10

我需要在 JSON 中构建一个简单的 JSON 数组,但在循环中它会在每次迭代期间覆盖第一个值。

def jsonBuilder = new groovy.json.JsonBuilder()
contact.each {
            jsonBuilder.contact(
                    FirstName:  it.getFirstName(),
                    LastName:  it.getLastName(),
                    Title: it.getTitle(),       
            )
    }

它只返回简单的 JSON 并覆盖每次迭代的值并仅保留最后一个。在 groovy 中构造 JSON 数组的语法是什么?

4

3 回答 3

18

诀窍是collect从联系人列表中。假设contract列表的结构如下,按照下面的方式jsonBuilder使用。

def contact = [ 
    [ getFirstName : { 'A' }, getLastName : { 'B' }, getTitle : { 'C' } ], 
    [ getFirstName : { 'D' }, getLastName : { 'E' }, getTitle : { 'F' } ], 
    [ getFirstName : { 'G' }, getLastName : { 'H' }, getTitle : { 'I' } ]     
]

def jsonBuilder = new groovy.json.JsonBuilder()

jsonBuilder {
    contacts contact.collect { 
        [ 
            FirstName: it.getFirstName(), 
            LastName: it.getLastName(), 
            Title: it.getTitle() 
        ] 
    }
}

println jsonBuilder.toPrettyString()


// Prints
{
    "contacts": [
        {
            "FirstName": "A",
            "LastName": "B",
            "Title": "C"
        },
        {
            "FirstName": "D",
            "LastName": "E",
            "Title": "F"
        },
        {
            "FirstName": "G",
            "LastName": "H",
            "Title": "I"
        }
    ]
}

如果您正在寻找 JSONArray 而不是 JSONObject 作为最终结构,请使用:

jsonBuilder(
    contact.collect { 
        [ 
            FirstName: it.getFirstName(), 
            LastName: it.getLastName(), 
            Title: it.getTitle() 
        ]
    }
)

// OP
[
    {
        "FirstName": "A",
        "LastName": "B",
        "Title": "C"
    },
    {
        "FirstName": "D",
        "LastName": "E",
        "Title": "F"
    },
    {
        "FirstName": "G",
        "LastName": "H",
        "Title": "I"
    }
]

这没有意义,但如果需要如下结构

[
    {
        "contact": {
            "FirstName": "A",
            "LastName": "B",
            "Title": "C"
        }
    },
    {
        "contact": {
            "FirstName": "D",
            "LastName": "E",
            "Title": "F"
        }
    },
    {
        "contact": {
            "FirstName": "G",
            "LastName": "H",
            "Title": "I"
        }
    }
]

然后使用

jsonBuilder(
    contact.collect { 
        [ 
            contact : [ 
                FirstName: it.getFirstName(), 
                LastName: it.getLastName(), 
                Title: it.getTitle() 
            ] 
        ]
    }
)
于 2015-01-29T03:24:37.087 回答
2

使用 JsonBuilder 并不能很好地使用.each; 我用过collect这种东西。下面是一个应该适用于您的案例的示例:

static class Contact {
    String firstName
    String lastName
    String title
}

Contact c1 = new Contact(firstName: "Tom", "lastName": "Potter", title: "Mr")
Contact c2 = new Contact(firstName: "Ryan", "lastName": "Olson", title: "Mr")

List<Contact> contactList = [c1,c2]
def jsonBuilder = new groovy.json.JsonBuilder()

jsonBuilder {
   contacts(contacts.collect{[firstName: it.firstName, lastName: it.lastName, title: it.title]})
}
println jsonBuilder.toPrettyString()

结果是:

{
    "contacts": [
        {
            "firstName": "Tom"
        },
        {
            "firstName": "Ryan"
        }
    ]
}
于 2015-01-29T03:49:08.377 回答
2

没有直接回答这个问题(它是关于 JsonBuilder),但如果目标是让 JSON 输出一个字符串,它可以通过以下方式完成(部分代码从@dmahapatro 答案借用),使用JsonOutput

import groovy.json.JsonOutput

def contacts = [ 
    [ getFirstName : { 'A' }, getLastName : { 'B' }, getTitle : { 'C' } ], 
    [ getFirstName : { 'D' }, getLastName : { 'E' }, getTitle : { 'F' } ], 
    [ getFirstName : { 'G' }, getLastName : { 'H' }, getTitle : { 'I' } ]     
]

def list = ['contacts': contacts.collect { [FirstName: it.getFirstName(), LastName: it.getLastName(), Title: it.getTitle()] } ]

print JsonOutput.prettyPrint(JsonOutput.toJson(list))
于 2015-01-29T08:16:16.850 回答