github.com/spotify/syslog-redirector-golang@v0.0.0-20140320174030-4859f03d829a/src/pkg/net/ip.go (about)

     1  // Copyright 2009 The Go Authors. All rights reserved.
     2  // Use of this source code is governed by a BSD-style
     3  // license that can be found in the LICENSE file.
     4  
     5  // IP address manipulations
     6  //
     7  // IPv4 addresses are 4 bytes; IPv6 addresses are 16 bytes.
     8  // An IPv4 address can be converted to an IPv6 address by
     9  // adding a canonical prefix (10 zeros, 2 0xFFs).
    10  // This library accepts either size of byte slice but always
    11  // returns 16-byte addresses.
    12  
    13  package net
    14  
    15  import "errors"
    16  
    17  // IP address lengths (bytes).
    18  const (
    19  	IPv4len = 4
    20  	IPv6len = 16
    21  )
    22  
    23  // An IP is a single IP address, a slice of bytes.
    24  // Functions in this package accept either 4-byte (IPv4)
    25  // or 16-byte (IPv6) slices as input.
    26  //
    27  // Note that in this documentation, referring to an
    28  // IP address as an IPv4 address or an IPv6 address
    29  // is a semantic property of the address, not just the
    30  // length of the byte slice: a 16-byte slice can still
    31  // be an IPv4 address.
    32  type IP []byte
    33  
    34  // An IP mask is an IP address.
    35  type IPMask []byte
    36  
    37  // An IPNet represents an IP network.
    38  type IPNet struct {
    39  	IP   IP     // network number
    40  	Mask IPMask // network mask
    41  }
    42  
    43  // IPv4 returns the IP address (in 16-byte form) of the
    44  // IPv4 address a.b.c.d.
    45  func IPv4(a, b, c, d byte) IP {
    46  	p := make(IP, IPv6len)
    47  	copy(p, v4InV6Prefix)
    48  	p[12] = a
    49  	p[13] = b
    50  	p[14] = c
    51  	p[15] = d
    52  	return p
    53  }
    54  
    55  var v4InV6Prefix = []byte{0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0xff, 0xff}
    56  
    57  // IPv4Mask returns the IP mask (in 4-byte form) of the
    58  // IPv4 mask a.b.c.d.
    59  func IPv4Mask(a, b, c, d byte) IPMask {
    60  	p := make(IPMask, IPv4len)
    61  	p[0] = a
    62  	p[1] = b
    63  	p[2] = c
    64  	p[3] = d
    65  	return p
    66  }
    67  
    68  // CIDRMask returns an IPMask consisting of `ones' 1 bits
    69  // followed by 0s up to a total length of `bits' bits.
    70  // For a mask of this form, CIDRMask is the inverse of IPMask.Size.
    71  func CIDRMask(ones, bits int) IPMask {
    72  	if bits != 8*IPv4len && bits != 8*IPv6len {
    73  		return nil
    74  	}
    75  	if ones < 0 || ones > bits {
    76  		return nil
    77  	}
    78  	l := bits / 8
    79  	m := make(IPMask, l)
    80  	n := uint(ones)
    81  	for i := 0; i < l; i++ {
    82  		if n >= 8 {
    83  			m[i] = 0xff
    84  			n -= 8
    85  			continue
    86  		}
    87  		m[i] = ^byte(0xff >> n)
    88  		n = 0
    89  	}
    90  	return m
    91  }
    92  
    93  // Well-known IPv4 addresses
    94  var (
    95  	IPv4bcast     = IPv4(255, 255, 255, 255) // broadcast
    96  	IPv4allsys    = IPv4(224, 0, 0, 1)       // all systems
    97  	IPv4allrouter = IPv4(224, 0, 0, 2)       // all routers
    98  	IPv4zero      = IPv4(0, 0, 0, 0)         // all zeros
    99  )
   100  
   101  // Well-known IPv6 addresses
   102  var (
   103  	IPv6zero                   = IP{0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}
   104  	IPv6unspecified            = IP{0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}
   105  	IPv6loopback               = IP{0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 1}
   106  	IPv6interfacelocalallnodes = IP{0xff, 0x01, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0x01}
   107  	IPv6linklocalallnodes      = IP{0xff, 0x02, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0x01}
   108  	IPv6linklocalallrouters    = IP{0xff, 0x02, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0x02}
   109  )
   110  
   111  // IsUnspecified returns true if ip is an unspecified address.
   112  func (ip IP) IsUnspecified() bool {
   113  	if ip.Equal(IPv4zero) || ip.Equal(IPv6unspecified) {
   114  		return true
   115  	}
   116  	return false
   117  }
   118  
   119  // IsLoopback returns true if ip is a loopback address.
   120  func (ip IP) IsLoopback() bool {
   121  	if ip4 := ip.To4(); ip4 != nil && ip4[0] == 127 {
   122  		return true
   123  	}
   124  	return ip.Equal(IPv6loopback)
   125  }
   126  
   127  // IsMulticast returns true if ip is a multicast address.
   128  func (ip IP) IsMulticast() bool {
   129  	if ip4 := ip.To4(); ip4 != nil && ip4[0]&0xf0 == 0xe0 {
   130  		return true
   131  	}
   132  	return ip[0] == 0xff
   133  }
   134  
   135  // IsInterfaceLinkLocalMulticast returns true if ip is
   136  // an interface-local multicast address.
   137  func (ip IP) IsInterfaceLocalMulticast() bool {
   138  	return len(ip) == IPv6len && ip[0] == 0xff && ip[1]&0x0f == 0x01
   139  }
   140  
   141  // IsLinkLocalMulticast returns true if ip is a link-local
   142  // multicast address.
   143  func (ip IP) IsLinkLocalMulticast() bool {
   144  	if ip4 := ip.To4(); ip4 != nil && ip4[0] == 224 && ip4[1] == 0 && ip4[2] == 0 {
   145  		return true
   146  	}
   147  	return ip[0] == 0xff && ip[1]&0x0f == 0x02
   148  }
   149  
   150  // IsLinkLocalUnicast returns true if ip is a link-local
   151  // unicast address.
   152  func (ip IP) IsLinkLocalUnicast() bool {
   153  	if ip4 := ip.To4(); ip4 != nil && ip4[0] == 169 && ip4[1] == 254 {
   154  		return true
   155  	}
   156  	return ip[0] == 0xfe && ip[1]&0xc0 == 0x80
   157  }
   158  
   159  // IsGlobalUnicast returns true if ip is a global unicast
   160  // address.
   161  func (ip IP) IsGlobalUnicast() bool {
   162  	return !ip.IsUnspecified() &&
   163  		!ip.IsLoopback() &&
   164  		!ip.IsMulticast() &&
   165  		!ip.IsLinkLocalUnicast()
   166  }
   167  
   168  // Is p all zeros?
   169  func isZeros(p IP) bool {
   170  	for i := 0; i < len(p); i++ {
   171  		if p[i] != 0 {
   172  			return false
   173  		}
   174  	}
   175  	return true
   176  }
   177  
   178  // To4 converts the IPv4 address ip to a 4-byte representation.
   179  // If ip is not an IPv4 address, To4 returns nil.
   180  func (ip IP) To4() IP {
   181  	if len(ip) == IPv4len {
   182  		return ip
   183  	}
   184  	if len(ip) == IPv6len &&
   185  		isZeros(ip[0:10]) &&
   186  		ip[10] == 0xff &&
   187  		ip[11] == 0xff {
   188  		return ip[12:16]
   189  	}
   190  	return nil
   191  }
   192  
   193  // To16 converts the IP address ip to a 16-byte representation.
   194  // If ip is not an IP address (it is the wrong length), To16 returns nil.
   195  func (ip IP) To16() IP {
   196  	if len(ip) == IPv4len {
   197  		return IPv4(ip[0], ip[1], ip[2], ip[3])
   198  	}
   199  	if len(ip) == IPv6len {
   200  		return ip
   201  	}
   202  	return nil
   203  }
   204  
   205  // Default route masks for IPv4.
   206  var (
   207  	classAMask = IPv4Mask(0xff, 0, 0, 0)
   208  	classBMask = IPv4Mask(0xff, 0xff, 0, 0)
   209  	classCMask = IPv4Mask(0xff, 0xff, 0xff, 0)
   210  )
   211  
   212  // DefaultMask returns the default IP mask for the IP address ip.
   213  // Only IPv4 addresses have default masks; DefaultMask returns
   214  // nil if ip is not a valid IPv4 address.
   215  func (ip IP) DefaultMask() IPMask {
   216  	if ip = ip.To4(); ip == nil {
   217  		return nil
   218  	}
   219  	switch true {
   220  	case ip[0] < 0x80:
   221  		return classAMask
   222  	case ip[0] < 0xC0:
   223  		return classBMask
   224  	default:
   225  		return classCMask
   226  	}
   227  }
   228  
   229  func allFF(b []byte) bool {
   230  	for _, c := range b {
   231  		if c != 0xff {
   232  			return false
   233  		}
   234  	}
   235  	return true
   236  }
   237  
   238  // Mask returns the result of masking the IP address ip with mask.
   239  func (ip IP) Mask(mask IPMask) IP {
   240  	if len(mask) == IPv6len && len(ip) == IPv4len && allFF(mask[:12]) {
   241  		mask = mask[12:]
   242  	}
   243  	if len(mask) == IPv4len && len(ip) == IPv6len && bytesEqual(ip[:12], v4InV6Prefix) {
   244  		ip = ip[12:]
   245  	}
   246  	n := len(ip)
   247  	if n != len(mask) {
   248  		return nil
   249  	}
   250  	out := make(IP, n)
   251  	for i := 0; i < n; i++ {
   252  		out[i] = ip[i] & mask[i]
   253  	}
   254  	return out
   255  }
   256  
   257  // String returns the string form of the IP address ip.
   258  // If the address is an IPv4 address, the string representation
   259  // is dotted decimal ("74.125.19.99").  Otherwise the representation
   260  // is IPv6 ("2001:4860:0:2001::68").
   261  func (ip IP) String() string {
   262  	p := ip
   263  
   264  	if len(ip) == 0 {
   265  		return "<nil>"
   266  	}
   267  
   268  	// If IPv4, use dotted notation.
   269  	if p4 := p.To4(); len(p4) == IPv4len {
   270  		return itod(uint(p4[0])) + "." +
   271  			itod(uint(p4[1])) + "." +
   272  			itod(uint(p4[2])) + "." +
   273  			itod(uint(p4[3]))
   274  	}
   275  	if len(p) != IPv6len {
   276  		return "?"
   277  	}
   278  
   279  	// Find longest run of zeros.
   280  	e0 := -1
   281  	e1 := -1
   282  	for i := 0; i < IPv6len; i += 2 {
   283  		j := i
   284  		for j < IPv6len && p[j] == 0 && p[j+1] == 0 {
   285  			j += 2
   286  		}
   287  		if j > i && j-i > e1-e0 {
   288  			e0 = i
   289  			e1 = j
   290  		}
   291  	}
   292  	// The symbol "::" MUST NOT be used to shorten just one 16 bit 0 field.
   293  	if e1-e0 <= 2 {
   294  		e0 = -1
   295  		e1 = -1
   296  	}
   297  
   298  	// Print with possible :: in place of run of zeros
   299  	var s string
   300  	for i := 0; i < IPv6len; i += 2 {
   301  		if i == e0 {
   302  			s += "::"
   303  			i = e1
   304  			if i >= IPv6len {
   305  				break
   306  			}
   307  		} else if i > 0 {
   308  			s += ":"
   309  		}
   310  		s += itox((uint(p[i])<<8)|uint(p[i+1]), 1)
   311  	}
   312  	return s
   313  }
   314  
   315  // ipEmptyString is like ip.String except that it returns
   316  // an empty string when ip is unset.
   317  func ipEmptyString(ip IP) string {
   318  	if len(ip) == 0 {
   319  		return ""
   320  	}
   321  	return ip.String()
   322  }
   323  
   324  // MarshalText implements the encoding.TextMarshaler interface.
   325  // The encoding is the same as returned by String.
   326  func (ip IP) MarshalText() ([]byte, error) {
   327  	if len(ip) == 0 {
   328  		return []byte(""), nil
   329  	}
   330  	if len(ip) != IPv4len && len(ip) != IPv6len {
   331  		return nil, errors.New("invalid IP address")
   332  	}
   333  	return []byte(ip.String()), nil
   334  }
   335  
   336  // UnmarshalText implements the encoding.TextUnmarshaler interface.
   337  // The IP address is expected in a form accepted by ParseIP.
   338  func (ip *IP) UnmarshalText(text []byte) error {
   339  	if len(text) == 0 {
   340  		*ip = nil
   341  		return nil
   342  	}
   343  	s := string(text)
   344  	x := ParseIP(s)
   345  	if x == nil {
   346  		return &ParseError{"IP address", s}
   347  	}
   348  	*ip = x
   349  	return nil
   350  }
   351  
   352  // Equal returns true if ip and x are the same IP address.
   353  // An IPv4 address and that same address in IPv6 form are
   354  // considered to be equal.
   355  func (ip IP) Equal(x IP) bool {
   356  	if len(ip) == len(x) {
   357  		return bytesEqual(ip, x)
   358  	}
   359  	if len(ip) == IPv4len && len(x) == IPv6len {
   360  		return bytesEqual(x[0:12], v4InV6Prefix) && bytesEqual(ip, x[12:])
   361  	}
   362  	if len(ip) == IPv6len && len(x) == IPv4len {
   363  		return bytesEqual(ip[0:12], v4InV6Prefix) && bytesEqual(ip[12:], x)
   364  	}
   365  	return false
   366  }
   367  
   368  func bytesEqual(x, y []byte) bool {
   369  	if len(x) != len(y) {
   370  		return false
   371  	}
   372  	for i, b := range x {
   373  		if y[i] != b {
   374  			return false
   375  		}
   376  	}
   377  	return true
   378  }
   379  
   380  // If mask is a sequence of 1 bits followed by 0 bits,
   381  // return the number of 1 bits.
   382  func simpleMaskLength(mask IPMask) int {
   383  	var n int
   384  	for i, v := range mask {
   385  		if v == 0xff {
   386  			n += 8
   387  			continue
   388  		}
   389  		// found non-ff byte
   390  		// count 1 bits
   391  		for v&0x80 != 0 {
   392  			n++
   393  			v <<= 1
   394  		}
   395  		// rest must be 0 bits
   396  		if v != 0 {
   397  			return -1
   398  		}
   399  		for i++; i < len(mask); i++ {
   400  			if mask[i] != 0 {
   401  				return -1
   402  			}
   403  		}
   404  		break
   405  	}
   406  	return n
   407  }
   408  
   409  // Size returns the number of leading ones and total bits in the mask.
   410  // If the mask is not in the canonical form--ones followed by zeros--then
   411  // Size returns 0, 0.
   412  func (m IPMask) Size() (ones, bits int) {
   413  	ones, bits = simpleMaskLength(m), len(m)*8
   414  	if ones == -1 {
   415  		return 0, 0
   416  	}
   417  	return
   418  }
   419  
   420  // String returns the hexadecimal form of m, with no punctuation.
   421  func (m IPMask) String() string {
   422  	s := ""
   423  	for _, b := range m {
   424  		s += itox(uint(b), 2)
   425  	}
   426  	if len(s) == 0 {
   427  		return "<nil>"
   428  	}
   429  	return s
   430  }
   431  
   432  func networkNumberAndMask(n *IPNet) (ip IP, m IPMask) {
   433  	if ip = n.IP.To4(); ip == nil {
   434  		ip = n.IP
   435  		if len(ip) != IPv6len {
   436  			return nil, nil
   437  		}
   438  	}
   439  	m = n.Mask
   440  	switch len(m) {
   441  	case IPv4len:
   442  		if len(ip) != IPv4len {
   443  			return nil, nil
   444  		}
   445  	case IPv6len:
   446  		if len(ip) == IPv4len {
   447  			m = m[12:]
   448  		}
   449  	default:
   450  		return nil, nil
   451  	}
   452  	return
   453  }
   454  
   455  // Contains reports whether the network includes ip.
   456  func (n *IPNet) Contains(ip IP) bool {
   457  	nn, m := networkNumberAndMask(n)
   458  	if x := ip.To4(); x != nil {
   459  		ip = x
   460  	}
   461  	l := len(ip)
   462  	if l != len(nn) {
   463  		return false
   464  	}
   465  	for i := 0; i < l; i++ {
   466  		if nn[i]&m[i] != ip[i]&m[i] {
   467  			return false
   468  		}
   469  	}
   470  	return true
   471  }
   472  
   473  // Network returns the address's network name, "ip+net".
   474  func (n *IPNet) Network() string { return "ip+net" }
   475  
   476  // String returns the CIDR notation of n like "192.168.100.1/24"
   477  // or "2001:DB8::/48" as defined in RFC 4632 and RFC 4291.
   478  // If the mask is not in the canonical form, it returns the
   479  // string which consists of an IP address, followed by a slash
   480  // character and a mask expressed as hexadecimal form with no
   481  // punctuation like "192.168.100.1/c000ff00".
   482  func (n *IPNet) String() string {
   483  	nn, m := networkNumberAndMask(n)
   484  	if nn == nil || m == nil {
   485  		return "<nil>"
   486  	}
   487  	l := simpleMaskLength(m)
   488  	if l == -1 {
   489  		return nn.String() + "/" + m.String()
   490  	}
   491  	return nn.String() + "/" + itod(uint(l))
   492  }
   493  
   494  // Parse IPv4 address (d.d.d.d).
   495  func parseIPv4(s string) IP {
   496  	var p [IPv4len]byte
   497  	i := 0
   498  	for j := 0; j < IPv4len; j++ {
   499  		if i >= len(s) {
   500  			// Missing octets.
   501  			return nil
   502  		}
   503  		if j > 0 {
   504  			if s[i] != '.' {
   505  				return nil
   506  			}
   507  			i++
   508  		}
   509  		var (
   510  			n  int
   511  			ok bool
   512  		)
   513  		n, i, ok = dtoi(s, i)
   514  		if !ok || n > 0xFF {
   515  			return nil
   516  		}
   517  		p[j] = byte(n)
   518  	}
   519  	if i != len(s) {
   520  		return nil
   521  	}
   522  	return IPv4(p[0], p[1], p[2], p[3])
   523  }
   524  
   525  // parseIPv6 parses s as a literal IPv6 address described in RFC 4291
   526  // and RFC 5952.  It can also parse a literal scoped IPv6 address with
   527  // zone identifier which is described in RFC 4007 when zoneAllowed is
   528  // true.
   529  func parseIPv6(s string, zoneAllowed bool) (ip IP, zone string) {
   530  	ip = make(IP, IPv6len)
   531  	ellipsis := -1 // position of ellipsis in p
   532  	i := 0         // index in string s
   533  
   534  	if zoneAllowed {
   535  		s, zone = splitHostZone(s)
   536  	}
   537  
   538  	// Might have leading ellipsis
   539  	if len(s) >= 2 && s[0] == ':' && s[1] == ':' {
   540  		ellipsis = 0
   541  		i = 2
   542  		// Might be only ellipsis
   543  		if i == len(s) {
   544  			return ip, zone
   545  		}
   546  	}
   547  
   548  	// Loop, parsing hex numbers followed by colon.
   549  	j := 0
   550  	for j < IPv6len {
   551  		// Hex number.
   552  		n, i1, ok := xtoi(s, i)
   553  		if !ok || n > 0xFFFF {
   554  			return nil, zone
   555  		}
   556  
   557  		// If followed by dot, might be in trailing IPv4.
   558  		if i1 < len(s) && s[i1] == '.' {
   559  			if ellipsis < 0 && j != IPv6len-IPv4len {
   560  				// Not the right place.
   561  				return nil, zone
   562  			}
   563  			if j+IPv4len > IPv6len {
   564  				// Not enough room.
   565  				return nil, zone
   566  			}
   567  			ip4 := parseIPv4(s[i:])
   568  			if ip4 == nil {
   569  				return nil, zone
   570  			}
   571  			ip[j] = ip4[12]
   572  			ip[j+1] = ip4[13]
   573  			ip[j+2] = ip4[14]
   574  			ip[j+3] = ip4[15]
   575  			i = len(s)
   576  			j += IPv4len
   577  			break
   578  		}
   579  
   580  		// Save this 16-bit chunk.
   581  		ip[j] = byte(n >> 8)
   582  		ip[j+1] = byte(n)
   583  		j += 2
   584  
   585  		// Stop at end of string.
   586  		i = i1
   587  		if i == len(s) {
   588  			break
   589  		}
   590  
   591  		// Otherwise must be followed by colon and more.
   592  		if s[i] != ':' || i+1 == len(s) {
   593  			return nil, zone
   594  		}
   595  		i++
   596  
   597  		// Look for ellipsis.
   598  		if s[i] == ':' {
   599  			if ellipsis >= 0 { // already have one
   600  				return nil, zone
   601  			}
   602  			ellipsis = j
   603  			if i++; i == len(s) { // can be at end
   604  				break
   605  			}
   606  		}
   607  	}
   608  
   609  	// Must have used entire string.
   610  	if i != len(s) {
   611  		return nil, zone
   612  	}
   613  
   614  	// If didn't parse enough, expand ellipsis.
   615  	if j < IPv6len {
   616  		if ellipsis < 0 {
   617  			return nil, zone
   618  		}
   619  		n := IPv6len - j
   620  		for k := j - 1; k >= ellipsis; k-- {
   621  			ip[k+n] = ip[k]
   622  		}
   623  		for k := ellipsis + n - 1; k >= ellipsis; k-- {
   624  			ip[k] = 0
   625  		}
   626  	}
   627  	return ip, zone
   628  }
   629  
   630  // A ParseError represents a malformed text string and the type of string that was expected.
   631  type ParseError struct {
   632  	Type string
   633  	Text string
   634  }
   635  
   636  func (e *ParseError) Error() string {
   637  	return "invalid " + e.Type + ": " + e.Text
   638  }
   639  
   640  // ParseIP parses s as an IP address, returning the result.
   641  // The string s can be in dotted decimal ("74.125.19.99")
   642  // or IPv6 ("2001:4860:0:2001::68") form.
   643  // If s is not a valid textual representation of an IP address,
   644  // ParseIP returns nil.
   645  func ParseIP(s string) IP {
   646  	if ip := parseIPv4(s); ip != nil {
   647  		return ip
   648  	}
   649  	ip, _ := parseIPv6(s, false)
   650  	return ip
   651  }
   652  
   653  // ParseCIDR parses s as a CIDR notation IP address and mask,
   654  // like "192.168.100.1/24" or "2001:DB8::/48", as defined in
   655  // RFC 4632 and RFC 4291.
   656  //
   657  // It returns the IP address and the network implied by the IP
   658  // and mask.  For example, ParseCIDR("192.168.100.1/16") returns
   659  // the IP address 192.168.100.1 and the network 192.168.0.0/16.
   660  func ParseCIDR(s string) (IP, *IPNet, error) {
   661  	i := byteIndex(s, '/')
   662  	if i < 0 {
   663  		return nil, nil, &ParseError{"CIDR address", s}
   664  	}
   665  	addr, mask := s[:i], s[i+1:]
   666  	iplen := IPv4len
   667  	ip := parseIPv4(addr)
   668  	if ip == nil {
   669  		iplen = IPv6len
   670  		ip, _ = parseIPv6(addr, false)
   671  	}
   672  	n, i, ok := dtoi(mask, 0)
   673  	if ip == nil || !ok || i != len(mask) || n < 0 || n > 8*iplen {
   674  		return nil, nil, &ParseError{"CIDR address", s}
   675  	}
   676  	m := CIDRMask(n, 8*iplen)
   677  	return ip, &IPNet{IP: ip.Mask(m), Mask: m}, nil
   678  }