1

我可以使用以下代码对包含两条信息(名称和第二条,例如年龄)的表格进行排序:

t = {
Steve = 4,
Derek = 1,
Mike = 5,
Steph = 10,
Mary = 7,
Danny = 2
}

function pairsByKeys (t,f)  
    local a = {}

    for x in pairs (t) do
        a[#a + 1] = x
    end

    table.sort(a,f)
    local i = 0
    return function ()
    i = i + 1
    return a[i], t[a[i]]
    end
end

for a,t in pairsByKeys (t) do
    print (a,t)
end

结果:

Danny   2
Derek   1
Mary    7
Mike    5
Steph   10
Steve   4

我有一个场景,按照惯例,每个人的姓名标签都包含一个条形码。扫描此条码时,会将有关每个人的四条信息输入到表格数据库中。该数据库由以下部分组成:

t = {
    {name = "Mike", addr = "738 Rose Rd", age = 30, phone = "333-902-6543"}
    {name = "Steph", addr = "1010 Mustang Dr", age = 28, phone = "555-842-0606"}
    {name = "George", addr = "211 Glass St", age = 34, phone = "111-294-9903"}
}

但是我将如何更改我的代码以按年龄对所有四个条目(姓名、地址、年龄、电话)进行排序并保持所有变量彼此一致?

我一直在尝试进行实验,并且掌握了对表格进行排序的窍门,pairs并且对如何执行有了更好的了解table.sort。但现在我想再迈出这一步。

我可以从这里的一位编程大师那里获得一些帮助吗?!非常感谢你们!谢谢!

4

1 回答 1

2

您可以使用年龄作为表的键:

t = {
    [30] = {name = "Mike", addr = "738 Rose Rd", age = 30, phone = "333-902-6543"},
    [28] = {name = "Steph", addr = "1010 Mustang Dr", age = 28, phone = "555-842-0606"},
    [34] = {name = "George", addr = "211 Glass St", age = 34, phone = "111-294-9903"},
}

function pairsByKeys (t,f)
    local a = {}

    for x in pairs (t) do
        a[#a + 1] = x
    end

    table.sort(a,f)
    local i = 0
    return function ()
        i = i + 1
        return a[i], t[a[i]]
    end
end


for a,t in pairsByKeys (t) do
    print (t.name, t.addr, t.age, t.phone)
end

编辑

否则,如果您不想更改 的结构t,则可以更改迭代器生成函数以跟踪索引:

t = {
    {name = "Mike", addr = "738 Rose Rd", age = 30, phone = "333-902-6543"},
    {name = "Steph", addr = "1010 Mustang Dr", age = 28, phone = "555-842-0606"},
    {name = "George", addr = "211 Glass St", age = 34, phone = "111-294-9903"},
}

function pairsByAgeField(t,f)
    local a = {}
    local index = {}

    for _, x in pairs(t) do
        local age = x.age
        a[#a + 1] = age
        index[age] = x
    end

    table.sort(a,f)
    local i = 0
    return function ()
        i = i + 1
        return a[i], index[a[i]]
    end
end


for a,t in pairsByAgeField(t) do
    print (t.name, t.addr, t.age, t.phone)
end

当然,这pairsByAgeField比您的原始表格更不适用pairsByKeys(它假设被迭代的表具有给定的结构),但如果您经常需要处理t应用程序中的表格,这不是问题。

于 2013-10-03T19:46:11.300 回答