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Structural Health Monitoring of Bridges
Structural Health Monitoring of Bridges
Knygos.lt klubas Knygos.lt nariams
315,20 €
-30%
Įprastai
450,29 €
  • Planuojame turėti už 233 d.
As bridges age, bear the weight of growing traffic volumes, and are impacted by climate change, their structural integrity becomes an increasing concern. To offer a more precise, real-time solution for assessing the condition of bridges and to enable proactive maintenance strategies, Structural Health Monitoring of Bridges: A Pattern Recognition Paradigm proposes an innovative approach for infrastructure assessment, focused on statistical pattern recognition (SPR) and advanced machine learning…

Structural Health Monitoring of Bridges (el. knyga) (skaityta knyga) | knygos.lt

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As bridges age, bear the weight of growing traffic volumes, and are impacted by climate change, their structural integrity becomes an increasing concern. To offer a more precise, real-time solution for assessing the condition of bridges and to enable proactive maintenance strategies, Structural Health Monitoring of Bridges: A Pattern Recognition Paradigm proposes an innovative approach for infrastructure assessment, focused on statistical pattern recognition (SPR) and advanced machine learning techniques.

The authors introduce a novel hybrid framework that integrates data-driven methodologies with advanced computational techniques, enabling more effective detection of faults and anomalies. By utilizing SPR and leveraging machine learning algorithms, this work provides fresh insights into how these modern tools can transform infrastructure monitoring, making it more efficient and responsive to evolving or newly emerging issues. Special attention is given to data processing techniques that allow the detection of damage patterns without relying on subjective human or destructive appraisal, significantly improving the accuracy and reliability of results.

By addressing both the technical and operational aspects of SHM, the book serves as an invaluable foundational reference resource to equip readers with the advanced knowledge and practical expertise needed to adopt these cutting-edge systems in their own infrastructure management workflows.

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As bridges age, bear the weight of growing traffic volumes, and are impacted by climate change, their structural integrity becomes an increasing concern. To offer a more precise, real-time solution for assessing the condition of bridges and to enable proactive maintenance strategies, Structural Health Monitoring of Bridges: A Pattern Recognition Paradigm proposes an innovative approach for infrastructure assessment, focused on statistical pattern recognition (SPR) and advanced machine learning techniques.

The authors introduce a novel hybrid framework that integrates data-driven methodologies with advanced computational techniques, enabling more effective detection of faults and anomalies. By utilizing SPR and leveraging machine learning algorithms, this work provides fresh insights into how these modern tools can transform infrastructure monitoring, making it more efficient and responsive to evolving or newly emerging issues. Special attention is given to data processing techniques that allow the detection of damage patterns without relying on subjective human or destructive appraisal, significantly improving the accuracy and reliability of results.

By addressing both the technical and operational aspects of SHM, the book serves as an invaluable foundational reference resource to equip readers with the advanced knowledge and practical expertise needed to adopt these cutting-edge systems in their own infrastructure management workflows.

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