huuyann

摘要： 1.+到n for i in {1..n}doa=$(($a+$i))doneecho $a 2. for((a=0;a<=9;a++))doq[$a]=$a#echo $((q[$a]))for((b=0;b<=a;b++))doecho -e "$((q[$b]))\c"doneecho " " 阅读全文