Vui lòng dùng định danh này để trích dẫn hoặc liên kết đến tài liệu này: http://thuvienso.vanlanguni.edu.vn/handle/Vanlang_TV/16056
Nhan đề: Application of Artificial Neural Network(s) in Predicting Formwork Labour Productivity
Tác giả: Golnaraghi, Sasan
Zangenehmadar, Zahra
Moselhi, Osama
Alkass, Sabah
Từ khoá: Fuzzy systems
Learning theory
Measurement techniques
Productivity measurement
Machine learning
Statistical analysis
Earthmoving equipment
Model accuracy
Adaptive systems
Formwork
Năm xuất bản: 2019
Nhà xuất bản: Hindawi Publishing Corporation
Tóm tắt: Productivity is described as the quantitative measure between the number of resources used and the output produced, generally referred to man-hours required to produce the final product in comparison to planned man-hours. Productivity is a key element in determining the success and failure of any construction project. Construction as a labour-driven industry is a major contributor to the gross domestic product of an economy and variations in labour productivity have a significant impact on the economy. Attaining a holistic view of labour productivity is not an easy task because productivity is a function of manageable and unmanageable factors. Compound irregularity is a significant issue in modeling construction labour productivity. Artificial Neural Network (ANN) techniques that use supervised learning algorithms have proved to be more useful than statistical regression techniques considering factors like modeling ease and prediction accuracy. In this study, the expected productivity considering environmental and operational variables was modeled. Various ANN techniques were used including General Regression Neural Network (GRNN), Backpropagation Neural Network (BNN), Radial Base Function Neural Network (RBFNN), and Adaptive Neuro-Fuzzy Inference System (ANFIS) to compare their respective results in order to choose the best method for estimating expected productivity. Results show that BNN outperforms other techniques for modeling construction labour productivity.
Mô tả: 11 tr.
Định danh: http://thuvienso.vanlanguni.edu.vn/handle/Vanlang_TV/16056
ISSN: 1687-8086
1687-8094 (e)
Bộ sưu tập: Bài báo_lưu trữ

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