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swain

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  1. Asked: January 11, 2020 Data Science

    What is design of experiment?

    swain

    swain

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    Added an answer on January 11, 2020 at 1:05 am

    It is the initial process which is used to split data, data sampling or data setup for statistical analysis.

    It is the initial process which is used to split data, data sampling or data setup for statistical analysis.

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  2. Asked: January 11, 2020 Data Science

    What is KPI?

    swain

    swain

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    Added an answer on January 11, 2020 at 1:04 am

    KPI or Key Performance Indicator can be defined as the metric which consists of a combination of charts, reports, spreadsheets or business processes.

    KPI or Key Performance Indicator can be defined as the metric which consists of a combination of charts, reports, spreadsheets or business processes.

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  3. Asked: January 10, 2020 Machine Learning (ML)

    What is “No Free Lunch” theorem in Machine Learning?

    swain

    swain

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    Added an answer on January 10, 2020 at 12:01 am

    According to the “No Free Lunch” theorem, there is no one model that works best for every problem. A model which may be great for one problem may not hold for another problem at all.

    According to the “No Free Lunch” theorem, there is no one model that works best for every problem. A model which may be great for one problem may not hold for another problem at all.

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  4. Asked: January 9, 2020 Machine Learning (ML)

    What is generalization error?

    swain

    swain

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    swain
    Added an answer on January 9, 2020 at 11:54 pm

    In supervised machine learning, generalization error is a measure of how accurately an algorithm is able to predict outcome values for previously unseen data.

    In supervised machine learning, generalization error is a measure of how accurately an algorithm is able to predict outcome values for previously unseen data.

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  5. Asked: January 9, 2020 Machine Learning (ML)

    What is the importance on entropy in machine learning?

    swain

    swain

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    Added an answer on January 9, 2020 at 10:44 pm

    Entropy is a measure of the randomness in the information being processed. The higher the entropy, the harder it is to draw any conclusions from that information. The concept of entropy is used in decision tree development to identify the variable related to the branching node.

    Entropy is a measure of the randomness in the information being processed. The higher the entropy, the harder it is to draw any conclusions from that information. The concept of entropy is used in decision tree development to identify the variable related to the branching node.

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  6. Asked: January 9, 2020 Machine Learning (ML)

    How do you do a trade-off between bias and variance in machine learning

    swain

    swain

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    Added an answer on January 9, 2020 at 1:03 am

    High bias and low variance algorithms train models that are consistent, but inaccurate on average. High variance and low bias algorithms train models that are accurate but inconsistent. if we make the model more complex by adding more variables, we will lose bias but gain variance. To get the optimaRead more

    High bias and low variance algorithms train models that are consistent, but inaccurate on average.
    High variance and low bias algorithms train models that are accurate but inconsistent.

    if we make the model more complex by adding more variables, we will lose bias but gain variance.
    To get the optimally-reduced amount of error, we will have to trade off bias and variance. Neither high bias nor high variance is desired.

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  7. Asked: January 7, 2020 Machine Learning (ML)

    If the training dataset is very small, what is the importance of bias and variance while selecting machine learning algorithm?

    swain

    swain

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    swain
    Added an answer on January 9, 2020 at 12:42 am

    If the training dataset is small, a model having high bias and low variance seems to work better because they are less likely to over fit.

    If the training dataset is small, a model having high bias and low variance seems to work better because they are less likely to over fit.

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  8. Asked: January 8, 2020 Machine Learning (ML)

    Based on the business needs, how will you decide to select supervised or unsupervised machine learning algorithm

    swain

    swain

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    swain
    Added an answer on January 9, 2020 at 12:39 am

    It depends upon the research question and type of data available for training. If we are looking for cluster or pattern identification, we go with unsupervised machine learning where as if we are looking for outcome to be a category or regression, we go with supervised machine learning using traininRead more

    It depends upon the research question and type of data available for training. If we are looking for cluster or pattern identification, we go with unsupervised machine learning where as if we are looking for outcome to be a category or regression, we go with supervised machine learning using training data having labelled outcome variable.

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  9. Asked: January 7, 2020 Machine Learning (ML)

    What is the difference between K means and KNN clustering

    swain

    swain

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    Added an answer on January 9, 2020 at 12:29 am

    K-means -(1) Unsupervised machine learning (2) Cluster algorithm KNN- (1) Supervised machine learning (2) Classification algorithm

    K-means -(1) Unsupervised machine learning (2) Cluster algorithm
    KNN- (1) Supervised machine learning (2) Classification algorithm

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  10. Asked: January 7, 2020 Machine Learning (ML)

    What is the difference between K means and KNN clustering

    swain

    swain

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    swain
    Added an answer on January 9, 2020 at 12:28 am

    K-means -(1) Unsupervised machine learning (2) Cluster algorithm KNN- (1) Supervised machine learning (2) Classification algorithm

    K-means -(1) Unsupervised machine learning (2) Cluster algorithm
    KNN- (1) Supervised machine learning (2) Classification algorithm

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