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一、题目描述:
1773. 统计匹配检索规则的物品数量 - 力扣(LeetCode)
给你一个数组 items ,其中 items[i] = [typei, colori, namei] ,描述第 i 件物品的类型、颜色以及名称。
另给你一条由两个字符串 ruleKey 和 ruleValue 表示的检索规则。
如果第 i 件物品能满足下述条件之一,则认为该物品与给定的检索规则 匹配 :
- ruleKey == "type" 且 ruleValue == typei 。
- ruleKey == "color" 且 ruleValue == colori 。
- ruleKey == "name" 且 ruleValue == namei 。
- 统计并返回 匹配检索规则的物品数量 。
示例 1:
输入:items = [["phone","blue","pixel"],["computer","silver","lenovo"],["phone","gold","iphone"]], ruleKey = "color", ruleValue = "silver"
输出:1
解释:只有一件物品匹配检索规则,这件物品是 ["computer","silver","lenovo"] 。
示例 2:
输入:items = [["phone","blue","pixel"],["computer","silver","phone"],["phone","gold","iphone"]], ruleKey = "type", ruleValue = "phone"
输出:2
解释:只有两件物品匹配检索规则,这两件物品分别是 ["phone","blue","pixel"] 和 ["phone","gold","iphone"] 。注意,["computer","silver","phone"] 未匹配检索规则。
提示:
- 1 <= items.length <= 10^4
- 1 <= typei.length, colori.length, namei.length, ruleValue.length <= 10
- ruleKey 等于 "type"、"color" 或 "name"
- 所有字符串仅由小写字母组成
二、思路分析:
检索类型一共有三种,把检索的类型变换成数字,也就是0,1,2,方便后续判断 注意:
- 提取List类型的元素要用get()函数
- 判断字符串相等要用equals()函数
三、AC 代码:
class Solution {
public int countMatches(List<List<String>> items, String ruleKey, String ruleValue) {
int num;
if (ruleKey.equals("type")){
num = 0;
}else if(ruleKey.equals("color")){
num = 1;
}else{
num = 2;
}
int res=0;
int len = items.size();
for(int i = 0;i<len;i++){
if(items.get(i).get(num).equals(ruleValue)) res++;
}
return res;
}
}
