介绍
在lua中删除表中符合条件的数据其实很简单,但是有一个顺序问题,因为lua的表中的数据删除需要通过table.remove来删除,当你删除前一个后,索引值发生了变化。
问题(错误方式删除数据)
--测试lua表
local tab1 = {
[1] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
[2] = {
Id = 105,
value1 = 1,
value2 = 2,
value3 = 3,
},
[3] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
[4] = {
Id = 108,
value1 = 1,
value2 = 2,
value3 = 3,
},
[5] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
}
--错误方式一
for k, v in pairs(tab1) do
if(v.Id == 101) then
table.remove(table,k)
end
end
--与上面删除方式相同(换了个写法)
for i = 1, #tab1 do
if(tab1[i].Id == 101) then
table.remove(table,i)
end
end
--错误方式二
local index = 1
for i = 1, #tab1 do
if(tab1[i].Id == 101) then
table.remove(table,index)
index = index - 1
end
index = index + 1
end
上面这两种方式都是错误的,最终打印并不是实际想象中的打印
正确删除方案
从后向前删除
--测试数据的lua表
local tab1 = {
[1] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
[2] = {
Id = 105,
value1 = 1,
value2 = 2,
value3 = 3,
},
[3] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
[4] = {
Id = 108,
value1 = 1,
value2 = 2,
value3 = 3,
},
[5] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
}
this.RemoveTabValue(tab1,101)
for k, v in pairs(tab1) do
logError("k ========>"..tostring(k))
logError("v.Id ========>"..v.Id)
end
function this.RemoveTabValue(tab,Id)
for i = #tab, 1 ,-1 do
if tab[i].Id == Id then
table.remove(tab,i)
end
end
end
打印如下
递归方式删除
--测试数据的lua表
local tab1 = {
[1] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
[2] = {
Id = 105,
value1 = 1,
value2 = 2,
value3 = 3,
},
[3] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
[4] = {
Id = 108,
value1 = 1,
value2 = 2,
value3 = 3,
},
[5] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
}
this.RemoveTabValue(tab1,101)
for k, v in pairs(tab1) do
logError("k ========>"..tostring(k))
logError("v.Id ========>"..v.Id)
end
--递归方法
function this.RemoveTabValue(tab,Id)
for k, v in pairs(tab) do
if v.Id == Id then
table.remove(tab,k)
this.RemoveTabValue(tab,Id)
break
end
end
end
打印如下
插入新表方式
--测试数据的lua表
local tab1 = {
[1] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
[2] = {
Id = 105,
value1 = 1,
value2 = 2,
value3 = 3,
},
[3] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
[4] = {
Id = 108,
value1 = 1,
value2 = 2,
value3 = 3,
},
[5] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
}
local newtab = {
}
for k, v in pairs(tab1) do
if v.Id == 101 then
table.insert(newtab, v)
end
end
--这里我没有写将tab1表删除的方法,等于还占有内存,所以相当于开辟了新内存空间
--可以自己删除原tab1表的数据,或者使用上面两种方式
--此方法占用额外内存空间
for k, v in pairs(newtab) do
logError("k ========>"..tostring(k))
logError("v.Id ========>"..v.Id)
end
打印如下
拓展一下
这里知识简单说一下,如果是遇见下面这种字典类型的lua表
- #tab1长度结果是3不是5,剔除了[true]和[“a”]不算(不识别非数字为k的键值对)
- 只能用pairs的方式才能读取出所有键值对,如果用ipairs只能读取出[1][2][3]数字为k的键值对
local tab1 = {
[1] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
[2] = {
Id = 105,
value1 = 1,
value2 = 2,
value3 = 3,
},
[3] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
[true] = {
Id = 108,
value1 = 1,
value2 = 2,
value3 = 3,
},
["a"] = {
Id = 101,
value1 = 1,
value2 = 2,
value3 = 3,
},
}
总结
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