Integration of Artificial Intelligence Technologies into Design-Thinking Processes in the Development of Managerial Decisions as a Factor of Enterprise Sustainable Development
Abstract
:1. Introduction
2. Theoretical Analysis of the Provisions of Sustainable Development Digitalization
2.1. Exploring the Role of Digital Technologies in the ESG Agenda
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- Ensuring access to relevant information, including through the integration of digital platforms into the interaction of participants in sustainable development processes;
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- Ensuring efficient use of resources, cost reduction, and optimization (as well as re-engineering) of processes related to the achievement of SDGs;
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- Ensuring the participation of the community involved in sustainable development, taking into account the opinions and needs of different groups, which has a positive impact on social justice and equality;
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- Ensuring high-quality monitoring and evaluation: digital technologies provide tools for more accurate monitoring of progress in achieving the SDGs; data collection and analysis systems allow real-time tracking of changes and policy adjustments;
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- Creating incentives for innovative development to address sustainable development challenges.
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- Developing partnerships and cooperation, sustainable ecosystems that allow the pooling of the necessary resources and competencies for more effective achievement of the SDGs.
2.2. Analysis of Digital Tools Used for Sustainable Development by Modern Enterprises
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- Procurement management systems that allow for the rational consumption of necessary resources and ensure transparency of all stages of the procurement process [69];
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- Digital management systems focused on the organization of work with digital data, the formation of the “digital architecture” of the enterprise in accordance with strategic goals.
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- Digital management systems focus on organizing work with digital data, forming a “digital architecture” of the enterprise according to strategic goals [77].
3. Materials and Methods
4. Application of Artificial Intelligence for ESG Transformation
4.1. Analysis of the Application of Artificial Intelligence Technologies at the Modern Stage
4.2. Research on the Possibility of Using Artificial Intelligence in Managerial Decision-Making
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- Automation of routine functions and data analysis, formation of management reporting;
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- Assistance in the development of alternatives by providing data-intensive evaluation results;
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- Development of prognostic models reflecting possible development prospects for the chosen option, taking into account the influence of external and internal factors;
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- Automation of various management subsystems that make up a single enterprise management system.
4.3. Artificial Intelligence in Design-Thinking
5. Integration of Artificial Intelligence Technologies in the Process of Developing and Implementing Managerial Decisions: A Course for Sustainable Development
5.1. Process of Strategy with Integration of Artificial Intelligence Technologies
5.2. Algorithm for Selecting Sustainable Development Projects Using Artificial Intelligence Technologies
5.3. Modeling the Processes of Selection of Sustainable Development Projects Based on the Integration of Artificial Intelligence Technologies
6. Discussion and Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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No. | Country Leaders in Progress Towards SDG [29] | International Institute for Management Development (IMD). World Digital Competitiveness Ranking [30] | Information and Communication Technology (ICT) Development Index by Country 2024 [31] | Global Digitalization Index 2024 (GDI 2024) [32] |
---|---|---|---|---|
1 | Finland (86.4) | 12 (100) | 2 (98.1) | 4 (73.0) |
2 | Sweden (85.7) | 5 (182) | 15 (95.3) | 3 (74.5) |
3 | Denmark (85.0) | 3 (96) | 9 (97.1) | 5 (71.8) |
4 | Germany (83.4) | 23 (104) | 57 (87.8) | 14 (63.4) |
5 | France (82.8) | 20 (102) | 44 (89.8) | 15 (62.2) |
6 | Austria (82.5) | 25 (70) | 19 (94.3) | 22 (57.3) |
7 | Norway (82.2) | 10 (154) | 25 (93.4) | 13 (64.9) |
8 | Croatia (82.2) | 46 (90) | 45 (89.6) | 38 (46.7) |
9 | United Kingdom (82.2) | 18 (194) | 23 (93.6) | 11 (66.8) |
10 | Poland (81.7) | 39 (160) | 12 (95.8) | 36 (47.8) |
Stage of the Process of Development and Implementation of Managerial Decisions in the Process of Strategic Sustainable Development | Methods and Tools Applied | Applied Artificial Intelligence Technologies |
---|---|---|
Identification of the sustainable development challenge | Method of design thinking Stakeholder mapping | Automation of data collection and analysis Recognition, generation, and processing of oral and written human speech |
Definition of targets for the sustainable strategic development of an enterprise | Objective tree SMART-methodology Brainstorming method | Automation of data collection and analysis |
Analysis of the external and internal environment from a sustainable development perspective | SWOT Matrix PEST Analysis SNW Analysis | Automation of data collection, processing, and analysis Quantitative and qualitative analysis |
Determining the direction of sustainable strategic development | Brainstorming method SWOT analysis | Automation of data processing Automating the process of generating ideas while taking into account various factors |
Defining available resources for the selected direction | Financial analysis Resources and opportunities analysis SNW-analysis Questionnaire Survey | Automation of data processing Quantitative and qualitative analysis Modelling |
Development of a list of possible decision problems of sustainable development | Method of design thinking Expert assessment | Automation of data processing Automating the process of generating ideas, taking into account various factors Iterative and predictive modeling |
Assessment of alternatives from a sustainable development perspective and development of a “sustainable” strategy | Brainstorming method “Stable” strategy map Balanced Scorecard (BSC) | Automation of the generation of ideas while taking into account various factors Iterative and predictive modeling |
Formation of a portfolio for sustainable development strategy projects | Method of design thinking Analytic Hierarchy Process Method by T. Saaty Expert assessment | Automation of the testing ideas process by taking into account various factors Iterative and predictive modelling |
Implementation of the sustainable development strategy | Budgeting Business planning Strategic map of sustainable development | Automation of data collection and analysis Automation of data processing |
Monitoring and controlling the implementation of a sustainable strategy | Plan-fact analysis of sustainable development Key Performance Indicators (KPI) Analysis BSC | Automation of data collection and analysis Automation of data processing |
Alternatives | Environmental Criterion EC | Social Criterion SC | Corporate Governance Criteria GC |
---|---|---|---|
P1 | λec1 | λsc1 | λgc1 |
P2 | λec2 | λsc2 | λgc2 |
… | … | … | … |
Pn | λecn | λscn | λgcn |
Σ | 1 | 1 | 1 |
Environmental Criterion | P1 | P2 | … | Pn |
---|---|---|---|---|
P1 | 1 | EC21 | … | ECn1 |
P2 | EC12 | 1 | … | ECn2 |
… | … | … | … | … |
Pn | EC1n | EC2n | … | 1 |
Σ by columns |
Environmental Criterion | P1 | P2 | … | Pn | AVERAGE |
---|---|---|---|---|---|
P1 | … | ||||
P2 | |||||
… | … | … | … | … | |
Pn | … |
Alternatives | EC | SC | GC |
---|---|---|---|
P1 | AVERAGE (ECn1/) | AVERAGE (SCn1/) | AVERAGE (GCn1/) |
P2 | AVERAGE (ECn2/) | AVERAGE (SCn2/) | AVERAGE (GCn2/) |
… | |||
Pn | AVERAGE (ECnn/) | AVERAGE (SCnn/) | AVERAGE (GCnn/) |
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Kiseleva, O.; Firsova, A.; Vavilina, A. Integration of Artificial Intelligence Technologies into Design-Thinking Processes in the Development of Managerial Decisions as a Factor of Enterprise Sustainable Development. Sustainability 2025, 17, 4705. https://doi.org/10.3390/su17104705
Kiseleva O, Firsova A, Vavilina A. Integration of Artificial Intelligence Technologies into Design-Thinking Processes in the Development of Managerial Decisions as a Factor of Enterprise Sustainable Development. Sustainability. 2025; 17(10):4705. https://doi.org/10.3390/su17104705
Chicago/Turabian StyleKiseleva, Oksana, Anna Firsova, and Alla Vavilina. 2025. "Integration of Artificial Intelligence Technologies into Design-Thinking Processes in the Development of Managerial Decisions as a Factor of Enterprise Sustainable Development" Sustainability 17, no. 10: 4705. https://doi.org/10.3390/su17104705
APA StyleKiseleva, O., Firsova, A., & Vavilina, A. (2025). Integration of Artificial Intelligence Technologies into Design-Thinking Processes in the Development of Managerial Decisions as a Factor of Enterprise Sustainable Development. Sustainability, 17(10), 4705. https://doi.org/10.3390/su17104705