Journal of Computer Technology & Applications (JoCTA) ISSN: 2347 - 7229
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Jan-April 2014
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STM JOURNALS
I take the privilege to present the hard copy compilation for the [Volume 5 Issue (1)] Journal of Computer Technology & Applications (JoCTA). The intension of JoCTA is to create an atmosphere that stimulates creativeness, research and growth in the area of Computer Technology & Applications. The development and growth of the mankind is the consequence of brilliant Research done by eminent Scientists and Engineers in every field. JoCTA provides an outlet for Research findings and reviews in areas of Journal of Computer Technology & Applications found to be relevant for National and International recent developments & research initiative. The aim and scope of the Journal is to provide an academic medium and an important reference for the advancement and dissemination of Research results that support high level learning, teaching and research in the domain of Computer Science and Technology. Finally, I express my sincere gratitude and thanks to our Editorial/ Reviewer board and Authors for their continued support and invaluable contributions and suggestions in the form of authoring writeups/ reviewing and providing constructive comments for the advancement of the journals. With regards to their due continuous support and co-operation, we have been able to publish quality Research/Review findings for our customers base. I hope you will enjoy reading this issue and we welcome your feedback on any aspect of the Journal.
Dr. Archana Mehrotra Director STM Journals
Journal of Computer Technology & Applications
Contents
1. A Case based Practical Approach for Novel Data Transformation to Enhance Accuracy of Decision Tree Ensembles Sandeep K. Budhani, Govind Singh
1
2. Artificial Neural Network Model for Stock Market Forecasting Neelima Budhani, C. K. Jha, Sandeep K. Budhani
7
3. End-to-End Data Security for Multi-Tenant Cloud Environment Tushar Bhardwaj
13
4. Study on Network Load on Various Mobile Ad Hoc Network Protocols Under the Random Walk Mobility and Random Way Point Model Sitaram Gupta, Vijay Kumar
21
5. Supporting Search as you Type using Incremental Computation and Neighborhood Technique M. Karthiga, A. Anny Leema
26
6. Survey of Data Cleaning and Image Recognition using Neural Networks Raju Dara, Ch. Satyanarayana, A. Govardhan
30
Journal of Computer Technology & Applications ISSN: 2347-7229 Volume 5, Issue 1 www.stmjournals.com
A Case based Practical Approach for Novel Data Transformation to Enhance Accuracy of Decision Tree Ensembles Sandeep K. Budhani1*, Govind Singh2 1
Department of Computer Science & Engineering, Graphic Era Hill University, Bhimtal Campus, India 2 M.Tech (CSE), Graphic Era Hill University, Bhimtal, Uttarakhand, India
Abstract If we talk about any real world situation then we can see that all the situations dramatically changes as the time passes. If we say this statement in some technical form, concepts changes gradually. This situation is called as Concept Drift that is the core of any approach. Until we cannot get the accurate output for a given input parameter, the concepts will concurrently change. To overcome this situation we use a programmable approach that is Classifier Ensembles in which we combine several outputs and form a single output from several. Other thing we get about is Decision Tree that is a very popular ensemble method because Decision Trees are unstable classifiers whose output undergoes significant changes. Data transformation is a process by which the problem representation is changed and we have to manipulate the problems by using some useful techniques. This paper firstly focuses on the popular ensembles methods, the overview of decision tree and uses the concept of classifier ensemble with respect to decision trees. There are mainly two problems associated with data transformation and we have different approaches to resolve these problems. In this paper we consider a single novel transformation method to resolve these problems.
Keywords: Ensemble, decision trees, data, transformation method
JoCTA(2014) Š STM Journals 2014. All Rights Reserved
Journal of Computer Technology & Applications ISSN: 2347-7229 Volume 5, Issue 1 www.stmjournals.com
Artificial Neural Network Model for Stock Market Forecasting Neelima Budhani1*, C. K. Jha2, Sandeep K. Budhani3 1
Amrapali Institute, Haldwani (Nainital), Uttarakhand, India 2 Banasthali Vidyapeeth, Banasthali, Rajasthan, India 3 Graphic Era Hill University, Bhimtal Campus, Bhimtal (Nainital), Uttarakhand, India
Abstract In recent years, many attempts have been made to predict the behavior of bonds, currencies, stocks or stock markets. Neural networks, as an intelligent data mining method, have been used in many different challenging pattern recognition problems such as stock market prediction. The aim of this paper is to predict stock market using artificial neural networks (ANNs). The authors used feed forward neural network trained by back-propagation algorithm to make prediction. The result from analysis shows that ANNs offer the ability to predict the stock prices more accurately than other existing techniques.
Keywords: Artificial neural network, back-propagation, forecasting, stock market
JoCTA (2014) Š STM Journals 2014. All Rights Reserved
Journal of Computer Technology & Applications ISSN: 2347-7229 Volume 5, Issue 1 www.stmjournals.com
End-to-End Data Security for Multi-Tenant Cloud Environment Tushar Bhardwaj* Master of Technology, Uttar Pradesh Technical University, India Abstract This paper details the construction of a functional model that ensures data kept encrypted; while being processed in a multi-tenanted cloud environment. This can be done using homomorphic encryption only though the approach lacks in ability to search large databases. In a multi-tenant cloud environment, data is stored on several distinct data centers. As the request is encrypted, the server can't come up with exact match, so it would probably return information of all its matching records. This research work uses a functional gloved-box model that ensures an effective end-to-end cloud data security. The outcome is that a database in the cloud be able to handle a request and return a response without decrypting the query and data. To make things happen this way, data is first-most encrypted by using Homomorphic encryption(public-key), than decrypted using Garbledcircuit(private key), and at last the private key of garbled-circuit is being made safe by encrypting it again by Attribute-based Encryption.
Keywords: Multi-tenant cloud security, homomorphic, garbled-circuit, attributebased encryption.
JoCTA(2014) Š STM Journals 2014. All Rights Reserved
Journal of Computer Technology & Applications ISSN: 2347-7229 Volume 5, Issue 1 www.stmjournals.com
Study on Network Load on Various Mobile Ad Hoc Network Protocols Under the Random Walk Mobility and Random Way Point Model Sitaram Gupta*, Vijay Kumar Department of Computer Science and Engineering Kautilya Institute of Technology and Engineering, Jaipur Abstract Mobile ad hoc Network consists of mobile networks which create an underlying architecture for communication without the help of traditional fixed-position routers. MANET is group of mobile nodes which uses multi hop transmission for communication. Routing in MANET is challenging task, moreover presence of malicious nodes make the overall network very insecure furthermore dynamic nature of moving nodes adds to the complexity Mobility of the nodes has substantial influence on the network performance. In this Paper, we study the impact of Random Walk and Random Way Point model. We focus on performance comparison of Proactive routing protocol by focusing on Optimized Link State Routing (OLSR) and Reactive Routing Protocol by focusing on Ad Hoc on Demand Distance Vector (AODV) and Temporally Ordered Routing Algorithm (TORA). The present paper reports a performance analysis of network load on three Mobile Ad Hoc Network (MANET) routing protocols under the two mobility models i.e. Random Walk Mobility Model and Random Way Point.
Keywords: MANET, AODV, OLSR, TORA, OPNET 14.5, random walk mobility model, random way point mobility model
JoCTA (2014) Š STM Journals 2014. All Rights Reserved
Journal of Computer Technology & Applications ISSN: 2347-7229 Volume 5, Issue 1 www.stmjournals.com
Supporting Search as You Type using Incremental Computation and Neighborhood Technique M. Karthiga*, A. Anny Leema Master of Computer Applications, B S Abdur Rahman University, Chennai, India Abstract The objective of the project is to develop the application Search-as -you-type system, used to show the results based on user query. If user enter any misspelled queries in search engine, automatically it corrects the misspelled query in search box. In the proposed system, concentrate on high performance to attain a speed of searching and showing the results very quickly and corrects the incorrect word. The performance of search is accomplished by the auxiliary indexes in tables. This helps to improve performance and reduce the manual work.
Keywords: search as-you-type , database , SQL , fuzzy search
JoCTA(2014) Š STM Journals 2014. All Rights Reserved
Journal of Computer Technology & Applications ISSN: 2347-7229 Volume 5, Issue 1 www.stmjournals.com
Survey of Data Cleaning and Image Recognition using Neural Networks Raju Dara*, Ch. Satyanarayana, A. Govardhan Jawaharlal Nehru Technological University, Hyderabad, Andhra Pradesh, India
Abstract This paper reviews the existing developments of data cleaning and image recognition using neural networks. At present most of the work in image recognition is done by using more than one method. Neural networks take the advantage and show good improvement in recognition of images. In this work, the authors have discussed their advantages over traditional methods.
Keywords: Data cleaning, image recognition, data transformation, artificial neural network
JoCTA (2014)Š STM Journals 2014. All Rights Reserved