BacktrackingSlide 2Solving a mazeColoring a mapSolving a puzzleBacktracking (animation)Terminology ITerminology IIReal and virtual treesThe backtracking algorithmFull example: Map coloringData structuresCreating the mapSetting the initial colorsThe main programThe backtracking methodChecking if a color can be usedPrinting the resultsRecapThe EndBacktrackingBacktracking•Suppose you have to make a series of decisions, among various choices, where–You don’t have enough information to know what to choose–Each decision leads to a new set of choices–Some sequence of choices (possibly more than one) may be a solution to your problem•Backtracking is a methodical way of trying out various sequences of decisions, until you find one that “works”Solving a maze•Given a maze, find a path from start to finish•At each intersection, you have to decide between three or fewer choices:–Go straight–Go left–Go right•You don’t have enough information to choose correctly•Each choice leads to another set of choices•One or more sequences of choices may (or may not) lead to a solution•Many types of maze problem can be solved with backtrackingColoring a map•You wish to color a map withnot more than four colors–red, yellow, green, blue•Adjacent countries must be indifferent colors•You don’t have enough information to choose colors•Each choice leads to another set of choices•One or more sequences of choices may (or may not) lead to a solution•Many coloring problems can be solved with backtrackingSolving a puzzle•In this puzzle, all holes but oneare filled with white pegs•You can jump over one pegwith another•Jumped pegs are removed•The object is to remove allbut the last peg•You don’t have enough information to jump correctly•Each choice leads to another set of choices•One or more sequences of choices may (or may not) lead to a solution•Many kinds of puzzle can be solved with backtrackingBacktracking (animation)start ??dead enddead end??dead enddead end?success!dead endTerminology IThere are three kinds of nodes:A tree is composed of nodesThe (one) root nodeInternal nodesLeaf nodesBacktracki ng can be thought of as searching a tree for a particular “goal” leaf nodeTerminology II•Each non-leaf node in a tree is a parent of one or more other nodes (its children)•Each node in the tree, other than the root, has exactly one parentparentchildrenparentchildrenUsually, however, we draw our trees downward, with the root at the topReal and virtual trees•There is a type of data structure called a tree–But we aren’t using it here•If we diagram the sequence of choices we make, the diagram looks like a tree–In fact, we did just this a couple of slides ago–Our backtracking algorithm “sweeps out a tree” in “problem space”The backtracking algorithm•Backtracking is really quite simple--we “explore” each node, as follows:•To “explore” node N: 1. If N is a leaf node, 1.1. If N is a goal node, return “success” 1.2. Otherwise report “failure” 2. For each child C of N, 2.1. Explore C 2.1.1. If C was successful, report “success” 3. Report “failure”Full example: Map coloring•The Four Color Theorem states that any map on a plane can be colored with no more than four colors, so that no two countries with a common border are the same color•For most maps, finding a legal coloring is easy•For some maps, it can be fairly difficult to find a legal coloring•We will develop a complete Java program to solve this problemData structures•We need a data structure that is easy to work with, and supports:–Setting a color for each country–For each country, finding all adjacent countries•We can do this with two arrays–An array of “colors”, where countryColor[i] is the color of the ith country–A ragged array of adjacent countries, where map[i][j] is the jth country adjacent to country i•Example: map[5][3]==8 means the 3th country adjacent to country 5 is country 8Creating the map0 142365int map[][];void createMap() { map = new int[7][]; map[0] = new int[] { 1, 4, 2, 5 }; map[1] = new int[] { 0, 4, 6, 5 }; map[2] = new int[] { 0, 4, 3, 6, 5 }; map[3] = new int[] { 2, 4, 6 }; map[4] = new int[] { 0, 1, 6, 3, 2 }; map[5] = new int[] { 2, 6, 4, 0 }; map[6] = new int[] { 2, 3, 4, 1, 5 };}Setting the initial colorsstatic final int NONE = 0;static final int RED = 1;static final int YELLOW = 2;static final int GREEN = 3;static final int BLUE = 4;int mapColors[] = { NONE, NONE, NONE, NONE, NONE, NONE, NONE };The main program (The name of the enclosing class is ColoredMap) public static void main(String args[]) { ColoredMap m = new ColoredMap(); m.createMap(); boolean result = m.explore(0, RED); System.out.println(result); m.printMap(); }The backtracking method boolean explore(int country, int color) { if (country >= map.length) return true; if (okToColor(country, color)) { mapColors[country] = color; for (int i = RED; i <= BLUE; i++) { if (explore(country + 1, i)) return true; } } return false; }Checking if a color can be used boolean okToColor(int country, int color) { for (int i = 0; i < map[country].length; i++) { int ithAdjCountry = map[country][i]; if (mapColors[ithAdjCountry] == color) { return false; } } return true; }Printing the results void printMap() { for (int i = 0; i < mapColors.length; i++) { System.out.print("map[" + i + "] is "); switch (mapColors[i]) { case NONE: System.out.println("none"); break; case RED: System.out.println("red"); break; case YELLOW: System.out.println("yellow"); break; case GREEN: System.out.println("green"); break; case BLUE: System.out.println("blue"); break; } }}Recap•We went through all the countries recursively, starting with country zero•At each country we had to decide a color–It had to be different from all adjacent countries–If we could not find a legal color, we reported failure–If we could find a color, we used it and recurred with the next country–If we ran out of countries (colored them all), we reported success•When we returned from the topmost call, we were doneThe
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