/*感觉我的做法很麻烦,一个只存+-符号的数组, 一个存所有操作符的队列,再来一
个队列存操作数(比如1,2, 1011(10.11的情况))。然后就是暴搜。。。*/
/*My Code: 297MS*/
#include <iostream>
#include <cstdio>
#include <cstring>
using namespace std;
const int N = 50;
char opr2[N];
char opr[N];
int opn[N];
int cnt, n;
void dfs(int p, int p2, int m, int sum, int t){
int i, j, tsum;
if(sum == 0 && t == n){
if(cnt < 20){
for(i = 0; i < p; i++){
printf("%d %c ", i+1, opr[i]);
}
printf("%d\n", t);
}
cnt++;
return ;
}
if(t >= n) return ;
t++;
opr[p] = opr2[p2] = '+';
opn[m] = t;
tsum = sum + t;
dfs(p+1, p2+1, m+1, tsum, t);
opr[p] = opr2[p2] = '-';
opn[m] = t;
tsum = sum - t;
dfs(p+1, p2+1, m+1, tsum, t);
opr[p] = '.';
if(t >= 10) opn[m-1] = opn[m-1]*100 + t;
else opn[m-1] = opn[m-1]*10 + t;
j = 0; tsum = opn[0];
for(i = 1; i <= m-1; i++){
if(opr2[j] == '+')
tsum += opn[i];
else
tsum -= opn[i];
j++;
}
dfs(p+1, p2, m, tsum, t);
}
int main(){
//freopen("data.in", "r", stdin);
while(~scanf("%d", &n)){
memset(opr, 0, sizeof(opr));
memset(opr2, 0, sizeof(opr2));
memset(opn, 0, sizeof(opn));
cnt = 0; opn[0] = 1;
dfs(0, 0, 1, 1, 1);
printf("%d\n", cnt);
}
return 0;
}