问题
In a bash script I have an IP address like 192.168.1.15 and a netmask like 255.255.0.0. I now want to calculate the start address of this network, that means using the &-operator on both addresses. In the example, the result would be 192.168.0.0. Does someone have something like this ready? I'm looking for an elegant way to deal with ip addresses from bash
回答1:
Use bitwise & (AND) operator:
$ IFS=. read -r i1 i2 i3 i4 <<< "192.168.1.15"
$ IFS=. read -r m1 m2 m3 m4 <<< "255.255.0.0"
$ printf "%d.%d.%d.%d\n" "$((i1 & m1))" "$((i2 & m2))" "$((i3 & m3))" "$((i4 & m4))"
192.168.0.0
Example with another IP and mask:
$ IFS=. read -r i1 i2 i3 i4 <<< "10.0.14.97"
$ IFS=. read -r m1 m2 m3 m4 <<< "255.255.255.248"
$ printf "%d.%d.%d.%d\n" "$((i1 & m1))" "$((i2 & m2))" "$((i3 & m3))" "$((i4 & m4))"
10.0.14.96
回答2:
Some Bash functions summarizing all other answers.
ip2int()
{
local a b c d
{ IFS=. read a b c d; } <<< $1
echo $(((((((a << 8) | b) << 8) | c) << 8) | d))
}
int2ip()
{
local ui32=$1; shift
local ip n
for n in 1 2 3 4; do
ip=$((ui32 & 0xff))${ip:+.}$ip
ui32=$((ui32 >> 8))
done
echo $ip
}
netmask()
# Example: netmask 24 => 255.255.255.0
{
local mask=$((0xffffffff << (32 - $1))); shift
int2ip $mask
}
broadcast()
# Example: broadcast 192.0.2.0 24 => 192.0.2.255
{
local addr=$(ip2int $1); shift
local mask=$((0xffffffff << (32 -$1))); shift
int2ip $((addr | ~mask))
}
network()
# Example: network 192.0.2.0 24 => 192.0.2.0
{
local addr=$(ip2int $1); shift
local mask=$((0xffffffff << (32 -$1))); shift
int2ip $((addr & mask))
}
回答3:
Just adding an alternative if you have only network prefix available (no netmask):
IP=10.20.30.240
PREFIX=26
IFS=. read -r i1 i2 i3 i4 <<< $IP
IFS=. read -r xx m1 m2 m3 m4 <<< $(for a in $(seq 1 32); do if [ $(((a - 1) % 8)) -eq 0 ]; then echo -n .; fi; if [ $a -le $PREFIX ]; then echo -n 1; else echo -n 0; fi; done)
printf "%d.%d.%d.%d\n" "$((i1 & (2#$m1)))" "$((i2 & (2#$m2)))" "$((i3 & (2#$m3)))" "$((i4 & (2#$m4)))"
回答4:
Great answer, though minor typo in answer above.
$ printf "%d.%d.%d.%d\n" "$((i1 & m1))" "$(($i2 <-- $i2 should be i2
If anyone knows how to calculate the broadcast address (XOR the network), then calculate the usable nodes between network and broadcast I'd be interested in those next steps. I have to find addresses in a list within a /23.
回答5:
In addition to @Janci answer
IP=10.20.30.240
PREFIX=26
IFS=. read -r i1 i2 i3 i4 <<< $IP
D2B=({0..1}{0..1}{0..1}{0..1}{0..1}{0..1}{0..1}{0..1})
binIP=${D2B[$i1]}${D2B[$i2]}${D2B[$i3]}${D2B[$i4]}
binIP0=${binIP::$PREFIX}$(printf '0%.0s' $(seq 1 $((32-$PREFIX))))
# binIP1=${binIP::$PREFIX}$(printf '0%.0s' $(seq 1 $((31-$PREFIX))))1
echo $((2#${binIP0::8})).$((2#${binIP0:8:8})).$((2#${binIP0:16:8})).$((2#${binIP0:24:8}))
来源:https://stackoverflow.com/questions/15429420/given-the-ip-and-netmask-how-can-i-calculate-the-network-address-using-bash