//数位dp,dfs记忆化搜索

#include<iostream>

#include<cstdio>

#include<cstring>

using namespace std;

typedef long long LL;

#define N 20

LL dp[N][3];//dp[i][j]表示长度为i，前面有j个6时不含666的数的个数

int num[N];

//c6表示前面6的个数

LL dfs(int len, int c6, bool ismax){

	if(len == 0){

		return 1;

	}

	if(!ismax && dp[len][c6] >= 0){

		return dp[len][c6];

	}

	int max = ismax? num[len]:9;

	LL cnt = 0;

	for(int i = 0; i <= max; i++){

		if(c6 == 2 && i == 6){

			continue;

		}

		cnt += dfs(len-1, i == 6? c6 + 1: 0, ismax && i == max);

	}

	return ismax?cnt:dp[len][c6]=cnt;

}

LL solve(LL n){

	LL t = n;

	int len = 0;

	while(n){

		num[++len]=n%10;

		n/=10;

	}

	return t + 1 - dfs(len, 0, true);

}

int main(){

    memset(dp,-1,sizeof(dp));

    int t;

    cin>>t;

    while(t--){

    	LL n;

    	scanf("%I64d", &n);

    	LL l = 666, r = 50000000666ll;

    	while(l < r){

    		LL m = (l + r)>>1;

    		if(solve(m) < n){

    			l = m + 1;

    		}else{

    			r = m;

    		}

    	}

    	printf("%I64d\n", l);

    }

    return 0;

}