#include using namespace std; using VS = vector; using LL = long long; using VI = vector; using VVI = vector; using PII = pair; using PLL = pair; using VL = vector; using VVL = vector; #define ALL(a) begin((a)),end((a)) #define RALL(a) (a).rbegin(), (a).rend() #define SZ(a) int((a).size()) #define SORT(c) sort(ALL((c))) #define RSORT(c) sort(RALL((c))) #define UNIQ(c) (c).erase(unique(ALL((c))), end((c))) #define FOR(i, s, e) for (int(i) = (s); (i) < (e); (i)++) #define FORR(i, s, e) for (int(i) = (s); (i) > (e); (i)--) #define debug(x) cerr << #x << ": " << x << endl const int INF = 1e9; const LL LINF = 1e16; const LL MOD = 1000000007; const double PI = acos(-1.0); int DX[8] = { 0, 0, 1, -1, 1, 1, -1, -1 }; int DY[8] = { 1, -1, 0, 0, 1, -1, 1, -1 }; /* ----- 2018/08/27 Problem: yukicoder 260 / Link: http://yukicoder.me/problems/no/260 ----- */ /* ------問題------ ある芸人は「3の倍数もしくは 3のつく数」の時「アホ」になり、「8の倍数」の時「青春」するという。 A 以上 B 以下の整数のうち、「アホ」になりかつ「青春」しない数がいくつあるかを 109+7 で割った時の余りで求めてください。 -----問題ここまで----- */ /* -----解説等----- ----解説ここまで---- */ LL dp[10004][3][8][2]; LL f(const string& s, int idx, int three=0, int eight=0, bool has=0, bool less=0) { if (idx == -1) { return (three == 0 || has) && (eight); } if (less && dp[idx][three][eight][has]!= -1 )return dp[idx][three][eight][has]; int Max = less ? 9 : s[idx] - '0'; LL ret = 0; FOR(nx, 0, Max + 1) { ret += f(s, idx - 1, (three+ nx) % 3, (eight * 10 + nx) % 8, has || nx == 3, less || (nx < Max)); ret %= MOD; } if(less)return dp[idx][three][eight][has] = ret; else return ret; } int main() { cin.tie(0); ios_base::sync_with_stdio(false); string A, B; cin >> A >> B; // f(B) - f(A-1) fill(***dp, ***dp + 10004 * 3 * 8 * 2, -1); // A = A-1 FORR(i, SZ(A) - 1, 0 - 1) { if (A[i] != '0') { A[i]--; break; } else { A[i] = '9'; } } if (A[0] == '0')A = A.substr(1); reverse(ALL(B)), reverse(ALL(A)); LL ans = f(B, SZ(B) - 1); LL ret = f(A, SZ(A) - 1); ans -= ret; if (ans < 0)ans += MOD; cout << ans << "\n"; return 0; }