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Progressive Deepening

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Presentation on theme: "Progressive Deepening"— Presentation transcript:

1 Progressive Deepening
A B C D E F G H I J K L M N

2 Heuristically Informed
Heuristic Example Here you see the distances between each city and the goal If you wish to reach the goal, it is usually better to be in a city that is close, but not necessarily; city C is closer than, but city C is not a good place to be A B 3 C 2 5 6 S G 4 3 D E 3 F 3 3 A B C Page 43 of Elaine Rich 2 4 4 S G 3 2 D E F 1 3

3 Hill Climbing Hill Climbing is DFS with a heuristic measurement
11 9 A B 7.3 8.5 9 9 C D E F 7 5 6 G H I J 6 4 4 2 K L M N Hill Climbing is DFS with a heuristic measurement that orders choices. The numbers beside the nodes are straight-line distances from the path- terminating city to the goal city.

4 Beam Search Degree = 2 At every level use only 2 best nodes S 11 9 A B
7.3 8.5 7.1 9 C D E F 7 5 5.3 G H I J 6 2 4 2.5 K L M N


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