Автор Тема: Why should we choose Data Science over Data Analytics?  (Прочитано 479 раз)

Оффлайн DeepaVerma

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Why should we choose Data Science over Data Analytics?
« : 11 Декабрь 2023, 06:34:45 »
The choice between data science and data analytics depends on your specific goals, interests, and the nature of the tasks you want to perform. Both fields involve working with data to extract valuable insights, but they differ in their scope, methodologies, and objectives. Here are some reasons why you might choose data science over data analytics:

    Scope and Depth:
        Data Science: Data science is a broader field that encompasses various techniques, including machine learning, statistical modeling, and advanced analytics. Data scientists typically deal with complex problems, requiring a deep understanding of algorithms and statistical methods to extract actionable insights.
        Data Analytics: Data analytics focuses on examining historical data to identify trends, patterns, and make informed decisions. It often involves descriptive and diagnostic analytics, providing a more straightforward and immediate understanding of past performance.

    Predictive Modeling:
        Data Science: Data scientists often build predictive models using machine learning algorithms to forecast future trends or outcomes based on historical data. This involves a higher level of statistical and mathematical knowledge.
        Data Analytics: Data analytics primarily focuses on analyzing past data to understand what happened, why it happened, and how to optimize processes based on those insights.

    Skill Set:
        Data Science: Data scientists typically need strong programming skills (e.g., Python, R), a solid understanding of statistics, and the ability to work with large datasets. They often need to deploy machine learning models in real-world scenarios.
        Data Analytics: Data analysts may require less programming and statistical knowledge compared to data scientists. They often work with tools like Excel, SQL, and visualization tools to interpret and communicate data findings.

    Problem Complexity:
        Data Science: Data scientists tackle complex problems that may involve predicting future trends, building recommendation systems, or solving intricate business challenges.
        Data Analytics: Data analysts typically deal with less complex problems, focusing on reporting, dashboard creation, and providing insights for decision-making.

Data Science Course in Pune

Оффлайн garryy

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« Ответ #1 : 14 Декабрь 2023, 12:54:01 »
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Оффлайн garryy

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www.aka.ms/linkphoneqr
« Ответ #2 : 14 Декабрь 2023, 12:54:17 »
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