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Chala, Sisay Adugna: Bidirectional job matching through unsupervised feature learning. 2017
Inhalt
Acknowledgements
Abstract
Zusammenfassung
Contents
List of Figures
List of Tables
List of Acronyms
1 Introduction and Background
1.1 Background
1.2 Problem Statement
1.3 Research Question
1.4 Research Goals and Objectives
1.5 Significance and Contributions of the Research
1.6 Methods and Procedures
1.7 Structure of the Dissertation
2 Review of Related Works
2.1 Occupational Information Systems
2.2 Dynamic Interfaces for Job Seeker Data Collection
2.3 Social Network Analysis for Job Seeker Modeling
2.4 Online Vacancy Mining and Modeling
2.5 Job Seeker and Vacancy Matching
2.6 Online Job Matching Systems
3 Theoretical and Conceptual Foundation
3.1 Job Matching
3.2 Enriching Vacancies with Occupational Standards
3.3 Knowledge Based Methods in Job Matching
3.4 Machine Learning and Natural Language Processing
3.5 Deep Learning with Convolutional Neural Networks (CNN)
3.6 NLP for Data-intensive Job Matching
3.7 Conception of Bidirectional Job Matching
4 Job Seeker Analysis and Modeling
4.1 Job Seeker Data Collection and Integration
4.1.1 Data Source
4.1.2 Job Seeker Data Collection
4.1.3 Preprocessing and Integration
4.2 Job Seeker Analysis and Modeling
4.3 DTF for Self-assessment Survey
4.4 Job Seeker Analysis with Social Network
4.5 Measuring Job Seeker Skill
5 Job Vacancy Analysis and Modeling
5.1 Vacancy Data Collection and Integration
5.1.1 Data Source
5.1.2 Vacancy Data Collection
5.1.3 Data Preprocessing and Integration
5.2 Vacancy Analysis and Modeling
5.2.1 Enriching Vacancies using Occupational Standards
5.2.2 Extracting Essential Features from Vacancies
5.2.3 Representing Vacancies
6 Matching Job Vacancies to Job Seekers
6.1 Bidirectional Matching of Job Seeker to Vacancy
6.2 Estimating Similarity between Job Seeker and Vacancies
6.3 Recommendation Processes
7 Experimental Result and Evaluation
7.1 Results and Discussion
7.1.1 DTF-enabled Context-aware User Interface
7.1.2 Bidirectional Candidate to Vacancy Matching
7.1.3 Inclusion of Social Networking Data
7.2 Contributions
8 Conclusion and Future Works
8.1 Conclusion
8.2 Implications
8.3 Assumptions and Limitations
8.4 Future Research
Bibliography