我定义了一对json数据 键值对的方式 K 代表Key V代表Values
values带有\r\n(换行符)
也就是说我想将两个PHP数组进行合并,将K和Value完全相同就忽略一个,如果K相同,V不同,就将V进行合并,值的合并方式也是,同slpit得到数组,然后取一个交集
[
{'K':'k111111','V':'v11111\r\nV11112\r\nV11113'},
{'K':'k22222','V':'v22222'},
{'K':'k33333,'V':'v33333'},
{'K':'k44444','V':'v44443\r\nv44444'}
]
PHP json_decode 函数之后得到数组
第二个json
[
{'K':'k111111','V':'v11111'},
{'K':'k33333,'V':'v33333'},
{'K':'k44444','V':'v44444\r\nv44445\r\nv44446'},
{'K':'k55555','V':'v55555'}
]
得到的结果:
[
{'K':'k111111','V':'v11111\r\nV11112\r\nV11113'},
{'K':'k22222','V':'v22222'},
{'K':'k33333,'V':'v33333'},
{'K':'k44444','V':'v44443\r\nv44444\r\nv44445\r\nv44446'},
{'K':'k55555','V':'v55555'}
]
也就是说K
请问 各位大神们,如何实现
错了 不取交集,取数量多的那个
没人 来人啊 大神们啊
$a =<<< 'JSON'[{'K':'k111111','V':'v11111\r\nV11112\r\nV11113'},{'K':'k22222','V':'v22222'},{'K':'k33333','V':'v33333'},{'K':'k44444','V':'v44443\r\nv44444'}]JSON;$a = str_replace("'", '"', $a);$a = json_decode($a, 1);$b =<<< 'JSON'[{'K':'k111111','V':'v11111'},{'K':'k33333','V':'v33333'},{'K':'k44444','V':'v44444\r\nv44445\r\nv44446'},{'K':'k55555','V':'v55555'}]JSON;$b = str_replace("'", '"', $b);$b = json_decode($b, 1);$res = array();foreach($a as $r) $res[$r['K']] = $r;foreach($b as $r) { $k = $r['K']; if(! isset($res[$k])) { $res[$k] = $r; continue; } if($res[$k]['V'] == $r['V']) continue; $res[$k]['V'] = join("\r\n", array_unique(array_merge(explode("\r\n", $res[$k]['V']), explode("\r\n", $r['V']))));}echo json_encode(array_values($res));[{"K":"k111111","V":"v11111\r\nV11112\r\nV11113"},{"K":"k22222","V":"v22222"},{"K":"k33333","V":"v33333"},{"K":"k44444","V":"v44443\r\nv44444\r\nv44445\r\nv44446"},{"K":"k55555","V":"v55555"}]
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