2017jamdsm0015.Search in Google Scholar
T. Kim, H. Lim, and K. Cho, “Conceptual robot design for the automated layout of building structures by integrating QFD and TRIZ,” Int. J. Adv. Manuf. Technol., vol. 120, no. 3-4, pp. 1793-1804, May 2022, doi: 10.1007/s00170-022-08803-2.Search in Google Scholar
E.L. Melgoza, L. Serenó, A. Rosell, and J. Ciurana, “An integrated parameterized tool for designing a customized tracheal stent,” Comput. Des., vol. 44, no. 12, pp. 1173-1181, 2012.Search in Google Scholar
C.-H. Wang, “Incorporating the concept of systematic innovation into quality function deployment for developing multi-functional smart phones,” Comput. Ind. Eng., vol. 107, pp. 367-375, 2017.Search in Google Scholar
Y.-H. Wang, C.-H. Lee, and A. J. C. Trappey, “Service design blueprint approach incorporating TRIZ and service QFD for a meal ordering system: A case study,” Comput. Ind. Eng., vol. 107, pp. 388-400, 2017.Search in Google Scholar
F. Li, C.-H. Chen, C.-H. Lee, and L.-P. Khoo, “A user requirement-driven approach incorporating TRIZ and QFD for designing a smart vessel alarm system to reduce alarm fatigue,” J. Navig., vol. 73, no. 1, pp. 212-232, 2020.Search in Google Scholar
C.H. Yeh, J.C.Y. Huang, and C.K.Yu, “Integration of four-phase QFD and TRIZ in product R&D: a notebook case study,” Res. Eng. Des., vol. 22, pp. 125-141, 2011.Search in Google Scholar
F. Zhang, M. Yang, and W. Liu, “Using integrated quality function deployment and theory of innovation problem solving approach for ergonomic product design,” Comput. Ind. Eng., vol. 76, pp. 60-74, 2014.Search in Google Scholar
I. Ekmekci and E.E. Nebati, “Triz Methodology and Applications,” Procedia Comput. Sci., vol. 158, pp. 303-315, 2019.Search in Google Scholar
T. Bhamra and V. Lofthouse, Design for Sustainability: A Practical Approach. United Kingdom: Routledge, 2007.Search in Google Scholar
W.R. Stahel, The Performance Economy, 2nd ed. England: Palgrave Macmillan, 2010.Search in Google Scholar
N.M.P. Bocken, I. de Pauw, C. Bakker, and B. van der Grinten, “Product design and business model strategies for a circular economy,” J. Ind. Prod. Eng., vol. 33, no. 5, pp. 308-320, Jul. 2016, doi: 10.1080/21681015.2016.1172124.Search in Google Scholar
P. Ghisellini, C. Cialani, and S. Ulgiati, “A review on circular economy: the expected transition to a balanced interplay of environmental and economic systems,” J. Clean. Prod., vol. 114, pp. 11-32, 2016.Search in Google Scholar
M. Tonelli and N. Cristoni, Strategic management and the circular economy. Routledge, 2018.Search in Google Scholar
T. Cooper, “Product development implications of sustainable consumption,” Des. J., vol. 3, no. 2, pp. 46-57, 2000.Search in Google Scholar
E. MacArthur, “Towards the circular economy,” J. Ind. Ecol., vol. 2, pp. 23-44, 2013.Search in Google Scholar
C. Vezzoli and E. Manzini, Design for environmental sustainability. Springer, 2008.Search in Google Scholar
J.M. Allwood, M.F. Ashby, T.G. Gutowski, and E. Worrell, “Material efficiency: A white paper,” Resour. Conserv. Recycl., vol. 55, no. 3, pp. 362-381, 2011.Search in Google Scholar
D.W. Hosmer, T. Hosmer, S. Le Cessie, and S. Lemeshow, “A comparison of goodness‐of‐fit tests for the logistic regression model,” Stat. Med., vol. 16, no. 9, pp. 965-980, 1997.Search in Google Scholar
I. Ghozali, Aplikasi analisis multivariate dengan program SPSS. Badan Penerbit Universitas Diponegoro, 2006.Search in Google Scholar
R. Ginting and A. Y. Ali, “TRIZ or DFMA combined with QFD as product design methodology: A review,” 2016.Search in Google Scholar
H.-F. Hung, H.-P. Kao, and Y.-S. Juang, “An integrated information system for product design planning,” Expert Syst. Appl., vol. 35, no. 1-2, pp. 338-349, 2008.Search in Google Scholar
X. Lai, K. Tan, and M. Xie, “Optimizing product design using quantitative quality function deployment: a case study,” Qual. Reliab. Eng. Int., vol. 23, no. 1, pp. 45-57, 2007.Search in Google Scholar
S. Vinodh, V. Kamala, and K. Jayakrishna, “Integration of ECQFD, TRIZ, and AHP for innovative and sustainable product development,” Appl. Math. Model., vol. 38, no. 11-12, pp. 2758-2770, 2014.Search in Google Scholar
K. Purushothaman and R. Ahmad, “Integration of Six Sigma methodology of DMADV steps with QFD, DFMEA and TRIZ applications for image-based automated inspection system development: a case study,” Int. J. Lean Six Sigma, vol. 13, no. 6, pp. 1239-1276, 2022.Search in Google Scholar
J. Zhang, K.-H. Chai, and K.-C. Tan, “40 inventive principles with applications in service operations management,” TRIZ J., vol. 8, no. 12, p. 1, 2003.Search in Google Scholar
M. Chaerul and S.A. Rahayu, “Cost Benefit Analysis for Developing Municipal Solid Waste Treatment Facility: Case Study of Pekanbaru City,” J. Nat. Resour. Environ. Manag., vol. 9, no. 3, pp. 710-722, 2019.Search in Google Scholar
P. Misuraca, “The effectiveness of a costs and benefits analysis in making Federal Government decisions: A literature review,” Cent. Natl. Secur. MITRE Corp., 2014.Search in Google Scholar
C. Ghinea and M. Gavrilescu, “Costs analysis of municipal solid waste management scenarios: IASI–Romania case study,” J. Environ. Eng. Landsc. Manag., vol. 24, no. 3, pp. 185-199, 2016.Search in Google Scholar
A. Ahamed, K. Yin, B.J.H. Ng, F. Ren, V.-C. Chang, and J.-Y. Wang, “Life cycle assessment of the present and proposed food waste management technologies from environmental and economic impact perspectives,” J. Clean. Prod., vol. 131, pp. 607-614, 2016.Search in Google Scholar
V. Martinez-Sanchez, M.A. Kromann, and T.F. Astrup, “Life cycle costing of waste management systems: Overview, calculation principles and case studies,” Waste Manag., vol. 36, pp. 343-355, 2015.Search in Google Scholar
K. Dobraja, A. Barisa, and M. Rosa, “Cost-benefit analysis of integrated approach of waste and energy management,” Energy Procedia, vol. 95, pp. 104-111, 2016.Search in Google Scholar