我正在使用指南针,在下面的代码中我想#fff用透明度替换@include filter-gradient. 但是没有用于透明度的十六进制代码,所以我使用transparent了但它给出了错误syntax error "transparent" is not a color for 'ie-hex-str'
@include filter-gradient(#f3f2f3, transparent, vertical);
$experimental-support-for-svg: true;
@include background-image(linear-gradient(top, #f3f2f3 0%,#eaeae9 68%,#cfcece 70%,transparent 73%,transparent 100%));