题目链接：点击打开链接

Description

Give a positive number, count the sum of the distinct subsequence of it, moreover, any subsequence should not contain leading zeroes except it is zero.
For example, if the number is 1022, the answer is 1 + 0 + 2 + 10 + 12 + 22 + 102 + 122 + 1022 = 1293.

Input

The first line has an integer T, means there are T test cases.
For each test case, there is only one line with a positive number, the number of the digits of it is in range [1, 10⁵].
The size of the input file will not exceed 5MB.

Output

For each test case, print the desired answer in one line. Because the answer may be very large, you just need to print the remainder of it divided by 1000000007 instead.

Sample Input

3
7
1022
1000000001

Sample Output

7
1293
222222223

思路：

dp[i]表示以数字i结尾的子序列的和，num[i]表示以i结尾的子序列的个数

import java.io.PrintWriter;
import java.util.ArrayList;
import java.util.Arrays;
import java.util.Collections;
import java.util.Comparator;
import java.util.Iterator;
import java.util.LinkedList;
import java.util.PriorityQueue;
import java.util.Scanner;
import java.util.TreeSet;
import java.util.Queue;

public class Main {
	static int mod = 1000000007;
	static int N = 100010;
	long[] dp = new long[10], num = new long[10];
	String s;
	void work() {
		int T = cin.nextInt();
		while(T-- > 0) {
			s = cin.next();
			int len = s.length();
			for(int i = 0; i < 10; i++)dp[i] = num[i] = 0;
			for(int i = 0; i < len; i++)
			{
				int x = s.charAt(i)-'0';
				long sum = 0, n = 0;
				for(int j = 0; j < 10; j++)
				{
					sum += dp[j];
					n += num[j];
				}
				if(x>0)n++;
				dp[x] = sum*10%mod + n*x%mod;
				num[x] = n%mod;
			}
			long ans = 0;
			for(int i = 0; i < 10; i++)
				ans = (ans + dp[i])%mod;
			out.println(ans);
		}
	}	

	Main() {
		cin = new Scanner(System.in);
		out = new PrintWriter(System.out);
	}

	public static void main(String[] args) {
		Main e = new Main();
		e.work();
		out.close();
	}
	public Scanner cin;
	public static PrintWriter out;
	int max(int x, int y) {
		return x > y  x : y;
	}

	int min(int x, int y) {
		return x < y  x : y;
	}

	double max(double x, double y) {
		return x > y  x : y;
	}

	double min(double x, double y) {
		return x < y  x : y;
	}
	long max(long x, long y) {
		return x > y  x : y;
	}

	long min(long x, long y) {
		return x < y  x : y;
	}

	static double eps = 1e-8;

	int abs(int x) {
		return x > 0  x : -x;
	}

	double abs(double x) {
		return x > 0  x : -x;
	}
	long abs(long x) {
		return x > 0  x : -x;
	}

	boolean zero(double x) {
		return abs(x) < eps;
	}
}