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package class19;
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public class Code03_OneNumber {
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public static int solution1(int num) {
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if (num < 1) {
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return 0;
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}
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int count = 0;
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for (int i = 1; i != num + 1; i++) {
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count += get1Nums(i);
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}
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return count;
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}
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public static int get1Nums(int num) {
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int res = 0;
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while (num != 0) {
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if (num % 10 == 1) {
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res++;
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}
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num /= 10;
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}
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return res;
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}
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// 测试链接 :
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// https://leetcode.cn/problems/1nzheng-shu-zhong-1chu-xian-de-ci-shu-lcof/
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// 提交如下方法可以直接通过
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public static int countDigitOne(int num) {
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if (num < 1) {
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return 0;
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}
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// num -> 13625
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// len = 5位数
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int len = getLenOfNum(num);
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if (len == 1) {
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return 1;
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}
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// num 13625
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// tmp1 10000
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//
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// num 7872328738273
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// tmp1 1000000000000
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int tmp1 = powerBaseOf10(len - 1);
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// num最高位 num / tmp1
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int first = num / tmp1;
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// 最高1 N % tmp1 + 1
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// 最高位first tmp1
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int firstOneNum = first == 1 ? num % tmp1 + 1 : tmp1;
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// 除去最高位之外,剩下1的数量
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// 最高位1 10(k-2次方) * (k-1) * 1
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// 最高位first 10(k-2次方) * (k-1) * first
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int otherOneNum = first * (len - 1) * (tmp1 / 10);
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return firstOneNum + otherOneNum + countDigitOne(num % tmp1);
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}
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public static int getLenOfNum(int num) {
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int len = 0;
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while (num != 0) {
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len++;
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num /= 10;
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}
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return len;
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}
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public static int powerBaseOf10(int base) {
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return (int) Math.pow(10, base);
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}
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public static void main(String[] args) {
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int num = 50000000;
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long start1 = System.currentTimeMillis();
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System.out.println(solution1(num));
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long end1 = System.currentTimeMillis();
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System.out.println("cost time: " + (end1 - start1) + " ms");
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long start2 = System.currentTimeMillis();
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System.out.println(countDigitOne(num));
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long end2 = System.currentTimeMillis();
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System.out.println("cost time: " + (end2 - start2) + " ms");
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}
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}
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