Number Sequence

Description

A single positive integer i is given. Write a program to find the digit located in the position i in the sequence of number groups S1S2...Sk. Each group Sk consists of a sequence of positive integer numbers ranging from 1 to k, written one after another. 
For example, the first 80 digits of the sequence are as follows: 
11212312341234512345612345671234567812345678912345678910123456789101112345678910

Input

The first line of the input file contains a single integer t (1 ≤ t ≤ 10), the number of test cases, followed by one line for each test case. The line for a test case contains the single integer i (1 ≤ i ≤ 2147483647)

Output

There should be one output line per test case containing the digit located in the position i.

Sample Input

2
8
3

Sample Output

2
2

#include<iostream>
#include<cstring>
using namespace std;

int weishu(int a)
{
	int m=0;
	while(a)
	{
		m++;
		a=a/10;
	}
	return m;
}

bool check(__int64 hangshu[],int hang,__int64 num)
{
	__int64 sum=0;
	for(int i=1;i<=hang;i++)
		sum+=hangshu[i];
	if(sum<0)
		return true;
	if(sum<num)
		return false;	 
	return true;
}
int main()
{
	char m[400000];
	memset(m,'0',sizeof(m));
	int k=1;
	for(int i=1;;i++)
	{
		int c=i;
		int w=weishu(c);
		while(c)
		{
			m[k+(--w)]+=c%10;
			c=c/10;
		}
		k+=weishu(i);
		if(k>=390000)
			break;
	}

	__int64 hangshu[31270];
	memset(hangshu,0,sizeof(hangshu));
	for(__int64 i=1;i<31270;i++)
	{
		if(i>=1&&i<=9)
			hangshu[i]=i;
		else
			if(i>=10&&i<=99)
				hangshu[i]=9+(i-9)*2;
			else 
				if(i>=100&&i<=999)
					hangshu[i]=189+3*(i-99);
				else
					if(i>=1000&&i<=9999)
						hangshu[i]=2889+(i-999)*4;
					else
						if(i>=10000&&i<=99999)
							hangshu[i]=38889+(i-9999)*5;
	}

	int t;
	cin>>t;
	while(t--)
	{
		__int64 a;
		cin>>a;

		__int64 hang;
		__int64 left=1;
		__int64 right=31268;
		while(left<right)
		{
			__int64 mid=(left+right)>>1;
			if(check(hangshu,mid,a))
			{
				right=mid;
			}
			else
				left=mid+1;
		}
		for(int i=1;i<left;i++)
			a-=hangshu[i];
		cout<<m[a]<<endl;

	}

}

/*

50
523525432

*/


此题需要记住,用二分法时,左右边界不要放的过大,以免发生各种问题,如判断一些不能考虑的情况,以至于引发各种问题。

应学会缩小左右边界,剪枝。


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