如何在html +php中渲染树(CodeIgniter)
如何在html +php中渲染树(CodeIgniter)
提问于 2012-07-09 01:44:14
我有一个邻接模型列表,查询如下:
SELECT t1.FIO AS lev1, t2.FIO AS lev2, t3.FIO AS lev3, t4.FIO AS lev4, t5.FIO AS lev5, t6.FIO AS lev6, t7.FIO AS lev7, t8.FIO AS lev8, t9.FIO AS lev9, t10.FIO AS lev10, t11.FIO AS lev11, t12.FIO AS lev12, t13.FIO AS lev13, t14.FIO AS lev14, t15.FIO AS lev15, t16.FIO AS lev16, t17.FIO AS lev17, t18.FIO AS lev18, t19.FIO AS lev19, t20.FIO AS lev20, t21.FIO AS lev21, t22.FIO AS lev22, t23.FIO AS lev23, t24.FIO AS lev24 FROM users AS t1 LEFT JOIN users AS t2 ON t2.parent_id = t1.id LEFT JOIN users AS t3 ON t3.parent_id = t2.id LEFT JOIN users AS t4 ON t4.parent_id = t3.id LEFT JOIN users AS t5 ON t5.parent_id = t4.id LEFT JOIN users AS t6 ON t6.parent_id = t5.id LEFT JOIN users AS t7 ON t7.parent_id = t6.id LEFT JOIN users AS t8 ON t8.parent_id = t7.id LEFT JOIN users AS t9 ON t9.parent_id = t8.id LEFT JOIN users AS t10 ON t10.parent_id = t9.id LEFT JOIN users AS t11 ON t11.parent_id = t10.id LEFT JOIN users AS t12 ON t12.parent_id = t11.id LEFT JOIN users AS t13 ON t13.parent_id = t12.id LEFT JOIN users AS t14 ON t14.parent_id = t13.id LEFT JOIN users AS t15 ON t15.parent_id = t14.id LEFT JOIN users AS t16 ON t16.parent_id = t15.id LEFT JOIN users AS t17 ON t17.parent_id = t16.id LEFT JOIN users AS t18 ON t18.parent_id = t17.id LEFT JOIN users AS t19 ON t19.parent_id = t18.id LEFT JOIN users AS t20 ON t20.parent_id = t19.id LEFT JOIN users AS t21 ON t21.parent_id = t20.id LEFT JOIN users AS t22 ON t22.parent_id = t21.id LEFT JOIN users AS t23 ON t23.parent_id = t22.id LEFT JOIN users AS t24 ON t24.parent_id = t23.id LEFT JOIN users AS t25 ON t25.parent_id = t24.id WHERE t1.id = 16这是一个使用邻接模型列表进行24级深度的查询
在那之后,我做了这个:
<? for($i = 0; $i < $query->num_rows(); $i++): ?>
<? $row = $query->row($i); ?>
<? for($n = 1; $n < 25; $n++): ?>
<? $lev = "lev$n"; ?>
<?= $row->$lev; ?>
<? endfor; ?>
<? endfor; ?>它只渲染每一行的字段,我真的不知道如何让它具有层次结构,我正在使用codeigniter,在这里使用行还是对象更好??
我需要做这样的事情:
root_parent {
parent_1 {
child_1.name
child_2.name
child_3.name
}
parent_2 {
child_1.name
child_2.name
child_3.name
}
parent_3 {
child_1.name
child_2.name
child_3.name
}
}没有重复,这是可能的吗?
回答 1
Stack Overflow用户
回答已采纳
发布于 2012-07-09 02:49:30
你在这里做的事情看起来有点复杂和僵化,吉尔斯。用每一行都有自己的category_id和parent_id来创建数据库表不是更好吗?也就是说,给最高级别的父母一个0的parent_id,孩子就会得到父母的category_id的parent_id。这将给你无限的深度,并且在你渲染树的时候更容易编码。例如:
SQL用于您的第一级层次结构-
SELECT * FROM (your_table) WHERE parent_id=0
SQL用于您的第二级层次结构-
SELECT * FROM (your_table) WHERE parent_id=(category_id of first level)
SQL用于您的第三层次结构-
SELECT * FROM (your_table) WHERE parent_id=(category_id of second level)
以此类推。
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原文链接:
https://stackoverflow.com/questions/11385250
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