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Flow

  1. collect training set data
    • 3 circle centers + variation
  2. collect net params (optional)
    • hidden layer count
    • hidden layer sizes
    • learning rate
    • momentum
    • bias on/off
    • (?) propagation function
    • (?) initial weights
  3. Learning
    • train 1 step
    • classify all input points
    • return to draw on screen
  4. Testing
    • add 1 point and get it classified

Allow resetting

POST /simulation/
Send simulation params and initialize the neural network. Input: training set, network params Output: redirect to /step/1 (?) State: remember training set, create network, 1st eval, draw

GET /step/{number}
Trains the neural network 1 time with next point [chosen?]. Sends back the points after classification by current network.

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SWD P3

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