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CONTACT: PRAVEEN KUMAR. L (, +91 – 9791938249)
MAIL ID: sunsid1989@gmail.com, praveen@nexgenproject.com
Web: www.nexgenproject.com, www.finalyear-ieeeprojects.com
A COMPREHENSIVE STUDY ON WILLINGNESS MAXIMIZATION FOR SOCIAL
ACTIVITY PLANNING WITH QUALITY GUARANTEE
ABSTRACT
Studies show that a person is willing to join a social group activity if the activity
is interesting, and if some close friends also join the activity as companions.
The literature has demonstrated that the interests of a person and the social
tightness among friends can be effectively derived and mined from social
networking websites. However, even with the above two kinds of information
widely available, social group activities still need to be coordinated manually,
and the process is tedious and time-consuming for users, especially for a large
social group activity, due to complications of social connectivity and the
diversity of possible interests among friends. To address the above important
need, this paper proposes to automatically select and recommend potential
attendees of a social group activity, which could be very useful for social
networking websites as a value-added service. We first formulate a new
problem, named Willingness mAximization for Social grOup (WASO). This
paper points out that the solution obtained by a greedy algorithm is likely to be
trapped in a local optimal solution. Thus, we design a new randomized
algorithm to effectively and efficiently solve the problem. Given the available
computational budgets, the proposed algorithm is able to optimally allocate
the resources and find a solution with an approximation ratio. We implement
CONTACT: PRAVEEN KUMAR. L (, +91 – 9791938249)
MAIL ID: sunsid1989@gmail.com, praveen@nexgenproject.com
Web: www.nexgenproject.com, www.finalyear-ieeeprojects.com
the proposed algorithm in Facebook, and the user study demonstrates that
social groups obtained by the proposed algorithm significantly outperform the
solutions manually configured by users
CONCLUSION
To the best of our knowledge, there is no real system or existing work in the
literature that addresses the issues of automatic activity planning based on
topic interest and social tightness. To fill this research gap and satisfy an
important practical need, this paper formulated a new optimization problem
called WASO to derive a set of attendees and maximize the willingness. We
proved that WASO is NP-hard and devised two simple but effective
randomized algorithms, namely CBAS and CBAS-ND, with an approximation
ratio. The user study demonstrated that the social group obtained through the
proposed algorithm implemented in Facebook significantly outperforms the
manually configured solutions by users. This research result thus holds much
promise to be profitably adopted in social networking websites as a value-
added service. The user study resulted in practical directions to enrich WASO
for future research. Some users suggested that we integrate the proposed
willingness optimization system with automatic available time extraction to
filter unavailable users, such as by integrating the proposed system with
Google Calendar. Since candidate attendees are associated with multiple
attributes in Facebook, e.g., location and gender, these attributes can be
specified as input parameters to further filter out unsuitable candidate
attendees. Last but not the least, some users pointed out that our work could
CONTACT: PRAVEEN KUMAR. L (, +91 – 9791938249)
MAIL ID: sunsid1989@gmail.com, praveen@nexgenproject.com
Web: www.nexgenproject.com, www.finalyear-ieeeprojects.com
be extended to allow users to specify some attendees that must be included in
a certain group activity.
REFERENCES
[1] U. Brandes, D. Delling, M. Gaertler, R. Goerke, M. Hoefer, Z. Nikoloski, and
D. Wagner, “On modularity clustering,” IEEE Trans. Knowl. Data Eng., vol. 20,
no. 2, pp. 172–188, Feb. 2008.
[2] W. Bryc, “A uniform approximation to the right normal tail integral,” Appl.
Math. Comput., vol. 127, nos. 2/3, pp. 365–374, 2002.
[3] V. Chaoji, S. Ranu, R. Rastogi, and R. Bhatt, “Recommendations to boost
content spread in social networks,” in Proc. Int. Conf. World Wide Web, 2012,
pp. 529–538.
[4] C. H. Chen, E. Yucesan, L. Dai, and H. C. Chen, “Efficient computation of
optimal budget allocation for discrete event simulation experiment,” IIE Trans.,
vol. 42, no. 1, pp. 60–70, 2010.
[5] A. Clauset, C. R. Shalizi, and M. E. J.Newman, “Power-lawdistributions in
empirical data,” SIAMRev., vol. 51, no. 4, pp. 661–703, 2009.
[6] A. Costa, J. Owen, and D. P. Kroese, “Convergence properties of the cross-
entropy method for discrete optimization,” Oper. Res. Lett., vol. 35, no. 5, pp.
573–580, 2007.
CONTACT: PRAVEEN KUMAR. L (, +91 – 9791938249)
MAIL ID: sunsid1989@gmail.com, praveen@nexgenproject.com
Web: www.nexgenproject.com, www.finalyear-ieeeprojects.com
[7] L. Dai, C. H. Chen, and J. R. Birge, “Large convergence properties of two-
stage stochastic programming,” J. Optim. Theory Appl., vol. 106, no. 3, pp.
489–510, 2000.
[8] M. Deutsch and H. B. Gerard, “A study of normative and informational
social influences upon individual judgment,” J. Abnormal Soc. Psychol., vol. 51,
no. 3, pp. 291–301, 1955.
[9] U. Feige, D. Peleg, and G. Kortsarz, “The dense k-subgraph problem,”
Algorithmica, vol. 29, no. 3, pp. 410–421, 2001.
[10] A. Gajewar and A. D. Sarma, “Multi-skill collaborative teams based on
densest subgraphs,” in Proc. SIAM Int. Conf. Data Mining, 2012, pp. 165–176.

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A COMPREHENSIVE STUDY ON WILLINGNESS MAXIMIZATION FOR SOCIAL ACTIVITY PLANNING WITH QUALITY GUARANTEE

  • 1. CONTACT: PRAVEEN KUMAR. L (, +91 – 9791938249) MAIL ID: sunsid1989@gmail.com, praveen@nexgenproject.com Web: www.nexgenproject.com, www.finalyear-ieeeprojects.com A COMPREHENSIVE STUDY ON WILLINGNESS MAXIMIZATION FOR SOCIAL ACTIVITY PLANNING WITH QUALITY GUARANTEE ABSTRACT Studies show that a person is willing to join a social group activity if the activity is interesting, and if some close friends also join the activity as companions. The literature has demonstrated that the interests of a person and the social tightness among friends can be effectively derived and mined from social networking websites. However, even with the above two kinds of information widely available, social group activities still need to be coordinated manually, and the process is tedious and time-consuming for users, especially for a large social group activity, due to complications of social connectivity and the diversity of possible interests among friends. To address the above important need, this paper proposes to automatically select and recommend potential attendees of a social group activity, which could be very useful for social networking websites as a value-added service. We first formulate a new problem, named Willingness mAximization for Social grOup (WASO). This paper points out that the solution obtained by a greedy algorithm is likely to be trapped in a local optimal solution. Thus, we design a new randomized algorithm to effectively and efficiently solve the problem. Given the available computational budgets, the proposed algorithm is able to optimally allocate the resources and find a solution with an approximation ratio. We implement
  • 2. CONTACT: PRAVEEN KUMAR. L (, +91 – 9791938249) MAIL ID: sunsid1989@gmail.com, praveen@nexgenproject.com Web: www.nexgenproject.com, www.finalyear-ieeeprojects.com the proposed algorithm in Facebook, and the user study demonstrates that social groups obtained by the proposed algorithm significantly outperform the solutions manually configured by users CONCLUSION To the best of our knowledge, there is no real system or existing work in the literature that addresses the issues of automatic activity planning based on topic interest and social tightness. To fill this research gap and satisfy an important practical need, this paper formulated a new optimization problem called WASO to derive a set of attendees and maximize the willingness. We proved that WASO is NP-hard and devised two simple but effective randomized algorithms, namely CBAS and CBAS-ND, with an approximation ratio. The user study demonstrated that the social group obtained through the proposed algorithm implemented in Facebook significantly outperforms the manually configured solutions by users. This research result thus holds much promise to be profitably adopted in social networking websites as a value- added service. The user study resulted in practical directions to enrich WASO for future research. Some users suggested that we integrate the proposed willingness optimization system with automatic available time extraction to filter unavailable users, such as by integrating the proposed system with Google Calendar. Since candidate attendees are associated with multiple attributes in Facebook, e.g., location and gender, these attributes can be specified as input parameters to further filter out unsuitable candidate attendees. Last but not the least, some users pointed out that our work could
  • 3. CONTACT: PRAVEEN KUMAR. L (, +91 – 9791938249) MAIL ID: sunsid1989@gmail.com, praveen@nexgenproject.com Web: www.nexgenproject.com, www.finalyear-ieeeprojects.com be extended to allow users to specify some attendees that must be included in a certain group activity. REFERENCES [1] U. Brandes, D. Delling, M. Gaertler, R. Goerke, M. Hoefer, Z. Nikoloski, and D. Wagner, “On modularity clustering,” IEEE Trans. Knowl. Data Eng., vol. 20, no. 2, pp. 172–188, Feb. 2008. [2] W. Bryc, “A uniform approximation to the right normal tail integral,” Appl. Math. Comput., vol. 127, nos. 2/3, pp. 365–374, 2002. [3] V. Chaoji, S. Ranu, R. Rastogi, and R. Bhatt, “Recommendations to boost content spread in social networks,” in Proc. Int. Conf. World Wide Web, 2012, pp. 529–538. [4] C. H. Chen, E. Yucesan, L. Dai, and H. C. Chen, “Efficient computation of optimal budget allocation for discrete event simulation experiment,” IIE Trans., vol. 42, no. 1, pp. 60–70, 2010. [5] A. Clauset, C. R. Shalizi, and M. E. J.Newman, “Power-lawdistributions in empirical data,” SIAMRev., vol. 51, no. 4, pp. 661–703, 2009. [6] A. Costa, J. Owen, and D. P. Kroese, “Convergence properties of the cross- entropy method for discrete optimization,” Oper. Res. Lett., vol. 35, no. 5, pp. 573–580, 2007.
  • 4. CONTACT: PRAVEEN KUMAR. L (, +91 – 9791938249) MAIL ID: sunsid1989@gmail.com, praveen@nexgenproject.com Web: www.nexgenproject.com, www.finalyear-ieeeprojects.com [7] L. Dai, C. H. Chen, and J. R. Birge, “Large convergence properties of two- stage stochastic programming,” J. Optim. Theory Appl., vol. 106, no. 3, pp. 489–510, 2000. [8] M. Deutsch and H. B. Gerard, “A study of normative and informational social influences upon individual judgment,” J. Abnormal Soc. Psychol., vol. 51, no. 3, pp. 291–301, 1955. [9] U. Feige, D. Peleg, and G. Kortsarz, “The dense k-subgraph problem,” Algorithmica, vol. 29, no. 3, pp. 410–421, 2001. [10] A. Gajewar and A. D. Sarma, “Multi-skill collaborative teams based on densest subgraphs,” in Proc. SIAM Int. Conf. Data Mining, 2012, pp. 165–176.