The concept of 'digital twins' has gained significant traction in industrial engineering, referring to virtual replicas of physical systems that are continuously updated with real-time data. These dynamic models enable predictive maintenance by simulating potential failures before they occur, thereby reducing downtime and operational costs. However, the efficacy of digital twins hinges on the quality and volume of data collected, as well as the sophistication of the algorithms used to process it. Critics argue that over-reliance on such simulations may lead to complacency, especially when the models fail to account for unforeseen environmental variables. Despite these limitations, proponents contend that digital twins represent a paradigm shift, offering unprecedented opportunities for optimization across sectors such as aerospace and healthcare.
❓ 비평가들이 디지털 트윈에 대해 제기하는 주요 우려는 무엇인가?
A. A. 대부분의 산업 분야에서 이를 도입하기에는 너무 비용이 많이 든다.
B. B. 그들은 예측 불가능한 요소를 무시하는 시뮬레이션에 대한 과도한 신뢰를 조장할 수 있다.
C. C. 그들은 종종 부정확한 실시간 데이터를 요구한다.
D. D. 그것들은 항공우주 및 의료 분야에서만 유용하다.
✅ 正确答案
B. They may encourage excessive trust in simulations that ignore unpredictable factors.
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