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Model data driven user interacts primarily with a mathematical model and its results while data driven DSS is user interacts primarily with the data

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Darron DuBuque

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3y ago

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Related Questions

What is the difference between a model-driven and data-driven DSS?

A model-driven DSS relies on mathematical or statistical models to analyze data and make predictions, while a data-driven DSS uses historical and real-time data to generate insights and support decision-making without relying heavily on predefined models. Model-driven DSS are more structured and use algorithms to process data, while data-driven DSS focus on exploring patterns and trends in data to inform decisions.


What is the differences between model driven and data driven?

Model data driven user interacts primarily with a mathematical model and its results while data driven DSS is user interacts primarily with the data


what is the difference between model driven and data driven DSS?

In a model-driven DSS, decision-making is based on predefined mathematical or statistical models, where users input data to generate output. In a data-driven DSS, decision-making is based on analyzing large volumes of historical data to identify patterns and trends, without necessarily relying on predefined models.


What are the advantages and disadvantages of network data model?

Network data model is just like a normal database model. In network model the data is seen as related to each other by links. Or we can say the relation between the data is represented by links.


What is the difference between data driven and goal driven?

Goal driven reasoning or backward chaining - an inference technique which uses IF THEN rules to repetitively break a goal into smaller sub-goals which are easier to prove. Data driven reasoning or forward chaining - an inference technique which uses IF THEN rules to deduce a problem solution from initial data.


What is the difference between theory driven and data driven research?

Theory-driven research is guided by existing theories and hypotheses, while data-driven research relies on analyzing data to generate insights and patterns without predefined theories. In theory-driven research, the focus is on testing and confirming existing theories, whereas data-driven research focuses on exploring and discovering patterns in the data to derive new insights.


What are the difference between data-driven hypothesis and theory-driven hypothesis?

A data-driven hypothesis is generated based on patterns observed in the data without pre-existing theoretical expectations, while a theory-driven hypothesis is generated based on existing theories or prior knowledge. Data-driven hypotheses are more exploratory and can lead to the development of new theories, while theory-driven hypotheses are more focused and aim to test specific theoretical predictions.


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Data-driven reasoning takes the facts of the problem and applies the rules or legal moves to produce new facts that lead to a goal. Goal-driven reasoning focus on the goal,finds the rules that could produce the goal,and chains backward through successive rules and subgoals to the given facts of the problem.


What is the difference between data model and database model?

A database is a collection of tables that is used for some purpose (typically an application of some sort). A database model is a description of that database, and describes how the tables relate to each other. Typically, a model is designed first, then the actual database is implemented using the model as a blueprint.