In this paper we propose a technique for learning efficient strategies for solving a certain class of problems. The method, RWM, makes use of two separate methods, namely, refinement and macro generation. The former is a method for partitioning a given problem into a sequence of easier subproblems. The latter is for efficiently learning composite moves which are useful in solving the problem. These methods and a system that incorporates them are described in detail. The kind of strategies learned by RWM are based on the GPS problem solving method. Examples of strategies learned for different types of problems are given. RWM has learned good strategies for some problems which are difficult by human standards. © 1990
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Abstract. Macro search is used to derive solutions quickly for large search spaces at the expense of...
This paper explores a novel technique for learning the fitness function for search algorithms such a...
Research into techniques that reformulate problems to make general solvers more efficiently derive s...
This paper is concerned with state space problem solvers that achieve generality by learning strong...
This paper deals with program optimization, i.e., learning of more efficient programs. The programs ...
In this paper we attempt to develop a problem representation technique which enables the decompositi...
This paper discusses different strategies for the game of Sudoku and how those strategies relate to ...
Stumbling upon a difficult problem to solve is inevitable. A difficult problem is defined as a probl...
In Artificial Intelligence (AI), there exist formalised approaches and algorithms for general proble...
This paper introduces move sequence problems— problems where a system can exist in a number of state...
Pearl, J. (1984). Heuristics: intelligent search strategies for computer problem solving
Pen and paper puzzles are a fun pastime to test your logical reasoning skills, with Sudoku being the...
Thesis (Ph. D.)--University of Hawaii at Manoa, 1996.Includes bibliographical references (leaves 140...
Despite recent progress in AI planning, many problems re-main challenging for current planners. In m...
The paper develops a theory of biases in decision making. Discovering a strategy for solving a game ...
Abstract. Macro search is used to derive solutions quickly for large search spaces at the expense of...
This paper explores a novel technique for learning the fitness function for search algorithms such a...
Research into techniques that reformulate problems to make general solvers more efficiently derive s...