mirror of
https://github.com/WiiLink24/wfc-server.git
synced 2026-03-21 17:44:58 -05:00
591 lines
16 KiB
Go
591 lines
16 KiB
Go
package nas
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import (
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"bytes"
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"crypto/hmac"
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"crypto/md5"
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"crypto/rand"
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"crypto/rc4"
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"crypto/rsa"
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"crypto/sha1"
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"crypto/x509"
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"encoding/binary"
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"encoding/pem"
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"errors"
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"fmt"
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"hash"
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"io"
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"net"
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"os"
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"strings"
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"wwfc/logging"
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"github.com/logrusorgru/aurora/v3"
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)
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// Bare minimum TLS 1.0 server implementation for the Wii's /dev/net/ssl client
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// Use this with a certificate that exploits the Wii's SSL certificate bug to impersonate naswii.nintendowifi.net
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// See here: https://github.com/shutterbug2000/wii-ssl-bug
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// Don't use this for anything else, it's not secure
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func startHTTPSProxy(address string, nasAddr string) {
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cert, err := os.ReadFile("naswii-cert.der")
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if err != nil {
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panic(err)
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}
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rsaData, err := os.ReadFile("naswii-key.pem")
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if err != nil {
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panic(err)
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}
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rsaBlock, _ := pem.Decode(rsaData)
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parsedKey, err := x509.ParsePKCS8PrivateKey(rsaBlock.Bytes)
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if err != nil {
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panic(err)
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}
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rsaKey, ok := parsedKey.(*rsa.PrivateKey)
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if !ok {
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panic("unexpected key type")
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}
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serverCertsRecord := []byte{0x16, 0x03, 0x01}
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// Length of the record
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certLen := uint32(len(cert))
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serverCertsRecord = append(serverCertsRecord, []byte{
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byte((certLen + 10) >> 8),
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byte(certLen + 10),
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}...)
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serverCertsRecord = append(serverCertsRecord, 0xB)
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serverCertsRecord = append(serverCertsRecord, []byte{
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byte((certLen + 6) >> 16),
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byte((certLen + 6) >> 8),
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byte(certLen + 6),
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}...)
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serverCertsRecord = append(serverCertsRecord, []byte{
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byte((certLen + 3) >> 16),
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byte((certLen + 3) >> 8),
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byte(certLen + 3),
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}...)
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serverCertsRecord = append(serverCertsRecord, []byte{
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byte(certLen >> 16),
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byte(certLen >> 8),
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byte(certLen),
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}...)
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serverCertsRecord = append(serverCertsRecord, cert...)
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serverCertsRecord = append(serverCertsRecord, []byte{
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0x16, 0x03, 0x01, 0x00, 0x04, 0x0E, 0x00, 0x00, 0x00,
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}...)
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logging.Notice("NAS-TLS", "Starting HTTPS server on", address)
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l, err := net.Listen("tcp", address)
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if err != nil {
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panic(err)
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}
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for {
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conn, err := l.Accept()
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if err != nil {
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panic(err)
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}
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logging.Notice("NAS-TLS", "Receiving HTTPS request from", aurora.BrightCyan(conn.RemoteAddr()))
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moduleName := "NAS-TLS:" + conn.RemoteAddr().String()
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go func() {
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defer conn.Close()
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buf := make([]byte, 0x1000)
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index := 0
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// Read client hello
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// fmt.Printf("Client Hello:\n")
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for {
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n, err := conn.Read(buf[index:])
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if err != nil {
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logging.Error(moduleName, "Failed to read from client:", err)
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return
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}
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// fmt.Printf("% X ", buf[index:index+n])
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index += n
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if !bytes.HasPrefix([]byte{
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0x80, 0x2B, 0x01, 0x03, 0x01, 0x00, 0x12, 0x00, 0x00, 0x00, 0x10, 0x00,
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0x00, 0x35, 0x00, 0x00, 0x2F, 0x00, 0x00, 0x0A, 0x00, 0x00, 0x09, 0x00,
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0x00, 0x05, 0x00, 0x00, 0x04,
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}, buf[:min(index, 0x1D)]) {
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logging.Error(moduleName, "Invalid client hello:", aurora.Cyan(fmt.Sprintf("% X ", buf[:min(index, 0x1D)])))
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return
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}
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if index == 0x2D {
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buf = buf[:index]
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break
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}
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if index > 0x2D {
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logging.Error(moduleName, "Invalid client hello length:", aurora.BrightCyan(index))
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return
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}
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}
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// fmt.Printf("\n")
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clientHello := buf
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finishHash := newFinishedHash()
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finishHash.Write(clientHello[0x2:0x2D])
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// The random bytes are padded to 32 bytes with 0x00 (data is right justified)
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clientRandom := append(make([]byte, 16), clientHello[0x1D:0x1D+0x10]...)
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serverHello := []byte{0x16, 0x03, 0x01, 0x00, 0x2A, 0x02, 0x00, 0x00, 0x26, 0x03, 0x01}
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serverRandom := make([]byte, 0x20)
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_, err = rand.Read(serverRandom)
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if err != nil {
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logging.Error(moduleName, "Failed to generate random bytes:", err)
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return
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}
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serverHello = append(serverHello, serverRandom...)
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// Send an empty session ID
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serverHello = append(serverHello, 0x00)
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// Select cipher suite TLS_RSA_WITH_RC4_128_MD5 (0x0004)
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serverHello = append(serverHello, []byte{
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0x00, 0x04, 0x00,
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}...)
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// Append the certs record to the server hello buffer
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serverHello = append(serverHello, serverCertsRecord...)
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// fmt.Printf("Server Hello:\n% X\n", serverHello)
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finishHash.Write(serverHello[0x5:0x2F])
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finishHash.Write(serverHello[0x34 : 0x34+(certLen+10)])
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finishHash.Write(serverHello[0x34+(certLen+10)+5 : 0x34+(certLen+10)+5+4])
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_, err = conn.Write(serverHello)
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if err != nil {
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logging.Error(moduleName, "Failed to write to client:", err)
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return
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}
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// fmt.Printf("Client key exchange:\n")
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buf = make([]byte, 0x1000)
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index = 0
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// Read client key exchange (+ change cipher spec + finished)
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for {
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n, err := conn.Read(buf[index:])
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if err != nil {
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logging.Error(moduleName, "Failed to read from client:", err)
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return
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}
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// fmt.Printf("% X ", buf[index:index+n])
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index += n
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// Check client key exchange header
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if !bytes.HasPrefix([]byte{
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0x16, 0x03, 0x01, 0x00, 0x86, 0x10, 0x00, 0x00, 0x82, 0x00, 0x80,
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}, buf[:min(index, 0x0B)]) {
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logging.Error(moduleName, "Invalid client key exchange header:", aurora.Cyan(fmt.Sprintf("% X ", buf[:min(index, 0x0B)])))
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return
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}
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if index > 0x8B {
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// Check change cipher spec + finished header
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if !bytes.HasPrefix(buf[0x8B:min(index, 0x8B+0x0B)], []byte{
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0x14, 0x03, 0x01, 0x00, 0x01, 0x01, 0x16, 0x03, 0x01, 0x00, 0x20,
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}) {
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logging.Error(moduleName, "Invalid client change cipher spec + finished header:", aurora.Cyan(fmt.Sprintf("%X ", buf[0x8B:min(index, 0x8B+0x0B)])))
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return
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}
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}
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if index == 0xB6 {
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buf = buf[:index]
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break
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}
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if index > 0xB6 {
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logging.Error(moduleName, "Invalid client key exchange length:", aurora.BrightCyan(index))
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return
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}
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}
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// fmt.Printf("\n")
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encryptedPreMasterSecret := buf[0x0B : 0x0B+0x80]
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clientFinish := buf[0x96 : 0x96+0x20]
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finishHash.Write(buf[0x5 : 0x5+0x86])
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// Decrypt the pre master secret using our RSA key
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preMasterSecret, err := rsa.DecryptPKCS1v15(rand.Reader, rsaKey, encryptedPreMasterSecret)
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if err != nil {
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logging.Error(moduleName, "Failed to decrypt pre master secret:", err)
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return
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}
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// fmt.Printf("Pre master secret:\n% X\n", preMasterSecret)
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if len(preMasterSecret) != 48 {
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logging.Error(moduleName, "Invalid pre master secret length:", aurora.BrightCyan(len(preMasterSecret)))
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return
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}
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if !bytes.Equal(preMasterSecret[:2], []byte{0x03, 0x01}) {
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logging.Error(moduleName, "Invalid TLS version in pre master secret:", aurora.BrightCyan(preMasterSecret[:2]))
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return
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}
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clientServerRandom := append(bytes.Clone(clientRandom), serverRandom[:0x20]...)
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masterSecret := make([]byte, 48)
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prf10(masterSecret, preMasterSecret, []byte("master secret"), clientServerRandom)
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// fmt.Printf("Master secret:\n% X\n", masterSecret)
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_, serverMAC, clientKey, serverKey, _, _ := keysFromMasterSecret(masterSecret, clientRandom, serverRandom, 16, 16, 16)
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// fmt.Printf("Client MAC:\n% X\n", clientMAC)
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// fmt.Printf("Server MAC:\n% X\n", serverMAC)
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// fmt.Printf("Client key:\n% X\n", clientKey)
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// fmt.Printf("Server key:\n% X\n", serverKey)
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// fmt.Printf("Client IV:\n% X\n", clientIV)
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// fmt.Printf("Server IV:\n% X\n", serverIV)
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// Create the server RC4 cipher
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cipher, err := rc4.NewCipher(serverKey)
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if err != nil {
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panic(err)
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}
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// Create the client RC4 cipher
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clientCipher, err := rc4.NewCipher(clientKey)
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if err != nil {
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panic(err)
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}
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// Create the hmac cipher
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macFn := hmac.New(md5.New, serverMAC)
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// Create the hmac cipher
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// clientMacFn := hmac.New(md5.New, clientMAC)
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// Decrypt client finish
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clientCipher.XORKeyStream(clientFinish, clientFinish)
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finishHash.Write(clientFinish[:0x10])
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// fmt.Printf("Client Finish:\n% X\n", clientFinish)
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// Send ChangeCipherSpec
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_, err = conn.Write([]byte{0x14, 0x03, 0x01, 0x00, 0x01, 0x01})
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if err != nil {
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panic(err)
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}
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finishedRecord := []byte{0x16, 0x03, 0x01, 0x00, 0x10}
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out := finishHash.serverSum(masterSecret)
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// Encrypt the finished record
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finishedRecord, _ = encryptTLS(macFn, cipher, append([]byte{0x14, 0x00, 0x00, 0x0C}, out[:12]...), 0, finishedRecord)
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_, err = conn.Write(finishedRecord)
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// Open a connection to NAS
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newConn, err := net.Dial("tcp", nasAddr)
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if err != nil {
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panic(err)
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}
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defer newConn.Close()
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// Read bytes from the HTTP server and forward them through the TLS connection
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go func() {
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buf := make([]byte, 0x1000)
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seq := uint64(1)
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index := 0
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for {
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n, err := newConn.Read(buf[index:])
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if err != nil {
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if errors.Is(err, io.EOF) || strings.Contains(err.Error(), "use of closed network connection") {
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return
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}
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logging.Error(moduleName, "Failed to read from HTTP server:", err)
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return
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}
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// fmt.Printf("Sent:\n% X ", buf[index:index+n])
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var record []byte
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record, seq = encryptTLS(macFn, cipher, buf[index:index+n], seq, []byte{0x17, 0x03, 0x01, byte(n >> 8), byte(n)})
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_, err = conn.Write(record)
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if err != nil {
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logging.Error(moduleName, "Failed to write to client:", err)
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return
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}
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}
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}()
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// Read encrypted content from the client and forward it to the HTTP server
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index = 0
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total := 0
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buf = make([]byte, 0x1000)
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for {
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n, err := conn.Read(buf[index:])
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if err != nil {
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logging.Error(moduleName, "Failed to read from client:", err)
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return
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}
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// fmt.Printf("Received:\n% X ", buf[index:index+n])
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index += n
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total += n
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for {
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if index < 5 {
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break
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}
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if buf[0] < 0x15 || buf[0] > 0x17 {
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logging.Error(moduleName, "Invalid record type")
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return
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}
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if buf[1] != 0x03 || buf[2] != 0x01 {
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logging.Error(moduleName, "Invalid TLS version")
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return
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}
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recordLength := binary.BigEndian.Uint16(buf[3:5])
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if recordLength < 17 || (recordLength+5) > 0x1000 {
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logging.Error(moduleName, "Invalid record length")
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return
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}
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if index < int(recordLength)+5 {
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break
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}
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// Decrypt content
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clientCipher.XORKeyStream(buf[5:5+recordLength], buf[5:5+recordLength])
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// fmt.Printf("\nDecrypted content:\n% X \n", buf[5:5+recordLength])
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if buf[0] != 0x17 {
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if buf[0] == 0x15 && buf[5] == 0x01 && buf[6] == 0x00 {
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return
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}
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logging.Error(moduleName, "Non-application data received")
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return
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}
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// Send the decrypted content to the HTTP server
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_, err = newConn.Write(buf[5 : 5+recordLength-16])
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if err != nil {
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logging.Error(moduleName, "Failed to write to HTTP server:", err)
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return
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}
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buf = buf[5+recordLength:]
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buf = append(buf, make([]byte, 0x1000-len(buf))...)
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index -= 5 + int(recordLength)
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}
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}
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}()
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}
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}
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// The following functions are modified from the crypto standard library
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//
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// Copyright (c) 2009 The Go Authors. All rights reserved.
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//
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// Redistribution and use in source and binary forms, with or without
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// modification, are permitted provided that the following conditions are
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// met:
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//
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// * Redistributions of source code must retain the above copyright
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// notice, this list of conditions and the following disclaimer.
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// * Redistributions in binary form must reproduce the above
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// copyright notice, this list of conditions and the following disclaimer
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// in the documentation and/or other materials provided with the
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// distribution.
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// * Neither the name of Google Inc. nor the names of its
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// contributors may be used to endorse or promote products derived from
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// this software without specific prior written permission.
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//
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// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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// "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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// LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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// A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
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// OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
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// SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
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// LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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// DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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// THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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// (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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// OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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// Split a premaster secret in two as specified in RFC 4346, Section 5.
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func splitPreMasterSecret(secret []byte) (s1, s2 []byte) {
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s1 = secret[0 : (len(secret)+1)/2]
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s2 = secret[len(secret)/2:]
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return
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}
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// pHash implements the P_hash function, as defined in RFC 4346, Section 5.
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func pHash(result, secret, seed []byte, hash func() hash.Hash) {
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h := hmac.New(hash, secret)
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h.Write(seed)
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a := h.Sum(nil)
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j := 0
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for j < len(result) {
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h.Reset()
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h.Write(a)
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h.Write(seed)
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b := h.Sum(nil)
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copy(result[j:], b)
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j += len(b)
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h.Reset()
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h.Write(a)
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a = h.Sum(nil)
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}
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}
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// prf10 implements the TLS 1.0 pseudo-random function, as defined in RFC 2246, Section 5.
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func prf10(result, secret, label, seed []byte) {
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hashSHA1 := sha1.New
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hashMD5 := md5.New
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labelAndSeed := make([]byte, len(label)+len(seed))
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copy(labelAndSeed, label)
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copy(labelAndSeed[len(label):], seed)
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s1, s2 := splitPreMasterSecret(secret)
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pHash(result, s1, labelAndSeed, hashMD5)
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result2 := make([]byte, len(result))
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pHash(result2, s2, labelAndSeed, hashSHA1)
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for i, b := range result2 {
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result[i] ^= b
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}
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}
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// keysFromMasterSecret generates the connection keys from the master
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// secret, given the lengths of the MAC key, cipher key and IV, as defined in
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// RFC 2246, Section 6.3.
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func keysFromMasterSecret(masterSecret, clientRandom, serverRandom []byte, macLen, keyLen, ivLen int) (clientMAC, serverMAC, clientKey, serverKey, clientIV, serverIV []byte) {
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seed := make([]byte, 0, len(serverRandom)+len(clientRandom))
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seed = append(seed, serverRandom...)
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seed = append(seed, clientRandom...)
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n := 2*macLen + 2*keyLen + 2*ivLen
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keyMaterial := make([]byte, n)
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prf10(keyMaterial, masterSecret, []byte("key expansion"), seed)
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clientMAC = keyMaterial[:macLen]
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keyMaterial = keyMaterial[macLen:]
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serverMAC = keyMaterial[:macLen]
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keyMaterial = keyMaterial[macLen:]
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clientKey = keyMaterial[:keyLen]
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keyMaterial = keyMaterial[keyLen:]
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serverKey = keyMaterial[:keyLen]
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keyMaterial = keyMaterial[keyLen:]
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clientIV = keyMaterial[:ivLen]
|
|
keyMaterial = keyMaterial[ivLen:]
|
|
serverIV = keyMaterial[:ivLen]
|
|
return
|
|
}
|
|
|
|
func newFinishedHash() finishedHash {
|
|
return finishedHash{sha1.New(), sha1.New(), md5.New(), md5.New(), prf10}
|
|
}
|
|
|
|
// A finishedHash calculates the hash of a set of handshake messages suitable
|
|
// for including in a Finished message.
|
|
type finishedHash struct {
|
|
client hash.Hash
|
|
server hash.Hash
|
|
|
|
// Prior to TLS 1.2, an additional MD5 hash is required.
|
|
clientMD5 hash.Hash
|
|
serverMD5 hash.Hash
|
|
|
|
prf func(result, secret, label, seed []byte)
|
|
}
|
|
|
|
func (h *finishedHash) Write(msg []byte) int {
|
|
// fmt.Printf("Write finished hash: % X\n", msg)
|
|
|
|
h.client.Write(msg)
|
|
h.server.Write(msg)
|
|
|
|
h.clientMD5.Write(msg)
|
|
h.serverMD5.Write(msg)
|
|
|
|
return len(msg)
|
|
}
|
|
|
|
func (h finishedHash) Sum() []byte {
|
|
out := make([]byte, 0, md5.Size+sha1.Size)
|
|
out = h.clientMD5.Sum(out)
|
|
return h.client.Sum(out)
|
|
}
|
|
|
|
// clientSum returns the contents of the verify_data member of a client's
|
|
// Finished message.
|
|
func (h finishedHash) clientSum(masterSecret []byte) []byte {
|
|
out := make([]byte, 12)
|
|
h.prf(out, masterSecret, []byte("client finished"), h.Sum())
|
|
return out
|
|
}
|
|
|
|
// serverSum returns the contents of the verify_data member of a server's
|
|
// Finished message.
|
|
func (h finishedHash) serverSum(masterSecret []byte) []byte {
|
|
out := make([]byte, 12)
|
|
h.prf(out, masterSecret, []byte("server finished"), h.Sum())
|
|
return out
|
|
}
|
|
|
|
func encryptTLS(macFn hash.Hash, cipher *rc4.Cipher, payload []byte, seq uint64, record []byte) ([]byte, uint64) {
|
|
mac := tls10MAC(macFn, []byte{}, binary.BigEndian.AppendUint64([]byte{}, seq), record[:5], payload, nil)
|
|
record = append(append(bytes.Clone(record[:5]), payload...), mac...)
|
|
cipher.XORKeyStream(record[5:], record[5:])
|
|
|
|
// Update length to include nonce, MAC and any block padding needed.
|
|
n := len(record) - 5
|
|
record[3] = byte(n >> 8)
|
|
record[4] = byte(n)
|
|
|
|
return record, seq + 1
|
|
}
|
|
|
|
// tls10MAC implements the TLS 1.0 MAC function. RFC 2246, Section 6.2.3.
|
|
func tls10MAC(h hash.Hash, out, seq, header, data, extra []byte) []byte {
|
|
h.Reset()
|
|
h.Write(seq)
|
|
h.Write(header)
|
|
h.Write(data)
|
|
res := h.Sum(out)
|
|
if extra != nil {
|
|
h.Write(extra)
|
|
}
|
|
return res
|
|
}
|