| 12345678910111213141516171819202122232425262728293031323334353637383940414243444546474849505152535455565758596061626364656667686970717273747576777879808182 | package netimport (	"math/bits"	"net")type IPNet struct {	cache map[uint32]byte}func NewIPNet() *IPNet {	return &IPNet{		cache: make(map[uint32]byte, 1024),	}}func ipToUint32(ip net.IP) uint32 {	value := uint32(0)	for _, b := range []byte(ip) {		value <<= 8		value += uint32(b)	}	return value}func ipMaskToByte(mask net.IPMask) byte {	value := byte(0)	for _, b := range []byte(mask) {		value += byte(bits.OnesCount8(b))	}	return value}func (n *IPNet) Add(ipNet *net.IPNet) {	ipv4 := ipNet.IP.To4()	if ipv4 == nil {		// For now, we don't support IPv6		return	}	mask := ipMaskToByte(ipNet.Mask)	n.AddIP(ipv4, mask)}func (n *IPNet) AddIP(ip []byte, mask byte) {	k := ipToUint32(ip)	existing, found := n.cache[k]	if !found || existing > mask {		n.cache[k] = mask	}}func (n *IPNet) Contains(ip net.IP) bool {	ipv4 := ip.To4()	if ipv4 == nil {		return false	}	originalValue := ipToUint32(ipv4)	if entry, found := n.cache[originalValue]; found {		if entry == 32 {			return true		}	}	mask := uint32(0)	for maskbit := byte(1); maskbit <= 32; maskbit++ {		mask += 1 << uint32(32-maskbit)		maskedValue := originalValue & mask		if entry, found := n.cache[maskedValue]; found {			if entry == maskbit {				return true			}		}	}	return false}func (n *IPNet) IsEmpty() bool {	return len(n.cache) == 0}
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