Python and Machine Learning Specialization is avaliable for free of cost click the link below to grab the specialization. you can share in the Certifications section of your LinkedIn profile, on printed resumes, CVs, or other documents.
Skills you must know for this specialization
- Risk Management
- Portfolio construction and analysis
- Python programming skills
- Implementation of data science techniques in investment decisions
- Portfolio Optimization
- Programming skills
- Managing your own personal invetsments
- Investment management knowledge
- Computer Science
- Expertise in data science
Exam Details
- Format: Multiple Choice Question
- Questions: 10
- Passing Score: 8/10 or 80%
- Language: English
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Machine Learning Specialization
#BreakIntoAI with Machine Learning Specialization. Master fundamental AI concepts and develop practical machine learning skills in the beginner-friendly, 3-course program by AI visionary Andrew Ng.
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here are answer to the questions
Supervised learning deals with unlabeled data, while unsupervised learning deals with labelled data.
- True
- False
Which of the following groups are not Machine Learning techniques?
- Regression
- Classification
- Scikit-Learn
- Clustering
Which of the following is the LEAST accurate with regard to supervised learning?
- Inputs and outputs are labeled to allow the ML algorithms to learn to map the inputs to their desired outputs
- If no outputs are provided, the ML algorithms are trained to recognise patterns in the input data
- The trained ML algorithms are able to make predictions or detect patterns when given new data without labels
- None of the above
Which of the following is LEAST likely a symptom of underfitting in machine learning?
- True parameters are treated as noise
- The model fails to identify actual patterns in the data
- Input and output data are learnt too exactly
- All of the above
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What is the most significant phase in a genetic algorithm?
- Selection
- Mutation
- Crossover
- Fitness function
Why K-fold CV fails in finance?
- Observations cannot be assumed to be drawn from an IID process. However, information leakage will take place when the training set contains information that also appears in the testing set.
- Testing set is used multiple times in the process of developing a model, leading to multiple testing and selection bias.
- All of the above
Machine learning algorithms are used to detect fraud, automate trading activities, and provide financial advisory services to investors.
- True
- False
_ trading can simultaneously analyze large volumes of data and make thousands of trades every day
- Algorithmic
- Arithmetic
- Advance
- Robot
Algorithmic trading does make trading decisions based on emotions
- True
- False
_ are online applications that are built using machine learning, and they provide automated financial advice to investors.
- Sharks
- Robo-advisors
- angel investors
- All of the above
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