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$10-30 USD

Cancelled
Posted over 8 years ago

$10-30 USD

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Part I. Construct training data files (ARFF files) using the training image data for three different bin numbers (i.e., number_of_bins = 8, 64 and 512). The number of training data files should be three. Part II. Construct the five different classifier models using each training data file. The five classification methods are as follows: 1) Naïve Bayes Classifier 2) C4.5 Classifier 3) k-Nearest-Neighbor Classifiers 4) Multilayer Neural Network 5) Support Vector Classifier Part III. Construct test data files (ARFF files) using the test image data per each category for three different bin numbers. The total number of test data files should be 21 (=7*3) in this case. Part IV. Compare the prediction accuracies among five different classifiers for each category Part V. Construct test data files (ARFF files) using all test image data for three different bin numbers. The total number of test data files should be three in this case. (You can easily construct this three test data files by combining the test data files constructed in Part III) Part VI. Compare the prediction accuracies among five different classifiers for overall test data Ø You CAN compute color histograms and construct ARFF files a) Manually by using MS-Excel and/or any text editor (wordpad, textpad, etc) b) Automatically by developing your own program with any programming language such as C, C++, Java, etc. (Clean well structured C++ source code earns 5% bonus credit.) Part VII. Project Submission. § File name should be [login to view URL] including (where xxxxxx represents the your UIS UID) 1. A project report (PDF file observe CSC573 presentation standards) describing 1. A comprehensive description of each classifier. 2. Accuracy comparison for each category preformed in Part IV 3. Accuracy comparison for overall test image preformed in Part VI 4. Your conclusions based on your observations v Documentation must be well written (grammar, spelling = 10%) and well organized and presented (typesetting etc = 10%) to be understood easily. v Graphs and tables are good tools for comparative analysis (no hand drawn graphs). 2. All ARFF files with detailed comments (10% of mark) describing in details the data represented within. I.E. - Training / Test - Number of bins - Category - Etc.
Project ID: 8951702

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6 proposals
Remote project
Active 8 yrs ago

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6 freelancers are bidding on average $285 USD for this job
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$652 USD in 10 days
5.0 (95 reviews)
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I am very proficient in java. I have 14 years java developing experience. I have worked for 6 years, my work is online game developing, and mainly focus on server side, the language is java under linux, I am proficint in c++ also. I used java to make many great projects. For example, I made the tools which can convert PWScript(a script language created by our company) to c++ files. I made our own mobile games, and i am mainly responsible for the server side, and it was built using java. I can even show you the mobile game client. Please let expert help you.
$150 USD in 3 days
4.8 (54 reviews)
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I am an expert in delivering custom software and look forward to discuss further about the project details
$210 USD in 5 days
4.9 (21 reviews)
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$50 USD in 1 day
5.0 (11 reviews)
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Hello, I am a computer science engineer having machine learning as one of my majors. I have already prepared code for naive bayes classifier, k-nearest neighbour in java. I think i will be a god match for your job.
$500 USD in 10 days
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springfield, United States
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