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Talos Optimization Strategies
Mikko Kotila edited this page Jan 7, 2019
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Talos supports several common optimization strategies:
- Random search
- Grid search
- Manually assisted random or grid search
- Correlation based optimization
The object of abstraction is the keras model configuration, of which n number of permutations is tried in a Talos experiment.
As opposed to adding more complex optimization strategies, which are widely available in various solutions, Talos focus is on:
- adding variations of random variable picking
- reducing the workload of random variable picking
As it stands, both of these approaches are currently under leveraged by other solutions, and under represented in the literature.