sql例子
select * from plat_material_resource
where stl_url LIKE '/data1/upload%'
--截取字符串
UPDATE plat_material_resource
SET stl_url = RIGHT (
stl_url,
LENGTH(stl_url) - LENGTH('/data1/upload')
)
WHERE
stl_url LIKE '/data1/upload%'
给笨笨的自己提个醒>_<~
