Machine Learning Applications in Industrial Solid Ash: Woodhead Publishing Series in Civil and Structural Engineering
Autor Chongchong Qi, Qiusong Chen, Erol Yilmazen Limba Engleză Paperback – dec 2023
Offering the ability to process large or complex datasets, machine learning (ML) holds huge potential to reshape the whole status for solid ash management and recycling. This book is the first published book about ML in solid ash management and recycling. It highlights fundamental knowledge and recent advances in this topic, offering readers new insight into how these tools can be utilized to enhance their own work.
- Helps readers increase their existing knowledge on data mining and ML
- Teaches how to apply ML techniques that work best in solid ash management and recycling through providing illustrative examples and complex practice solutions
- Provides an accessible introduction to the current state and future possibilities for ML in solid ash management and recycling
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Specificații
ISBN-13: 9780443155246
ISBN-10: 0443155240
Pagini: 314
Dimensiuni: 152 x 229 mm
Greutate: 0.42 kg
Editura: ELSEVIER SCIENCE
Seria Woodhead Publishing Series in Civil and Structural Engineering
ISBN-10: 0443155240
Pagini: 314
Dimensiuni: 152 x 229 mm
Greutate: 0.42 kg
Editura: ELSEVIER SCIENCE
Seria Woodhead Publishing Series in Civil and Structural Engineering
Cuprins
Part I : Industrial Solid Ashes
1. Background of industrial soild ashes
2. Current strategies for solid ash management and recycling
Part II: Machine Learning Modelling
3. Historical background of ML
4. Introduction to ML techniques
5. ML modelling methodology
Part III : Application of ML in solid ash management and recycling
6. Physiochemical properties of solid ash and clustering analysis
7. Accurate estimation of the solid ash generation
8. Evaluation of the trace elements pollution of coal fly ash using ML techniques
9. Metal recovery prediction using random forest
10. Rapid identification of amourphous phases in solid ash
11. Reactivity classification of solid ash using ML techniques
12. Forecast of uniaxial compressive strength of solid ash-based concrete
Part IV : Future perspectives and challenges to adopting ML in solid ash management and recycling
13. Future perspective and opportunities in ML for solid ash management and recycling
14. Challenges to adopting ML in solid ash management and recycling
1. Background of industrial soild ashes
2. Current strategies for solid ash management and recycling
Part II: Machine Learning Modelling
3. Historical background of ML
4. Introduction to ML techniques
5. ML modelling methodology
Part III : Application of ML in solid ash management and recycling
6. Physiochemical properties of solid ash and clustering analysis
7. Accurate estimation of the solid ash generation
8. Evaluation of the trace elements pollution of coal fly ash using ML techniques
9. Metal recovery prediction using random forest
10. Rapid identification of amourphous phases in solid ash
11. Reactivity classification of solid ash using ML techniques
12. Forecast of uniaxial compressive strength of solid ash-based concrete
Part IV : Future perspectives and challenges to adopting ML in solid ash management and recycling
13. Future perspective and opportunities in ML for solid ash management and recycling
14. Challenges to adopting ML in solid ash management and recycling