我有一个从数据库中获取的列表数组。我想创建一个新列表,将数组中的所有元素按其索引位置或ID分组。
这是我正在使用的数组:
[
{
"content": "Content A1",
"id": 1
},
{
"content": "Content A2",
"id": 2
},
{
"content": "Content A3",
"id": 3
},
{
"content": "Content A4",
"id": 4
},
{
"content": "Content A5",
"id": 5
}
]
[
{
"content": "Content B1",
"id": 1
},
{
"content": "Content B2",
"id": 2
},
{
"content": "Content B3",
"id": 3
},
{
"content": "Content B4",
"id": 4
},
{
"content": "Content B5",
"id": 5
}
]
[
{
"content": "Content C1",
"id": 1
},
{
"content": "Content C2",
"id": 2
},
{
"content": "Content C3",
"id": 3
},
{
"content": "Content C4",
"id": 4
},
{
"content": "Content C5",
"id": 5
}
]
这就是我想要新的List数组的样子:
[
{
"content": {"Content A1","Content B1","Content C1"}
"id": 1
},
{
"content": {"Content A2", "Content B2", "Content C2"}
"id": 2
},
{
"content": {"Content A3","Content B3","Content C3"}
"id": 3
},
{
"content": {"Content A4","Content B4","Content C4"}
"id": 4
},
{
"content": {"Content A5","Content B5","Content C5"}
"id": 5
}
]
我尝试过此代码,但它仅返回最后一个对象:
List<String> contentArray = new ArrayList<>();
for (int i = 0; i < b.listDetail.size(); i++) {
int finalI = i;
contentArray = listResource.stream()
.map(a -> a.listDetail.get(finalI).content)
.collect(Collectors.toList());
}
System.out.println(contentArray);
答案 0 :(得分:1)
您快完成了,只需要将contentArray存储在所有索引的列表中即可。
List<List<String>> res = new ArrayList<>();
for (int i = 0; i < b.listDetail.size(); i++) {
int finalI = i;
List<String> contentArray = listResource.stream()
.map(a -> a.listDetail.get(finalI).content)
.collect(Collectors.toList());
res.add(contentArray); // store all contents for a index in list
}
您可以使用id和contents为响应创建一个类,并构造内部循环并添加列表。