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I have an IP like this: 12.12.12.12
I'm looping through different IP ranges (in 12.12.12.0/24 (example)) format, and trying to see if the IP is in the range.
I have tried various methods such as inet_addr and comparing but I can't seem to get it.
Is there an easy way to do this? I'm using Windows.

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Related: stackoverflow.com/questions/1507579/… –  Marc B Sep 26 '11 at 18:53
    
That's PHP, as you can see from the tags i'm using C++ –  seth Sep 26 '11 at 18:54

2 Answers 2

up vote 5 down vote accepted

Just test whether:

(ip & netmask) == (range & netmask)

You can determine the netmask from the CIDR parameters range/netbits as follows:

uint32_t netmask = ~(~uint32_t(0) >> netbits);
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a ntohl conversion could be required before doing this. –  KillianDS Sep 26 '11 at 19:04
    
@KillianDS: I'm assuming that the parsing process yields an address in local byte order, but you're right, it is something to double-check, especially since inet_addr returns network byte order. –  Ben Voigt Sep 26 '11 at 19:08
    
Do you see something wrong here? Seems to print for every single one: int cidr = atoi(cdrbuf); unsigned long ulstart = ntohl(inet_addr(clip)); unsigned long ulcheck = ntohl(inet_addr("12.12.12.12")); unsigned long netmask = ~unsigned long(~0ULL >> cidr); if((ulcheck & netmask) == (cidr & netmask)) printf("%s\n", pch); –  seth Sep 26 '11 at 19:09
1  
~uint32_t(0) is a funny way of writing 0xffffffffu. –  caf Sep 27 '11 at 6:56
1  
@Ben Voigt: Then 0xffffffffu will have type unsigned long, and still have the same value. Read up on the rules for constants. –  caf Sep 27 '11 at 21:45

Take the binary representation and zero out what is not matching your network mask.

Clarification: Let's say you have the IP a.b.c.d and want to match it to e.f.g.h/i then, you can throw the IP into one unsigned integer, uint32_t ip = a<<24 + b<<16 + c<<8 + d and do the same with uint32_t range = e<<24 + f<<16 + g<<8 + h. Now you can use your network mask: uint32_t mask = (~0u) << (32-i). Now, you can simply check if ip "is in" range by comparing them: ip & mask == range & mask.

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The iteration evidently comes from testing against a whole mess of ranges. –  Ben Voigt Sep 26 '11 at 18:56
    
@Ben Voigt: I must have missed that. You're right. –  bitmask Sep 26 '11 at 19:03

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