
Prepatory work fpr removing cloud provider dependency from node controller running in Kube Controller Manager. Splitting the node controller into its two major pieces life-cycle and CIDR/IP management. Both pieces currently need the the cloud system to do their work. Removing lifecycles dependency on cloud will be fixed ina followup PR. Moved node scheduler code to live with node lifecycle controller. Got the IPAM/Lifecycle split completed. Still need to rename pieces. Made changes to the utils and tests so they would be in the appropriate package. Moved the node based ipam code to nodeipam. Made the relevant tests pass. Moved common node controller util code to nodeutil. Removed unneeded pod informer sync from node ipam controller. Fixed linter issues. Factored in feedback from @gmarek. Factored in feedback from @mtaufen. Undoing unneeded change.
265 lines
7.7 KiB
Go
265 lines
7.7 KiB
Go
/*
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Copyright 2016 The Kubernetes Authors.
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Licensed under the Apache License, Version 2.0 (the "License");
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you may not use this file except in compliance with the License.
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You may obtain a copy of the License at
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http://www.apache.org/licenses/LICENSE-2.0
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Unless required by applicable law or agreed to in writing, software
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distributed under the License is distributed on an "AS IS" BASIS,
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WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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See the License for the specific language governing permissions and
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limitations under the License.
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*/
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package cidrset
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import (
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"encoding/binary"
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"errors"
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"fmt"
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"math/big"
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"math/bits"
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"net"
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"sync"
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)
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// CidrSet manages a set of CIDR ranges from which blocks of IPs can
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// be allocated from.
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type CidrSet struct {
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sync.Mutex
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clusterCIDR *net.IPNet
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clusterIP net.IP
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clusterMaskSize int
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maxCIDRs int
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nextCandidate int
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used big.Int
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subNetMaskSize int
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}
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const (
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// The subnet mask size cannot be greater than 16 more than the cluster mask size
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// TODO: https://github.com/kubernetes/kubernetes/issues/44918
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// clusterSubnetMaxDiff limited to 16 due to the uncompressed bitmap
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clusterSubnetMaxDiff = 16
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// halfIPv6Len is the half of the IPv6 length
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halfIPv6Len = net.IPv6len / 2
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)
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var (
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// ErrCIDRRangeNoCIDRsRemaining occurs when there is no more space
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// to allocate CIDR ranges.
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ErrCIDRRangeNoCIDRsRemaining = errors.New(
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"CIDR allocation failed; there are no remaining CIDRs left to allocate in the accepted range")
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// ErrCIDRSetSubNetTooBig occurs when the subnet mask size is too
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// big compared to the CIDR mask size.
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ErrCIDRSetSubNetTooBig = errors.New(
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"New CIDR set failed; the node CIDR size is too big")
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)
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// NewCIDRSet creates a new CidrSet.
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func NewCIDRSet(clusterCIDR *net.IPNet, subNetMaskSize int) (*CidrSet, error) {
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clusterMask := clusterCIDR.Mask
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clusterMaskSize, _ := clusterMask.Size()
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var maxCIDRs int
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if (clusterCIDR.IP.To4() == nil) && (subNetMaskSize-clusterMaskSize > clusterSubnetMaxDiff) {
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return nil, ErrCIDRSetSubNetTooBig
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}
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maxCIDRs = 1 << uint32(subNetMaskSize-clusterMaskSize)
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return &CidrSet{
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clusterCIDR: clusterCIDR,
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clusterIP: clusterCIDR.IP,
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clusterMaskSize: clusterMaskSize,
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maxCIDRs: maxCIDRs,
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subNetMaskSize: subNetMaskSize,
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}, nil
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}
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func (s *CidrSet) indexToCIDRBlock(index int) *net.IPNet {
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var ip []byte
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var mask int
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switch /*v4 or v6*/ {
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case s.clusterIP.To4() != nil:
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{
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j := uint32(index) << uint32(32-s.subNetMaskSize)
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ipInt := (binary.BigEndian.Uint32(s.clusterIP)) | j
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ip = make([]byte, 4)
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binary.BigEndian.PutUint32(ip, ipInt)
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mask = 32
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}
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case s.clusterIP.To16() != nil:
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{
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// leftClusterIP | rightClusterIP
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// 2001:0DB8:1234:0000:0000:0000:0000:0000
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const v6NBits = 128
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const halfV6NBits = v6NBits / 2
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leftClusterIP := binary.BigEndian.Uint64(s.clusterIP[:halfIPv6Len])
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rightClusterIP := binary.BigEndian.Uint64(s.clusterIP[halfIPv6Len:])
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leftIP, rightIP := make([]byte, halfIPv6Len), make([]byte, halfIPv6Len)
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if s.subNetMaskSize <= halfV6NBits {
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// We only care about left side IP
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leftClusterIP |= uint64(index) << uint(halfV6NBits-s.subNetMaskSize)
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} else {
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if s.clusterMaskSize < halfV6NBits {
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// see how many bits are needed to reach the left side
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btl := uint(s.subNetMaskSize - halfV6NBits)
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indexMaxBit := uint(64 - bits.LeadingZeros64(uint64(index)))
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if indexMaxBit > btl {
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leftClusterIP |= uint64(index) >> btl
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}
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}
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// the right side will be calculated the same way either the
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// subNetMaskSize affects both left and right sides
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rightClusterIP |= uint64(index) << uint(v6NBits-s.subNetMaskSize)
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}
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binary.BigEndian.PutUint64(leftIP, leftClusterIP)
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binary.BigEndian.PutUint64(rightIP, rightClusterIP)
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ip = append(leftIP, rightIP...)
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mask = 128
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}
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}
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return &net.IPNet{
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IP: ip,
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Mask: net.CIDRMask(s.subNetMaskSize, mask),
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}
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}
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// AllocateNext allocates the next free CIDR range. This will set the range
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// as occupied and return the allocated range.
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func (s *CidrSet) AllocateNext() (*net.IPNet, error) {
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s.Lock()
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defer s.Unlock()
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nextUnused := -1
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for i := 0; i < s.maxCIDRs; i++ {
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candidate := (i + s.nextCandidate) % s.maxCIDRs
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if s.used.Bit(candidate) == 0 {
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nextUnused = candidate
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break
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}
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}
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if nextUnused == -1 {
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return nil, ErrCIDRRangeNoCIDRsRemaining
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}
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s.nextCandidate = (nextUnused + 1) % s.maxCIDRs
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s.used.SetBit(&s.used, nextUnused, 1)
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return s.indexToCIDRBlock(nextUnused), nil
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}
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func (s *CidrSet) getBeginingAndEndIndices(cidr *net.IPNet) (begin, end int, err error) {
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begin, end = 0, s.maxCIDRs-1
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cidrMask := cidr.Mask
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maskSize, _ := cidrMask.Size()
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var ipSize int
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if cidr == nil {
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return -1, -1, fmt.Errorf("Error getting indices for cluster cidr %v, cidr is nil", s.clusterCIDR)
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}
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if !s.clusterCIDR.Contains(cidr.IP.Mask(s.clusterCIDR.Mask)) && !cidr.Contains(s.clusterCIDR.IP.Mask(cidr.Mask)) {
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return -1, -1, fmt.Errorf("cidr %v is out the range of cluster cidr %v", cidr, s.clusterCIDR)
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}
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if s.clusterMaskSize < maskSize {
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ipSize = net.IPv4len
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if cidr.IP.To4() == nil {
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ipSize = net.IPv6len
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}
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subNetMask := net.CIDRMask(s.subNetMaskSize, ipSize*8)
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begin, err = s.getIndexForCIDR(&net.IPNet{
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IP: cidr.IP.Mask(subNetMask),
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Mask: subNetMask,
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})
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if err != nil {
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return -1, -1, err
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}
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ip := make([]byte, ipSize)
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if cidr.IP.To4() != nil {
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ipInt := binary.BigEndian.Uint32(cidr.IP) | (^binary.BigEndian.Uint32(cidr.Mask))
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binary.BigEndian.PutUint32(ip, ipInt)
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} else {
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// ipIntLeft | ipIntRight
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// 2001:0DB8:1234:0000:0000:0000:0000:0000
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ipIntLeft := binary.BigEndian.Uint64(cidr.IP[:net.IPv6len/2]) | (^binary.BigEndian.Uint64(cidr.Mask[:net.IPv6len/2]))
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ipIntRight := binary.BigEndian.Uint64(cidr.IP[net.IPv6len/2:]) | (^binary.BigEndian.Uint64(cidr.Mask[net.IPv6len/2:]))
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binary.BigEndian.PutUint64(ip[:net.IPv6len/2], ipIntLeft)
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binary.BigEndian.PutUint64(ip[net.IPv6len/2:], ipIntRight)
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}
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end, err = s.getIndexForCIDR(&net.IPNet{
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IP: net.IP(ip).Mask(subNetMask),
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Mask: subNetMask,
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})
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if err != nil {
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return -1, -1, err
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}
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}
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return begin, end, nil
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}
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// Release releases the given CIDR range.
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func (s *CidrSet) Release(cidr *net.IPNet) error {
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begin, end, err := s.getBeginingAndEndIndices(cidr)
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if err != nil {
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return err
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}
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s.Lock()
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defer s.Unlock()
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for i := begin; i <= end; i++ {
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s.used.SetBit(&s.used, i, 0)
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}
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return nil
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}
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// Occupy marks the given CIDR range as used. Occupy does not check if the CIDR
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// range was previously used.
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func (s *CidrSet) Occupy(cidr *net.IPNet) (err error) {
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begin, end, err := s.getBeginingAndEndIndices(cidr)
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if err != nil {
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return err
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}
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s.Lock()
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defer s.Unlock()
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for i := begin; i <= end; i++ {
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s.used.SetBit(&s.used, i, 1)
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}
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return nil
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}
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func (s *CidrSet) getIndexForCIDR(cidr *net.IPNet) (int, error) {
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return s.getIndexForIP(cidr.IP)
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}
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func (s *CidrSet) getIndexForIP(ip net.IP) (int, error) {
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if ip.To4() != nil {
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cidrIndex := (binary.BigEndian.Uint32(s.clusterIP) ^ binary.BigEndian.Uint32(ip.To4())) >> uint32(32-s.subNetMaskSize)
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if cidrIndex >= uint32(s.maxCIDRs) {
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return 0, fmt.Errorf("CIDR: %v/%v is out of the range of CIDR allocator", ip, s.subNetMaskSize)
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}
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return int(cidrIndex), nil
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}
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if ip.To16() != nil {
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bigIP := big.NewInt(0).SetBytes(s.clusterIP)
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bigIP = bigIP.Xor(bigIP, big.NewInt(0).SetBytes(ip))
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cidrIndexBig := bigIP.Rsh(bigIP, uint(net.IPv6len*8-s.subNetMaskSize))
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cidrIndex := cidrIndexBig.Uint64()
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if cidrIndex >= uint64(s.maxCIDRs) {
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return 0, fmt.Errorf("CIDR: %v/%v is out of the range of CIDR allocator", ip, s.subNetMaskSize)
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}
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return int(cidrIndex), nil
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}
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return 0, fmt.Errorf("invalid IP: %v", ip)
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}
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