思路:单调递增栈 + k 控制删除次数。高位越小整体越小,遇更小数字时弹出栈顶大数(仅当 k0);栈空且当前为 0 则跳过(避免前导零);若遍历完 k 仍0,从末尾再删 k 位。
"itemName": "Aspect_T01_Uncommon_Diamond_Dismantle",
,这一点在下载安装 谷歌浏览器 开启极速安全的 上网之旅。中也有详细论述
while (stack.length && stack[stack.length - 1] cur && k 0) {
An important note is that the number of times a letter is highlighted from previous guesses does necessarily indicate the number of times that letter appears in the final hurdle.
小苏的妈妈出来送我,她的手上是粘灯留下的红印和金星,我突然想到:好日子都是从手上开始红火的。劳动者,他们的手上都握着太阳和幸福。