A common-sense baseline would the best score you could get on your validation dataset without actually looking at the individual samples. If you're looking at an imbalanced binary classification task, with 90% of your samples in class A and 10% B, then your baseline is 90% acc.
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In that case a model that scores 92% is 100% more accurate than one that scores 91%. Don't start the comparison charts at 0!
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After normalization the baseline is the zero, blah blah blah.
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