由于业务需要,要求实现树形菜单,且菜单数据由后台返回,在网上找了几篇文章,看下来总算有了解决办法。
场景:根据业务要求,需要实现活动的树形菜单,菜单数据由后台返回,最后的效果图如下:
后台返回的数据格式是这个样子的:
data=[{ pID:'1',//父ID name:'目录一', menuID:'m1',//本身ID isContent:false//判断是否是目录 }, { pID:'1', name:'目录二', menuID:'m2', isContent:false }, { pID:'m1', name:'目录一--菜单一', menuID:'m11', isContent:true }, { pID:'m1', name:'目录一--目录一', menuID:'m12', isContent:false }, { pID:'m12', name:'目录一--目录一--菜单一', menuID:'m121', isContent:true }, { pID:'m2', name:'目录二--菜单一', menuID:'m21', isContent:true }, { pID:'m2', name:'目录二--菜单二', menuID:'m22', isContent:true }, ]
这是一串具有父子关系的数据,首先就是要把这一大串数据转化成树形结构:
tree(){ let data=[{ pID:'1',//父ID name:'目录一', menuID:'m1',//本身ID isContent:false//判断是否是目录 }, { pID:'1', name:'目录二', menuID:'m2', isContent:false }, { pID:'m1', name:'目录一--菜单一', menuID:'m11', isContent:true }, { pID:'m1', name:'目录一--目录一', menuID:'m12', isContent:false }, { pID:'m12', name:'目录一--目录一--菜单一', menuID:'m121', isContent:true }, { pID:'m2', name:'目录二--菜单一', menuID:'m21', isContent:true }, { pID:'m2', name:'目录二--菜单二', menuID:'m22', isContent:true }, ] let tree = [] for(let i=0;i<data.length;i++){ if(data[i].pID == '1'){ let obj = data[i] obj.list = [] tree.push(obj) data.splice(i,1) i-- } } menuList(tree) console.log(tree) function menuList(arr){ if(data.length !=0){ for(let i=0; i<arr.length;i++){ for(let j=0;j<data.length;j++){ if(data[j].pID == arr[i].menuID){ let obj = data[j] obj.list = [] arr[i].list.push(obj) data.splice(j,1) j-- } } menuList(arr[i].list) } } } }
运行完后返回的结构就是这个样子:
[{"pID":"1","name":"目录一","menuID":"m1","isContent":false,"list":[{"pID":"m1","name":"目录一--菜单一","menuID":"m11","isContent":true,"list":[]},{"pID":"m1","name":"目录一--目录一","menuID":"m12","isContent":false,"list":[{"pID":"m12","name":"目录一--目录一--菜单一","menuID":"m121","isContent":true,"list":[]}]}]},{"pID":"1","name":"目录二","menuID":"m2","isContent":false,"list":[{"pID":"m2","name":"目录二--菜单一","menuID":"m21","isContent":true,"list":[]},{"pID":"m2","name":"目录二--菜单二","menuID":"m22","isContent":true,"list":[]}]}]
接下来就要展示了,项目中用的element-ui的导航菜单组件,为了实现这样的树形结构,将每一级的菜单单独作为一个组件,通过判断isContent的值来递归。我直接把代码贴出来
<el-menu theme="dark" :default-active="openMenuID" :default-openeds="openMenuArr" class="el-menu" @select="handleSelect"> <template v-for="(item,index) in menuList"> <el-submenu :index=item.menuID v-if="item.IsContent"> <template slot="title"> <i class="el-icon-menu"></i> {{item.name}} </template> <tree-menu :data="item.list"></tree-menu> </el-submenu> <el-menu-item :index=item.menuID v-else>{{item.name}}</el-menu-item> </template> </el-menu>
tree-menu组件的代码:
<template v-for="(menu,index) in data"> <el-submenu :index=menu.menuID v-if="menu.IsContent"> <template slot="title"> <i class="el-icon-plus"></i> {{menu.name}}</template> <tree-menu :data="menu.list"></tree-menu> </el-submenu> <el-menu-item v-else :index=menu.menuID> {{menu.name}} </el-menu-item> </template>
总结
以上所述是小编给大家介绍的vue.js与element-ui实现菜单树形结构的解决方法,希望对大家有所帮助,如果大家有任何疑问欢迎给我留言,小编会及时回复大家的!