AVL init (not finished)
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18
week12/AVL.c
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18
week12/AVL.c
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#include <stdio.h>
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#include "AVL.h"
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Node *insertNode(Node **proot, int x) {
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return NULL;
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}
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Node *findNode(Node *root, int x) {
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return NULL;
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}
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Node *deleteNode(Node **proot, int x) {
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return NULL;
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}
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void destroyTree(Node *root) {
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}
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42
week12/AVL.h
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42
week12/AVL.h
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typedef struct Node {
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int key, height;
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struct Node *left, *right;
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} Node;
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/* function: inserts a new node to the tree
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input: proot: pointer to the pointer to the tree root
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x: the key of the new node
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output: returns a pointer to the newly inserted node
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returns NULL if insertion is not successful
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*/
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Node *insertNode(Node **proot, int x);
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/* function: searches for a node in the tree
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input: root: pointer to the tree root
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x: the key of of the node to be searched
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output: returns a pointer to the found node
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returns NULL if no such node exists
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*/
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Node *findNode(Node *root, int x);
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/* function: removes a node from the tree without freeing it
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input: proot: pointer to the pointer to the tree root
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x: the key of of the node to be deleted
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output: returns a pointer to the deleted node
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returns NULL if no such node exists
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*/
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Node *deleteNode(Node **proot, int x);
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/* function: deletes all the nodes in the tree and frees the memory
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occupied by them
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input: root: pointer to the tree node
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output: none
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*/
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void destroyTree(Node *root);
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/* function: prints the tree in ASCII
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(this function is already implemented in printTree.c)
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input: root: pointer to the tree node
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output: none
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*/
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void printTree(Node *root);
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86
week12/main.c
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86
week12/main.c
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#include "AVL.h"
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#include <stdio.h>
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#include <stdlib.h>
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#define SIZE 16
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int main(void) {
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Node *root = NULL;
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printTree(root);
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printf("After inserting 10:\n");
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insertNode(&root, 10);
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printTree(root);
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printf("\nAfter inserting 5:\n");
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insertNode(&root, 5);
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printTree(root);
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printf("\nAfter inserting 15:\n");
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insertNode(&root, 15);
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printTree(root);
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printf("\nAfter inserting 9, 13:\n");
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insertNode(&root, 9);
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insertNode(&root, 13);
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printTree(root);
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printf("\nAfter inserting 2, 6, 12 (single right rotation), 14:\n");
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insertNode(&root, 2);
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insertNode(&root, 6);
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insertNode(&root, 12);
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insertNode(&root, 14);
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printTree(root);
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printf("\nSearching for 10, 6, 13, 14, 1, 3, 11, 16:\n");
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printf(findNode(root, 10)->key == 10 ? "true\n" : "false\n");
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printf(findNode(root, 6)->key == 6 ? "true\n" : "false\n");
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printf(findNode(root, 13)->key == 13 ? "true\n" : "false\n");
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printf(findNode(root, 14)->key == 14 ? "true\n" : "false\n");
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printf(findNode(root, 1) == NULL ? "true\n" : "false\n");
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printf(findNode(root, 3) == NULL ? "true\n" : "false\n");
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printf(findNode(root, 11) == NULL ? "true\n" : "false\n");
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printf(findNode(root, 16) == NULL ? "true\n" : "false\n");
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printf("\nAfter deleting 12 (double right left rotation):\n");
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free(deleteNode(&root, 12));
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printTree(root);
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printf("\nAfter deleting 13 (which has no children):\n");
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free(deleteNode(&root, 13));
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printTree(root);
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printf("\nAfter deleting 9 (which has a left child):\n");
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free(deleteNode(&root, 9));
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printTree(root);
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printf("\nAfter deleting 5 (which has two children):\n");
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free(deleteNode(&root, 5));
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printTree(root);
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printf("\nAfter deleting 10 (which has two children):\n");
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free(deleteNode(&root, 10));
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printTree(root);
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destroyTree(root);
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printf("\n--------------------\nSee slides 16-17, chapter 10, and slides "
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"10-13, chapter 11:\n\n");
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root = NULL;
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int values[SIZE] = {3, 2, 1, 4, 5, 6, 7, 16, 15, 14, 13, 12, 11, 10, 8, 9};
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for (int i = 0; i < SIZE; i++) {
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printf("inserting %d:\n", values[i]);
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insertNode(&root, values[i]);
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printTree(root);
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printf("\n");
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}
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for (int i = 0; i < SIZE; i++) {
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printf("deleting %d:\n", values[i]);
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deleteNode(&root, values[i]);
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printTree(root);
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printf("\n");
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}
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return 0;
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}
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248
week12/printTree.c
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248
week12/printTree.c
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#include "AVL.h"
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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// printing tree in ascii
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typedef struct asciinode_struct asciinode;
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struct asciinode_struct {
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asciinode *left, *right;
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// length of the edge from this node to its children
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int edge_length;
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int height;
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int lablen;
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//-1=I am left, 0=I am root, 1=right
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int parent_dir;
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// max supported unit32 in dec, 10 digits max
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char label[11];
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};
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#define MAX_HEIGHT 1000
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int lprofile[MAX_HEIGHT];
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int rprofile[MAX_HEIGHT];
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#define INFINITY (1 << 20)
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// adjust gap between left and right nodes
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int gap = 3;
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// used for printing next node in the same level,
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// this is the x coordinate of the next char printed
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int print_next;
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int MIN(int X, int Y) { return ((X) < (Y)) ? (X) : (Y); }
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int MAX(int X, int Y) { return ((X) > (Y)) ? (X) : (Y); }
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asciinode *build_ascii_tree_recursive(Node *t) {
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asciinode *node;
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if (t == NULL)
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return NULL;
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node = (asciinode *)malloc(sizeof(asciinode));
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node->left = build_ascii_tree_recursive(t->left);
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node->right = build_ascii_tree_recursive(t->right);
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if (node->left != NULL) {
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node->left->parent_dir = -1;
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}
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if (node->right != NULL) {
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node->right->parent_dir = 1;
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}
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sprintf(node->label, "%d|%d", t->key, t->height);
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node->lablen = strlen(node->label);
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return node;
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}
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// Copy the tree into the ascii node structre
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asciinode *build_ascii_tree(Node *t) {
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asciinode *node;
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if (t == NULL)
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return NULL;
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node = build_ascii_tree_recursive(t);
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node->parent_dir = 0;
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return node;
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}
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// Free all the nodes of the given tree
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void free_ascii_tree(asciinode *node) {
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if (node == NULL)
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return;
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free_ascii_tree(node->left);
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free_ascii_tree(node->right);
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free(node);
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}
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// The following function fills in the lprofile array for the given tree.
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// It assumes that the center of the label of the root of this tree
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// is located at a position (x,y). It assumes that the edge_length
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// fields have been computed for this tree.
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void compute_lprofile(asciinode *node, int x, int y) {
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int i, isleft;
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if (node == NULL)
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return;
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isleft = (node->parent_dir == -1);
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lprofile[y] = MIN(lprofile[y], x - ((node->lablen - isleft) / 2));
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if (node->left != NULL) {
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for (i = 1; i <= node->edge_length && y + i < MAX_HEIGHT; i++) {
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lprofile[y + i] = MIN(lprofile[y + i], x - i);
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}
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}
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compute_lprofile(node->left, x - node->edge_length - 1,
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y + node->edge_length + 1);
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compute_lprofile(node->right, x + node->edge_length + 1,
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y + node->edge_length + 1);
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}
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void compute_rprofile(asciinode *node, int x, int y) {
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int i, notleft;
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if (node == NULL)
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return;
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notleft = (node->parent_dir != -1);
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rprofile[y] = MAX(rprofile[y], x + ((node->lablen - notleft) / 2));
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if (node->right != NULL) {
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for (i = 1; i <= node->edge_length && y + i < MAX_HEIGHT; i++) {
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rprofile[y + i] = MAX(rprofile[y + i], x + i);
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}
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}
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compute_rprofile(node->left, x - node->edge_length - 1,
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y + node->edge_length + 1);
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compute_rprofile(node->right, x + node->edge_length + 1,
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y + node->edge_length + 1);
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}
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// This function fills in the edge_length and
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// height fields of the specified tree
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void compute_edge_lengths(asciinode *node) {
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int h, hmin, i, delta;
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if (node == NULL)
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return;
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compute_edge_lengths(node->left);
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compute_edge_lengths(node->right);
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/* first fill in the edge_length of node */
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if (node->right == NULL && node->left == NULL) {
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node->edge_length = 0;
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} else {
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if (node->left != NULL) {
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for (i = 0; i < node->left->height && i < MAX_HEIGHT; i++) {
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rprofile[i] = -INFINITY;
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}
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compute_rprofile(node->left, 0, 0);
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hmin = node->left->height;
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} else {
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hmin = 0;
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}
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if (node->right != NULL) {
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for (i = 0; i < node->right->height && i < MAX_HEIGHT; i++) {
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lprofile[i] = INFINITY;
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}
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compute_lprofile(node->right, 0, 0);
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hmin = MIN(node->right->height, hmin);
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} else {
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hmin = 0;
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}
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delta = 4;
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for (i = 0; i < hmin; i++) {
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delta = MAX(delta, gap + 1 + rprofile[i] - lprofile[i]);
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}
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// If the node has two children of height 1, then we allow the
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// two leaves to be within 1, instead of 2
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if (((node->left != NULL && node->left->height == 1) ||
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(node->right != NULL && node->right->height == 1)) &&
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delta > 4) {
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delta--;
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}
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node->edge_length = ((delta + 1) / 2) - 1;
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}
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// now fill in the height of node
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h = 1;
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if (node->left != NULL) {
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h = MAX(node->left->height + node->edge_length + 1, h);
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}
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if (node->right != NULL) {
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h = MAX(node->right->height + node->edge_length + 1, h);
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}
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node->height = h;
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}
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// This function prints the given level of the given tree, assuming
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// that the node has the given x cordinate.
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void print_level(asciinode *node, int x, int level) {
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int i, isleft;
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if (node == NULL)
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return;
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isleft = (node->parent_dir == -1);
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if (level == 0) {
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for (i = 0; i < (x - print_next - ((node->lablen - isleft) / 2)); i++) {
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printf(" ");
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}
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print_next += i;
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printf("%s", node->label);
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print_next += node->lablen;
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} else if (node->edge_length >= level) {
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if (node->left != NULL) {
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for (i = 0; i < (x - print_next - (level)); i++) {
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printf(" ");
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}
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print_next += i;
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printf("/");
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print_next++;
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}
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if (node->right != NULL) {
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for (i = 0; i < (x - print_next + (level)); i++) {
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printf(" ");
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}
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print_next += i;
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printf("\\");
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print_next++;
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}
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} else {
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print_level(node->left, x - node->edge_length - 1,
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level - node->edge_length - 1);
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print_level(node->right, x + node->edge_length + 1,
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level - node->edge_length - 1);
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}
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}
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// prints ascii tree for given Node structure
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void printTree(Node *root) {
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asciinode *proot;
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int xmin, i;
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if (root == NULL)
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return;
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proot = build_ascii_tree(root);
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compute_edge_lengths(proot);
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for (i = 0; i < proot->height && i < MAX_HEIGHT; i++) {
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lprofile[i] = INFINITY;
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}
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compute_lprofile(proot, 0, 0);
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xmin = 0;
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for (i = 0; i < proot->height && i < MAX_HEIGHT; i++) {
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xmin = MIN(xmin, lprofile[i]);
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}
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for (i = 0; i < proot->height; i++) {
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print_next = 0;
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print_level(proot, -xmin, i);
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printf("\n");
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}
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if (proot->height >= MAX_HEIGHT) {
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printf("(This tree is taller than %d, and may be drawn incorrectly.)\n",
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MAX_HEIGHT);
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}
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free_ascii_tree(proot);
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}
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Block a user