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SMART goals from Thursday's Lecture #3

@timothyhoang

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@timothyhoang
  • know the kind of data format for inputs
  • understanding the models
  • making graphs dynamic
  • figuring out what type of graph would be best (easier to understand, representative of the data)
  • facilitate comparisons between models
  • communicate with curators and analyzers; know what data to expect
  • decide how we want the data formatted and negotiate with DC and analyzers

Note: we agreed to look over the Stark's lecture slides to gain a more complete understanding of the types of visuals that would be meaningful from the analysis and to know the variables we need in our input

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