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  • Scholarship Essays: 2

    I need you to write two essays for a scholarship application. I already wrote two with the help of AI but they do not sound that great and AI cannot be detected as they use a program. I need you to rewrite the essays without AI and make them sound better.

    Attached Files (PDF/DOCX): NRG Summer.docx, Win Together Essay.docx

    Note: Content extraction from these files is restricted, please review them manually.

  • Distributed Leadership; Transformational Leadership; Instruc…

    Doctoral Candidates will complete Exercise 8.1: Reflection on Distributed Leadership (1-3) and Exercise 8.2 Transformational, Instructional, and Distributed Leadership (1-3)
  • machine learning supervised classification/ regression

    Summary: In this assignment the students will implement a machine learning experiment from scratch starting from a problem statement and a dataset. This assignment is an individual one and each student will be given a different problem statement and dataset. You will choose your dataset out of your area of interest from UAE official platform that host thousands of datasets across many domains (education, economy, health, environment, and more). The dataset should be in CSV format, contain clearly defined lables, include at least five features, and have one target variable. You can discuss and confirm the dataset with your instructor.

    The student will submit:

    • **Primary Source: **A PDF report should be submitted containing non-technical details and discussion of the project. The report must follow the section structure provided below and exclude technical code, which should be included in the accompanying Jupyter Notebook (.ipynb) file. The report should present the analysis and interpretation of results, together with visualizations of the best-performing models predictions and associated errors.
    • **Secondary Source: **A single jupyter notebook (along with dataset CSV) that includes all codes and their rationale, experiments outputs, and content described below. Scikit-learn library tools and the classifiers considered in the course will be used. You can add these into a zip-file and upload as secondary source. The work should be reproducible, i.e. one should be able to reproduce all the results via running the notebook.

    Your PDF and Jupyter notebook should contain the following sections. The PDF will only contain descriptive part, while the notebook will include all codes and experimentations with comments.

    Section 1: Introduction and Data Exploration

    Objective: Provide a short overview of the project and perform initial data exploration.

    Questions:

    • What is the significance of predicting the target variable in the context of the dataset?
    • Univariate analysis – Bivariate analysis – Use appropriate visualizations to identify the patterns and insights you gain from exploring the chosen dataset?
    • Discuss your findings and relate it to the concepts we covered in the course LPs in the form of a table. Clearly mention the LP and from which we angle we covered this concept.

    Suggestion: For this part of the assignment, first review a few Exploratory Data Analysis reviews such as: , , . You do not need to consider all steps provided in these reviews, just use some of the ideas that make sense for your project and data.

    Section 2: Data Cleaning, Pre-processing, and Feature Engineering

    Objective: Address any data issues, perform necessary pre-processing, and engineer features.

    Questions:

    • Discuss any missing values or outliers in the dataset and your approach to handling them. Show the missing values and outliers (if any) via graphs.
    • Provide a code block demonstrating the cleaning, pre-processing, and feature engineering steps.
    • How did you decide which features to include or engineer for predicting the target variable?

    Section 3: Data Modelling and Data Splitting

    Objective: Prepare data for modeling and split the data into training and test sets.

    Questions:

    • Explain the task of predicting the target variable as a supervised automatic classification problem.
    • How did you split the data? Why is your method of splitting the data the correct method?

    Section 4: Model Selection

    Objective: Discuss the selection of classification models

    Questions:

    • Why did you choose specific classification models for predicting the target variable?
    • Provide a very short description about each model (the description should be about 1 paragraph long and should be along the lines discussed in the LPs/sessions) where you compare the selected models and discuss their strengths and weaknesses.

    Section 5: Model Training, Hyperparameter Tuning and Model Building

    Objective: Train the selected models, perform cross-validation, and fine-tune hyperparameters.

    Questions:

    • Explain the process of training the classification models, the loss function, including any cross-validation techniques used.
    • How did you approach hyperparameter tuning, and what impact did it have on model performance? Show impact with evidence.

    Section 6: Model Performance Metrics

    Objective: Model Performance evaluation and Improvement.

    Questions:

    • Which performance metrics did you use for model performance, and why are they appropriate for predicting the target variable?
    • Can model performance be improved? If yes, then do it using appropriate techniques for each ML algorithm and comment on model performance after improvement. Show comparison of the performance before and after the improvement both in terms of accuracy and training and testing time. Show this comparison via graphs or tables.

    Section 7: Results Visualization and Discussion

    Objective: Visualize model results and provide insightful discussions.

    Questions:

    • Include code for visualizing the results, such as confusion matrices or ROC curves.
    • What insights can be drawn from the visualizations, and how do they contribute to the understanding of model performance? Show all kind of cumulative visualizations in this part for holistic analysis of your results.

    Section 8: Summary

    Objective: Summarize key steps and discuss insights or shortcomings.

    Questions:

    • What are the 3 key things you learned from this assignment.
    • Draw a complete ML or data pipeline diagram that shows the detailed steps you followed for this ML problem
    • What are the 2 strengths and 2 weaknesses of the entire ML approach you followed for this assignment

    Additional Guideline for this Assignment

    • Use as much visualizations (e.g., graphs, charts, and diagrams) as much possible so that you have evidence for the various decisions made.
    • Reflect on the visualizations (e.g., graphs) i.e., what are the key learnings from those graphs. Include these in your assignment as bullet points.
    • Include your rational/motivation with evidence for various decisions such as selecting a particular machine learning algorithm or a feature selection algorithm.
    • Generally, your reflections should demonstrate your understanding of the tasks given in the assignment.
    • Use cross-validation and discuss briefly why it is important to use it.
    • Use at least 4 ML models, briefly mention their strengths and weaknesses. Also, mention why you selected these 4 algorithms.
    • Make an insightful comparison among the results for the 4 ML algorithms used.
    • Ensure that the PDF report and final notebook are well organized into sections as mentioned in the assignment description.
    • Make sure that the code is clean, commented, and well-documented.
    • Adhere to the maximum word limit and page limit mentioned in the assignment.

    Your notebook will also be graded in the following dimensions:

    • Structure and flow
    • Readability/accessibility of the code (use of comments and meaningful variable names)

    Assignment Information

    Length:

    2000

    Weight:

    15%

    Learning Outcomes Added

    • : Apply a range of common model performance metrics (e.g. classification accuracy, recall, precision).
    • : Implement maximum likelihood methods and the Expectation Maximization algorithm
    • : Select appropriate classification methods in both supervised and unsupervised tasks.

    important note: Please make sure that you read the instructions well and the rubrik and when you make the work make it perfectly and give strong informations but dont use very strong language because im in a student level and please message me when you have really read the instructions well

  • assignment 6 mab rewrite

    please correct the fallowing teacher states “Resubmit your work prior to the assignment deadline and include the QSPM with ALL required data. In addition, your submission yielded a 33% AI flags. I am including the report for your review. Make sure to change everything that is highlighted on the report.

    Attached Files (PDF/DOCX): turn it in assignment 6.pdf, Man4720 Assignment 6 Recommendations Next Steps word.docx, Man4720 Assignment 6 Recommendations Next Steps word-1.pdf

    Note: Content extraction from these files is restricted, please review them manually.

  • Unit 1 Paper: Narrative Essay

    Unit 1 Paper: Narrative Essay

    Full and complete rough draft due by 11:55 p.m. on 2/13

    Final paper due by 11:55 p.m. on 2/27

    Page length: 4-5 pages, double-spaced

    (Use of AI is NOT permitted)

    In the readings for Unit 1, our authors discuss what exactly they enjoy about their field of study. Sacks narrates his early discovery of the joys and risks of chemical experimentation. Didion discusses her passion for writing or, more specifically, discovering how stories take shape in what she calls the pictures of her mind. McKellar describes how her love for math burgeoned in a way that allowed her to assert her individuality while shedding the burden of her identity as a child celebrity. In a sense, they each tell the story of how they fell in love with their discipline.

    For this assignment, Id like you to write a narrative essay, in which you tell a similar story about your own experience: what led you to pursue your major? You may not have almost burned your house down in a chemical explosion like Sacks or dreamed a childhood dream of having a mathematical theorem named after you like McKellar, but you certainly have your own unique story to tell.

    It would probably be best if you centered your narrative on a single significant event or experience that first revealed to you the joy, possibility, or challenge of pursuing the academic subject you enjoy most. I understand that life is messy, and big decisions (like choice of major) dont always readily emerge from a neat and tidy set of circumstances. That said, for the sake of this essaywhich is not life, but a personal narrative, a storyplease try to narrow your focus as much as possible. While experiences in the world might not be cleanly organized and tightly focused, your essay should be. As you engage in this assignment, take all of the advice offered by WikiHows How to Write a Narrative Essay to heart. I really cant stress this enough: click the hyperlink on Canvas or our course syllabus to access this webpage and use it to inform your writing.

    Above all, your story should address the prompt; offer a clear focus, thesis, or theme; and contain a manageable plot appropriate for a 4-5 page assignment. You may draw from and cite sources if you feel this strategy would be appropriate for your narrative. However, you are not required to do so. You are, of course, required to use the first-person throughoutafter all, this is your story!

    —————-

    I would like you to post the rough draft of your narrative essay to this forum as an attached document–ideally in Word, but .pdf is OK too. Please note that I’ve prearranged three-person groups for this discussion forum. After you’ve posted your rough draft (by 11:55 p.m. on 2/13), you’ll return here to complete two peer reviews–one for each of your other group members. Please see Week 5 on our homepage for the appropriate handout to complete; the peer reviews need to be finished and posted here by 11:55 p.m. on 2/20. Got it?! I realize Canvas makes this navigation a bit confusing, but let’s do our best to make the process as smooth as possible. Essentially, these are the steps: (1) Post your rough draft here on 2/13 as an attachment in Word or a .pdf. (2) After you’ve done so, go to Week 5 on our Canvas homepage; there, read the guidelines for peer review and download the peer-review handout. (3) Read and then reply to your group members’ drafts by posting the completed peer-review handout here by 2/20. Make sense?

    • I pursued being a biology major because I wanted to go into PA school, which was my end goal of mine
    • I loved science, always felt connected to chemistry and biology
    • Anatomy and physio always interested me
    • I wanted to make a difference in this world and knowledge is power so I decided to pursue a difficult degree
    • A bio degree would set me up for what is to come in PA or med school. The debate between the two paths continues
    • Ive known I wanted to be a doctor since I was 10 but in college is when I switched to PA

    PLEASE DON’T GIVE ME A ROUGH DRAFT VERSION. GIVE ME THE FINAL BEST VERSION POSSIBLE! IF THERE ARE TINGS MY CLASSMATES FIND THAT NEED TO E ADDRESSED OR FIXED ILL DO IT BUT HOPEFULLY THERE ISNT ANY LOL!

    Attached Files (PDF/DOCX): SampleStudentEssay1.pdf, 0_Sacks_StinksBangs.pdf, DidionWhyIWrite.pdf

    Note: Content extraction from these files is restricted, please review them manually.

  • Global/Intercultural skill enhancer

    Hi, Please help me with editing the grammar and flow but keep a similar style and tone. Please avoid changing a lot of context that does not make sense. Also I need the plagiarism and AI detection check. Thank you!

    Attached Files (PDF/DOCX): Assignment 1 Rubric.pdf, Introduction.docx, Assignment Instruction.docx

    Note: Content extraction from these files is restricted, please review them manually.

  • Write a summary

    The text describes the study of Greek history as “putting together a puzzle, most of whose pieces are missing”. Discuss the specific challenges historians face when reconciling literary sources (often written by elite men) with archaeological evidence (such as everyday pottery). Which type of evidence do you find more reliable for understanding the history of the ancient Greek world? Use at least 2 direct examples from the reading. i have attached the pdf files – 3 paragraphs

    Requirements: summary

  • Research

    Choose one modality that you are interested in from the list above. Research the ACR website and discuss thoroughly the requirements to become accredited.

    1. Discuss the requirements to become accredited: 1) employee credentials, 2) number of exams to be sent to ACR for review. 3) cost to become accredited, 4) does ACR accreditation increase reimbursement, 5) how long does the process take, and 6) radiologist credentials.
    2. Write a short essay discussing protocols in these emergency settings.
    3. This paper must be 3-4 pages excluding the title page and reference page in APA format.
    4. The paper must have the following items: 1) title page, 2) Introduction, 3) Body of the paper, 4) Conclusion, and 5) reference page.
  • ET 19000-01 Statics (parallel and perpendicular

    I can’t figure out how to solve and the book is not helping

    Requirements:

  • Consent for treatment

    guideline need to be followed. this should be in APA format instructions attached

    Attached Files (PDF/DOCX): True RUA NR328.pdf

    Note: Content extraction from these files is restricted, please review them manually.