design‚ research subjects‚ research instruments‚ preparation and construction of the questionnaires‚ reliability and validity of the research instrument‚ data gathering procedure and the statistical treatment data. Research Design A research design is the framework for a study which provides useful deadlines for collecting and analyzing data. Research design can be thought of as the logic or master plan of a research that throws light on how the study is to be conducted. It shows how all of the
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Data Ware House Normalization it’s a process of splitting data into 2 or more entities to reduce data redundancy. Normal Forms: 1. A database table must contain no repeating groups 2. All non-key attributes of a table must rely on the entire key of the table. 3. All non-key fields must depend solely on the table’s primary key. First Business Normal Form: removes repeating groups to another entity. This entity takes its name and primary (compound) key attributes‚ from the original entity and forms
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Department of Computer Science Database and Data Mining‚ COS 514 Dr. Chi Shen Homework No. 8‚ Chapter 13‚ Aklilu Shiketa Q13. 3 Cosmetic Purchases Consider the following Data on Cosmetics Purchases in Binary Matrix Form a) Select several values in the matrix and explain their meaning. Value Cell Meaning 0 For example‚ Row 1‚ Column2 At transaction #1 bag was not purchased. (shows absence of Bag in the transaction) 1 Row 10‚ column (2 and 3) “If a Bag is purchased‚ a Blush is also purchased
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and Result Interpretation 4.4.2.1 Effectiveness Criteria Results 1. Visual Promethee-based Effectiveness Analysis Visual Promethee main window is displayed that uses a typical spreadsheet to manage the data of effectiveness multi-criteria problem (Figure 4.7). The main window contain all the data have related to the PROMETHEE method (preference function‚ statistics and evaluation‚ weights…)‚ this information can be easily input and defined by the decision maker.in addition to that Visual PROMETEE
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questionable. Some items were biased. A few questions were worded awkwardly‚ likely affecting the response. Some of the information needed was not asked‚ further reducing the value of the effort. Additionally‚ the data entry typist and general office support person made a number of errors when keying the data into the spreadsheet‚ compounding the poor results. In hindsight‚ Debbie suggested that she should have pretested the sample instrument before issuing it to the workforce. Such a step would have likely
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R and Data Mining: Examples and Case Studies 1 Yanchang Zhao yanchang@rdatamining.com http://www.RDataMining.com April 26‚ 2013 1 ➞2012-2013 Yanchang Zhao. Published by Elsevier in December 2012. All rights reserved. Messages from the Author Case studies: The case studies are not included in this oneline version. They are reserved exclusively for a book version. Latest version: The latest online version is available at http://www.rdatamining.com. See the website also for an R Reference Card
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SPECIAL REPORT Big Data AnalyticsDeep Dive Deriving Meaning From the Data Explosion © Copyright InfoWorld Media Group. All rights reserved. Sponsored by i Big Data AnalyticsDeep Dive Making sense of big data New analysis tools and abundant processing power unlock critical insights from unfathomable volumes of corporate and external data i By David S. Linthicum THE ABILITY TO DERIVE MEANING quickly from huge quantities of structured and unstructured data has been an objective
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multidimensional set of data. Henceforth‚ by applying Data Mining (DM) algorithms for Business Intelligence‚ it is possible to automate the analysis process‚ thus comes the ability to extract patterns and other important information from the data set. Understanding the reason why Data Mining is needed in Business Intelligence and also the process‚ applications and different tasks that Data Mining provides for Business Intelligence purposes is the main subject area in this essay. Data mining process is
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Overview: Chapter 2 Data Mining for Business Intelligence Shmueli‚ Patel & Bruce Core Ideas in Data Mining Classification Prediction Association Rules Data Reduction Data Visualization and exploration Two types of methods: Supervised and Unsupervised learning Supervised Learning Goal: Predict a single “target” or “outcome” variable Training data from which the algorithm “learns” – value of the outcome of interest is known Apply to test data where value is not known and will be predicted
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Turning Big Data Into Useful Information a Storage eBook Contents… Turning Big Data Into Useful Information This content was originally published on the CIO Update‚ IT Business Edge and Enterprise Apps Today websites. Contributors: Paul Barth‚ Seth Earley‚ Loraine Larson and Susan Hall. 2 The 4 Principles of a Successful Data Strategy 6 Transforming Information Into Knowledge 9 Building a Better Ball Team With Big Data: Lessons for Executives 11 Big Data‚ Big Opportunities for
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