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Diversifying Web Service Recommendation Results via Exploring Service Usage History
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Diversifying Web Service Recommendation Results via Exploring Service Usage History

Category : Data Mining


Sub Category : DOTNET


Project Code : ITDDM12


Project Abstract

 

DIVERSIFYING WEB SERVIC RECOMMENDATION RESULTS VIA EXPLORING SERVICES USAGE HISTRY

 

ABSTRACT

            In this paper we study about Diversifying Web Service Recommendation Results via Exploring Services Usage History . The last decade has witnessed a great growth of Web services as a major technology for sharing data, computing resources, and programs on the Web. With the increasing acceptance and attendance of Web services, design of novel approaches for effective Web service recommendation to satisfy users’ potential requirements has become of paramount importance. Existing Web service recommendation approaches mainly focus on predicting missing QoS values of Web service candidates which are interesting to a user using collaborative filtering approach, content-based approach, or their hybrid. These recommendation approaches assume that recommended Web services are independent to each other, which sometimes may not be true. As a result, many similar or redundant Web services may exist in a recommendation list. In this paper, we propose a novel Web service recommendation approach incorporating a user’s potential QoS preferences and diversity feature of user interests on Web services. User’s interests and QoS preferences on Web services are first mined by exploring the Web service usage history. Then we compute scores of Web service candidates by measuring their relevance with historical and potential user interests, and their QoS utility. We also construct a Web service graph based on the functional similarity between Web services. Finally, we present an innovative diversity-aware Web service ranking algorithm to rank the Web service candidates based on their scores, and diversity degrees derived from the Web service graph. Extensive experiments are conducted based on a real world Web service dataset, indicating that our proposed Web service recommendation approach significantly improves the quality of the recommendation results compared with existing methods.

 

 

 

EXISTING SYSTEM

PROPOSED SYSTEM

EXISTING CONCEPT:-

In the existing system web service recommendation approaches mainly focus on predicting missing QoS values of Web service candidates which are interesting to a user using collaborative filtering approach, content-based approach, or their hybrid.

 

PROPOSED CONCEPT:-

In this paper, we propose a novel Web service recommendation approach incorporating a user’s potential QoS preferences and diversity feature of user interests on Web services. User’s interests and QoS preferences on Web services are first mined by exploring the Web service usage history.

EXISTING ALGORITHM:-

Collaborative filtering algorithm

 

PROPOSED ALGORITHM:-

Diversity-based Ranking algorithms

ALGORITHM DEFNITION:-

 

Existing collaborative filtering algorithms can be divided into two categories: memory-based and model-based. Memory based methods are more popular in service recommendation, partially because they are more intuitive to interpret the recommendation results. Memory-based collaborative filtering can be further divided into user-based approaches and item-based approaches

 

ALGORITHM DEFNITION:-

 

There are two popular techniques. The first one is based on a greedy ver-tex selection procedure, and the second one is based on a so-called vertex reinforced random walk. In particular, the greedy vertex selection procedure chooses a vertex with maximum random walk based ranking score at one time, and then removes the selected vertex from the graph. To get the top-k ranking list, this process will repeat K times.

DRAWBACKS:-

Many similar or redundant Web services may exist in a recommendation list.

 

ADVANTAGES:-

Rank the Web service candidates based on their scores.

 

 

 
 
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