我必须解压缩用霍夫曼树编码的字符串,但代码的长度可变,而且并非所有输入都在前缀中,在这种情况下我应该打印"无效"并完成执行。输入包括:不同字符的数量;人物及其代码;编码消息的长度;编码信息。
如果可以的话,我会问一个更具体的问题,但我真的不知道什么是错的,因为我觉得一切都是错的。
示例输入将是: 6 e 11 m 101 x 100 l 011 p 010 00 00 18 111001110101001100
它的输出将是: " exemplo"
#include <stdio.h>
#include <string.h>
#include <stdlib.h>
typedef struct node_t
{
struct node_t *left, *right;
char* codigo;
unsigned char c;
} *node;
void decode(const char *s, node t)
{
node q = t;
while (*s)
{
if (*s++ == '0') q = q->left;
else q = q->right;
if (q->c) putchar(q->c), q = t;
}
putchar('\n');
}
struct node_t *insere(struct node_t *root, char x, char* h, int a)
{
if(!root)
{
root=(struct node_t*)malloc(sizeof(struct node_t));
root->c = x;
root->codigo=h;
root->left = NULL;
root->right = NULL;
return(root);
}
else
{
if(h[a]=='0')
{
if(root->left!=NULL)
{
printf("invalid\n");
exit(0);
}
root->left = insere(root->left,x, h, a+1);
}
else
{
if(h[a]=='1')
{
if(root->left!=NULL)
{
printf("invalid\n");
exit(0);
}
root->right = insere(root->right,x, h, a+1);
}
}
}
return(root);
}
void inorder(struct node_t *root)
{
if(root != NULL)
{
inorder(root->left);
free(root);
inorder(root->right);
}
return;
}
int main(void)
{
struct node_t *root;
root = NULL;
int i, N, M, k;
scanf("%d", &N);
char item, num[2*N];
for (i = 0; i < N; i++)
{
scanf("%c %s\n", &item, num);
root= insere(root, item, num, 0);
}
scanf("%d\n", &M);
char buf[M];
for (k=0; k<M; k++)
scanf ("%c", &buf[k]);
decode (buf, root);
inorder(root);
return 0;
}
答案 0 :(得分:0)
#include <stdio.h>
#include <stdlib.h>
typedef struct node_t {
struct node_t *left, *right;
char codigo;
char ch;
} *node;
char decode_aux(const char **s, node np){
if(!np){
fprintf(stderr, "invalid\n");
exit(0);
}
if(np->ch)
return np->ch;
if(**s=='\0')
return '\0';
if(*(*s)++ =='0')
return decode_aux(s, np->left);
else //if(**s=='1')
return decode_aux(s, np->right);
}
void decode(char *out, const char *s, node root){
const char *p = s;
while(*out++ = decode_aux(&p, root))
;
}
void insere(node *np, char ch, char *code){
if(!*np){
*np = malloc(sizeof(**np));
(*np)->left = (*np)->right = NULL;
(*np)->codigo = *code;
(*np)->ch = 0;
}
if(*++code == '\0')
(*np)->ch = ch;
else if(*code == '0')
insere(&(*np)->left, ch, code);
else // if(*code == '1')
insere(&(*np)->right, ch, code);
}
void inorder(node root){
if(root != NULL){
inorder(root->left);
inorder(root->right);
free(root);
}
return;
}
int main(void){
node root = calloc(1, sizeof(*root));
int i, N, M;
scanf("%d", &N);
char item, num[2*N+1];
num[0] = ' ';//dummy for root
for (i = 0; i < N; i++){
scanf(" %c %s", &item, num+1);
insere(&root, item, num);
}
scanf("%d", &M);
char buf[M+1], out[M];
scanf("%s", buf);
decode(out, buf, root);
printf("%s\n", out);
inorder(root);
return 0;
}
#if 0
root (root is special node)
/ \
0 1
/ \ / \
0 1 0 1
(o) / \ / \ (e)
0 1 0 1
(p) (l) (x) (m)
#endif
答案 1 :(得分:0)
void decode_huff(node * root , string s){
int len = s.length();
node *my_root = root;
for(int i = 0 ; i<len ; i++){
if(s[i] == '1')
my_root=my_root->right;
else
my_root = my_root->left;
if(my_root->data){
cout<<my_root->data;
my_root=root;
}
}
}