解题思路:
被挑为7的两种情况:

  1. i7的倍数,i % 7 == 0
  2. i含有7,先转字符串之后再进行一个包含判断,(i.to_string().contains('7')
use std::io::{self, *};
fn main() {
    let stdin = io::stdin();
    for line in stdin.lock().lines() {
        let ll = line.unwrap();
        let n = ll.trim().parse::<u32>().unwrap();
        let mut counter = 0u32;
        for i in 1..=n { 
            if (i % 7 == 0)||(i.to_string().contains('7')){
                counter += 1;
            }
        }
        println!("{}",counter);
    }
}