Category | Assignment | Subject | Education |
---|---|---|---|
University | London's Global University | Module Title | Unit 26 Machine Learning |
LO1 Analyse the theoretical foundation of machine learning to determine how an intelligent machine works
LO2 Investigate the most popular and efficient machine learning algorithms used in industry
L03 Develop a machine learning application using an appropriate programming language or machine learning tool for solving a real-world problem
L04 Evaluate the outcome or the result of the application to determine the effectiveness of the learning algorithm used in the application
Are You Looking for Answer of Unit 26 Assignment 1
Order Non Plagiarized AssignmentYou are a Machine Learning Researcher at AgriTech Innovations, a company dedicated to advancing agricultural technology. Your latest project involves working with FreshFarms, a large-scale fruit farming cooperative, to develop a machine learning system for early detection and diagnosis of fruit diseases.
Background:
FreshFarms grows a variety of fruits, including apples, oranges, grapes, and strawberries.
Disease outbreaks in their orchards and vineyards can lead to significant crop losses and affect fruit quality. By implementing a machine learning-based solution, FreshFarms aims to detect diseases early, reduce the use of pesticides, and improve overall yield and fruit quality.
Present the report to FreshFarms stakeholders, highlighting key insights and recommendations for future work.
Your report needs detail various machine learning techniques that can be potentially used to improve your clients services. You will need to explore the various generic requirements of such a company, and different ways that machine learning techniques can be used.
Essentially, you need to understand how machine learning can be used in general, along with how it can be used as a supplementary technology to assist in an IT products function. Research and consider standard operating usecases. After detailing the expected usecases of such a company, propose different machine learning algorithms that can be used to manage the company’s operations by directly discussing their part in the expected usecases. You may also detail different techniques to optimize the aforementioned algorithms.
Investigate the different algorithms, compare them, and though working examples, demonstrate their efficacy. Prove the effectiveness of using machine learning to develop smart solutions.
You need to develop a machine learning solution for a kaggle dataset. First, visit kaggle datasets, and download a dataset of your choice. The site should provide various important details regarding your chosen dataset, such as the problem being solved, the recommended suggestions, and what to expect from the dataset.
After downloading the dataset, you need to decide what algorithm to use to solve the problem defined. After coming to a decision, begin coding your solution using python as a programming language. You may use built-in libraries, or third-party opensource libraries.
You need to code your way to first access the data, read and pre-process it, and finally ready it for computation.
The machine learning algorithm you have chosen needs to be implemented, and fed the readied data. Now you need to train your model, and generate results.
Test your results to see if they are accurate and precise, and within the required margin of error. If not, then optimize your model, and retrain. Continue till your computed results are inline with expected results.
Finally, create a manual to explain the various aspects of the code and the results produced, including insights into your decision making process during the development phase. Include screenshots to showcase the running example of your model. In the manual, you need to show to what degree your implemented solution can solve the problem defined, and suggest potential improvements for future development. Discuss issues that you faced. Evaluate the effectiveness of your implementation and the
results it has produced, and use said evaluation to conclude the efficacy of the implemented techniques.
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