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Achieving Data Truthfulness and Privacy Preservation in
Data Markets
ABSTRACT:
As a significant business paradigm, many online information platforms have
emerged to satisfy society’s needs for person-specific data, where a service
provider collects raw data from data contributors, and then offers value-added data
services to data consumers. However, in the data trading layer, the data consumers
face a pressing problem, i.e., how to verify whether the service provider has
truthfully collected and processed data? Furthermore, the data contributors are
usually unwilling to reveal their sensitive personal data and real identities to the
data consumers. In this paper, we propose TPDM, which efficiently integrates
Truthfulness and Privacy preservation in Data Markets. TPDM is structured
internally in an Encrypt-then-Sign fashion, using partially homomorphic
encryption and identity-based signature. It simultaneously facilitates batch
verification, data processing, and outcome verification, while maintaining identity
preservation and data confidentiality. We also instantiate TPDM with a profile
matching service and a data distribution service, and extensively evaluate their
performances on Yahoo! Music ratings dataset and 2009 RECS dataset,
respectively. Our analysis and evaluation results reveal that TPDM achieves
several desirable properties, while incurring low computation and communication
overheads when supporting large-scale data markets.
SYSTEM REQUIREMENTS:
HARDWARE REQUIREMENTS:
 System : Pentium Dual Core.
 Hard Disk : 120 GB.
 Monitor : 15’’ LED
 Input Devices : Keyboard, Mouse
 Ram : 1 GB
SOFTWARE REQUIREMENTS:
 Operating system : Windows 7.
 Coding Language : Python
 Database : MYSQL
REFERENCE:
Chaoyue Niu, Student Member, IEEE, Zhenzhe Zheng, Student Member, IEEE,
Fan Wu, Member, IEEE, Xiaofeng Gao, Member, IEEE, and Guihai Chen, Senior
Member, IEEE, “Achieving Data Truthfulness and Privacy Preservation in Data
Markets”, IEEE Transactions on Knowledge and Data Engineering, 2019.

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Achieving Data Truthfulness and Privacy Preservation in Data Markets

  • 1. Achieving Data Truthfulness and Privacy Preservation in Data Markets ABSTRACT: As a significant business paradigm, many online information platforms have emerged to satisfy society’s needs for person-specific data, where a service provider collects raw data from data contributors, and then offers value-added data services to data consumers. However, in the data trading layer, the data consumers face a pressing problem, i.e., how to verify whether the service provider has truthfully collected and processed data? Furthermore, the data contributors are usually unwilling to reveal their sensitive personal data and real identities to the data consumers. In this paper, we propose TPDM, which efficiently integrates Truthfulness and Privacy preservation in Data Markets. TPDM is structured internally in an Encrypt-then-Sign fashion, using partially homomorphic encryption and identity-based signature. It simultaneously facilitates batch verification, data processing, and outcome verification, while maintaining identity preservation and data confidentiality. We also instantiate TPDM with a profile matching service and a data distribution service, and extensively evaluate their performances on Yahoo! Music ratings dataset and 2009 RECS dataset, respectively. Our analysis and evaluation results reveal that TPDM achieves several desirable properties, while incurring low computation and communication overheads when supporting large-scale data markets. SYSTEM REQUIREMENTS: HARDWARE REQUIREMENTS:
  • 2.  System : Pentium Dual Core.  Hard Disk : 120 GB.  Monitor : 15’’ LED  Input Devices : Keyboard, Mouse  Ram : 1 GB SOFTWARE REQUIREMENTS:  Operating system : Windows 7.  Coding Language : Python  Database : MYSQL REFERENCE: Chaoyue Niu, Student Member, IEEE, Zhenzhe Zheng, Student Member, IEEE, Fan Wu, Member, IEEE, Xiaofeng Gao, Member, IEEE, and Guihai Chen, Senior Member, IEEE, “Achieving Data Truthfulness and Privacy Preservation in Data Markets”, IEEE Transactions on Knowledge and Data Engineering, 2019.