当我使用 set -e 选项时,下面的简化循环会随机退出。 如果我删除 set -e 选项,它总是完成。 如果可能的话,我想使用 set -e 选项,但到目前为止,我不知道为什么它会退出以及为什么每次运行它时它都会在随机循环迭代中发生(试试吧! 如您所见,唯一的命令是 let 和 echo。 为什么 let 或 echo 命令会在随机时间返回非零代码,还是发生了其他事情?
#!/bin/bash
# Do Release configuration builds so we can set the build parameters
set -e
CFG=Release
for CASE in {0..511}
do
# CASE [0...511] iterate
# MMMM [2...255] random test cases
# NNNN [1..MMMM) random test cases
# RRRR [0...255] random test cases
# XXXX [0...255] random test cases
# DSXX [1...128] random test cases
# OASM [1...255] random test cases
# OLSM [1...255] random test cases
let "MMMM = $RANDOM % 254 + 2"
let "NNNN = $RANDOM % ($MMMM - 1) + 1"
let "RRRR = $RANDOM % 256"
let "XXXX = $RANDOM % 256"
let "DSXX = $RANDOM % 128 + 1"
let "OASM = $RANDOM % 255 + 1"
let "OLSM = $RANDOM % 255 + 1"
echo CFG = $CFG, CASE = $CASE, MMMM = $MMMM, NNNN = $NNNN, RRRR = $RRRR, XXXX = $XXXX, DSXX = $DSXX, OASM = $OASM, and OLSM = $OLSM
# Some other stuff (build and test), that is not causing the problem, goes here
done
# Some other stuff, that is not causing the problem, goes here
exit 0
将
|| true追加到let命令或使用$((...))进行计算。
从help let :
退出状态:如果最后一个 ARG 的计算结果为 0,则 let 返回 1;否则返回 0。