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461 lines
23 KiB
461 lines
23 KiB
11 months ago
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#if !BESTHTTP_DISABLE_ALTERNATE_SSL && (!UNITY_WEBGL || UNITY_EDITOR)
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#pragma warning disable
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using System;
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using BestHTTP.SecureProtocol.Org.BouncyCastle.Crypto;
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using BestHTTP.SecureProtocol.Org.BouncyCastle.Crypto.Digests;
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using BestHTTP.SecureProtocol.Org.BouncyCastle.Math;
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using BestHTTP.SecureProtocol.Org.BouncyCastle.Security;
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namespace BestHTTP.SecureProtocol.Org.BouncyCastle.Crypto.Agreement.JPake
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{
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/// <summary>
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/// A participant in a Password Authenticated Key Exchange by Juggling (J-PAKE) exchange.
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///
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/// The J-PAKE exchange is defined by Feng Hao and Peter Ryan in the paper
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/// <a href="http://grouper.ieee.org/groups/1363/Research/contributions/hao-ryan-2008.pdf">
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/// "Password Authenticated Key Exchange by Juggling, 2008."</a>
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///
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/// The J-PAKE protocol is symmetric.
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/// There is no notion of a <i>client</i> or <i>server</i>, but rather just two <i>participants</i>.
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/// An instance of JPakeParticipant represents one participant, and
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/// is the primary interface for executing the exchange.
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///
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/// To execute an exchange, construct a JPakeParticipant on each end,
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/// and call the following 7 methods
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/// (once and only once, in the given order, for each participant, sending messages between them as described):
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///
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/// CreateRound1PayloadToSend() - and send the payload to the other participant
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/// ValidateRound1PayloadReceived(JPakeRound1Payload) - use the payload received from the other participant
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/// CreateRound2PayloadToSend() - and send the payload to the other participant
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/// ValidateRound2PayloadReceived(JPakeRound2Payload) - use the payload received from the other participant
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/// CalculateKeyingMaterial()
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/// CreateRound3PayloadToSend(BigInteger) - and send the payload to the other participant
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/// ValidateRound3PayloadReceived(JPakeRound3Payload, BigInteger) - use the payload received from the other participant
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///
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/// Each side should derive a session key from the keying material returned by CalculateKeyingMaterial().
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/// The caller is responsible for deriving the session key using a secure key derivation function (KDF).
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///
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/// Round 3 is an optional key confirmation process.
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/// If you do not execute round 3, then there is no assurance that both participants are using the same key.
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/// (i.e. if the participants used different passwords, then their session keys will differ.)
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///
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/// If the round 3 validation succeeds, then the keys are guaranteed to be the same on both sides.
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///
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/// The symmetric design can easily support the asymmetric cases when one party initiates the communication.
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/// e.g. Sometimes the round1 payload and round2 payload may be sent in one pass.
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/// Also, in some cases, the key confirmation payload can be sent together with the round2 payload.
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/// These are the trivial techniques to optimize the communication.
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///
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/// The key confirmation process is implemented as specified in
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/// <a href="http://csrc.nist.gov/publications/nistpubs/800-56A/SP800-56A_Revision1_Mar08-2007.pdf">NIST SP 800-56A Revision 1</a>,
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/// Section 8.2 Unilateral Key Confirmation for Key Agreement Schemes.
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///
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/// This class is stateful and NOT threadsafe.
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/// Each instance should only be used for ONE complete J-PAKE exchange
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/// (i.e. a new JPakeParticipant should be constructed for each new J-PAKE exchange).
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/// </summary>
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public class JPakeParticipant
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{
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// Possible internal states. Used for state checking.
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public static readonly int STATE_INITIALIZED = 0;
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public static readonly int STATE_ROUND_1_CREATED = 10;
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public static readonly int STATE_ROUND_1_VALIDATED = 20;
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public static readonly int STATE_ROUND_2_CREATED = 30;
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public static readonly int STATE_ROUND_2_VALIDATED = 40;
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public static readonly int STATE_KEY_CALCULATED = 50;
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public static readonly int STATE_ROUND_3_CREATED = 60;
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public static readonly int STATE_ROUND_3_VALIDATED = 70;
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// Unique identifier of this participant.
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// The two participants in the exchange must NOT share the same id.
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private string participantId;
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// Shared secret. This only contains the secret between construction
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// and the call to CalculateKeyingMaterial().
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//
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// i.e. When CalculateKeyingMaterial() is called, this buffer overwritten with 0's,
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// and the field is set to null.
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private char[] password;
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// Digest to use during calculations.
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private IDigest digest;
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// Source of secure random data.
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private readonly SecureRandom random;
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private readonly BigInteger p;
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private readonly BigInteger q;
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private readonly BigInteger g;
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// The participantId of the other participant in this exchange.
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private string partnerParticipantId;
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// Alice's x1 or Bob's x3.
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private BigInteger x1;
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// Alice's x2 or Bob's x4.
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private BigInteger x2;
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// Alice's g^x1 or Bob's g^x3.
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private BigInteger gx1;
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// Alice's g^x2 or Bob's g^x4.
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private BigInteger gx2;
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// Alice's g^x3 or Bob's g^x1.
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private BigInteger gx3;
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// Alice's g^x4 or Bob's g^x2.
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private BigInteger gx4;
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// Alice's B or Bob's A.
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private BigInteger b;
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// The current state.
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// See the <tt>STATE_*</tt> constants for possible values.
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private int state;
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/// <summary>
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/// Convenience constructor for a new JPakeParticipant that uses
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/// the JPakePrimeOrderGroups#NIST_3072 prime order group,
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/// a SHA-256 digest, and a default SecureRandom implementation.
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///
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/// After construction, the State state will be STATE_INITIALIZED.
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///
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/// Throws NullReferenceException if any argument is null. Throws
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/// ArgumentException if password is empty.
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/// </summary>
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/// <param name="participantId">Unique identifier of this participant.
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/// The two participants in the exchange must NOT share the same id.</param>
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/// <param name="password">Shared secret.
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/// A defensive copy of this array is made (and cleared once CalculateKeyingMaterial() is called).
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/// Caller should clear the input password as soon as possible.</param>
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public JPakeParticipant(string participantId, char[] password)
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: this(participantId, password, JPakePrimeOrderGroups.NIST_3072) { }
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/// <summary>
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/// Convenience constructor for a new JPakeParticipant that uses
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/// a SHA-256 digest, and a default SecureRandom implementation.
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///
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/// After construction, the State state will be STATE_INITIALIZED.
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///
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/// Throws NullReferenceException if any argument is null. Throws
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/// ArgumentException if password is empty.
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/// </summary>
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/// <param name="participantId">Unique identifier of this participant.
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/// The two participants in the exchange must NOT share the same id.</param>
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/// <param name="password">Shared secret.
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/// A defensive copy of this array is made (and cleared once CalculateKeyingMaterial() is called).
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/// Caller should clear the input password as soon as possible.</param>
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/// <param name="group">Prime order group. See JPakePrimeOrderGroups for standard groups.</param>
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public JPakeParticipant(string participantId, char[] password, JPakePrimeOrderGroup group)
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: this(participantId, password, group, new Sha256Digest(), new SecureRandom()) { }
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/// <summary>
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/// Constructor for a new JPakeParticipant.
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///
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/// After construction, the State state will be STATE_INITIALIZED.
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///
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/// Throws NullReferenceException if any argument is null. Throws
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/// ArgumentException if password is empty.
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/// </summary>
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/// <param name="participantId">Unique identifier of this participant.
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/// The two participants in the exchange must NOT share the same id.</param>
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/// <param name="password">Shared secret.
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/// A defensive copy of this array is made (and cleared once CalculateKeyingMaterial() is called).
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/// Caller should clear the input password as soon as possible.</param>
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/// <param name="group">Prime order group. See JPakePrimeOrderGroups for standard groups.</param>
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/// <param name="digest">Digest to use during zero knowledge proofs and key confirmation
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/// (SHA-256 or stronger preferred).</param>
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/// <param name="random">Source of secure random data for x1 and x2, and for the zero knowledge proofs.</param>
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public JPakeParticipant(string participantId, char[] password, JPakePrimeOrderGroup group, IDigest digest, SecureRandom random)
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{
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JPakeUtilities.ValidateNotNull(participantId, "participantId");
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JPakeUtilities.ValidateNotNull(password, "password");
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JPakeUtilities.ValidateNotNull(group, "p");
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JPakeUtilities.ValidateNotNull(digest, "digest");
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JPakeUtilities.ValidateNotNull(random, "random");
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if (password.Length == 0)
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{
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throw new ArgumentException("Password must not be empty.");
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}
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this.participantId = participantId;
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// Create a defensive copy so as to fully encapsulate the password.
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//
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// This array will contain the password for the lifetime of this
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// participant BEFORE CalculateKeyingMaterial() is called.
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//
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// i.e. When CalculateKeyingMaterial() is called, the array will be cleared
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// in order to remove the password from memory.
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//
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// The caller is responsible for clearing the original password array
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// given as input to this constructor.
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this.password = new char[password.Length];
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Array.Copy(password, this.password, password.Length);
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this.p = group.P;
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this.q = group.Q;
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this.g = group.G;
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this.digest = digest;
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this.random = random;
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this.state = STATE_INITIALIZED;
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}
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/// <summary>
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/// Gets the current state of this participant.
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/// See the <tt>STATE_*</tt> constants for possible values.
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/// </summary>
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public virtual int State
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{
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get { return state; }
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}
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/// <summary>
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/// Creates and returns the payload to send to the other participant during round 1.
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///
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/// After execution, the State state} will be STATE_ROUND_1_CREATED}.
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/// </summary>
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public virtual JPakeRound1Payload CreateRound1PayloadToSend()
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{
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if (this.state >= STATE_ROUND_1_CREATED)
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throw new InvalidOperationException("Round 1 payload already created for " + this.participantId);
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this.x1 = JPakeUtilities.GenerateX1(q, random);
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this.x2 = JPakeUtilities.GenerateX2(q, random);
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this.gx1 = JPakeUtilities.CalculateGx(p, g, x1);
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this.gx2 = JPakeUtilities.CalculateGx(p, g, x2);
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BigInteger[] knowledgeProofForX1 = JPakeUtilities.CalculateZeroKnowledgeProof(p, q, g, gx1, x1, participantId, digest, random);
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BigInteger[] knowledgeProofForX2 = JPakeUtilities.CalculateZeroKnowledgeProof(p, q, g, gx2, x2, participantId, digest, random);
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this.state = STATE_ROUND_1_CREATED;
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return new JPakeRound1Payload(participantId, gx1, gx2, knowledgeProofForX1, knowledgeProofForX2);
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}
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/// <summary>
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/// Validates the payload received from the other participant during round 1.
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///
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/// Must be called prior to CreateRound2PayloadToSend().
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///
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/// After execution, the State state will be STATE_ROUND_1_VALIDATED.
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///
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/// Throws CryptoException if validation fails. Throws InvalidOperationException
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/// if called multiple times.
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/// </summary>
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public virtual void ValidateRound1PayloadReceived(JPakeRound1Payload round1PayloadReceived)
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{
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if (this.state >= STATE_ROUND_1_VALIDATED)
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throw new InvalidOperationException("Validation already attempted for round 1 payload for " + this.participantId);
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this.partnerParticipantId = round1PayloadReceived.ParticipantId;
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this.gx3 = round1PayloadReceived.Gx1;
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this.gx4 = round1PayloadReceived.Gx2;
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BigInteger[] knowledgeProofForX3 = round1PayloadReceived.KnowledgeProofForX1;
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BigInteger[] knowledgeProofForX4 = round1PayloadReceived.KnowledgeProofForX2;
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JPakeUtilities.ValidateParticipantIdsDiffer(participantId, round1PayloadReceived.ParticipantId);
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JPakeUtilities.ValidateGx4(gx4);
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JPakeUtilities.ValidateZeroKnowledgeProof(p, q, g, gx3, knowledgeProofForX3, round1PayloadReceived.ParticipantId, digest);
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JPakeUtilities.ValidateZeroKnowledgeProof(p, q, g, gx4, knowledgeProofForX4, round1PayloadReceived.ParticipantId, digest);
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this.state = STATE_ROUND_1_VALIDATED;
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}
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/// <summary>
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/// Creates and returns the payload to send to the other participant during round 2.
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///
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/// ValidateRound1PayloadReceived(JPakeRound1Payload) must be called prior to this method.
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///
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/// After execution, the State state will be STATE_ROUND_2_CREATED.
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///
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/// Throws InvalidOperationException if called prior to ValidateRound1PayloadReceived(JPakeRound1Payload), or multiple times
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/// </summary>
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public virtual JPakeRound2Payload CreateRound2PayloadToSend()
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{
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if (this.state >= STATE_ROUND_2_CREATED)
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throw new InvalidOperationException("Round 2 payload already created for " + this.participantId);
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if (this.state < STATE_ROUND_1_VALIDATED)
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throw new InvalidOperationException("Round 1 payload must be validated prior to creating round 2 payload for " + this.participantId);
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BigInteger gA = JPakeUtilities.CalculateGA(p, gx1, gx3, gx4);
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BigInteger s = JPakeUtilities.CalculateS(password);
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BigInteger x2s = JPakeUtilities.CalculateX2s(q, x2, s);
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BigInteger A = JPakeUtilities.CalculateA(p, q, gA, x2s);
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BigInteger[] knowledgeProofForX2s = JPakeUtilities.CalculateZeroKnowledgeProof(p, q, gA, A, x2s, participantId, digest, random);
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this.state = STATE_ROUND_2_CREATED;
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return new JPakeRound2Payload(participantId, A, knowledgeProofForX2s);
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}
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/// <summary>
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/// Validates the payload received from the other participant during round 2.
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/// Note that this DOES NOT detect a non-common password.
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/// The only indication of a non-common password is through derivation
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/// of different keys (which can be detected explicitly by executing round 3 and round 4)
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///
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/// Must be called prior to CalculateKeyingMaterial().
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///
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/// After execution, the State state will be STATE_ROUND_2_VALIDATED.
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///
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/// Throws CryptoException if validation fails. Throws
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/// InvalidOperationException if called prior to ValidateRound1PayloadReceived(JPakeRound1Payload), or multiple times
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/// </summary>
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public virtual void ValidateRound2PayloadReceived(JPakeRound2Payload round2PayloadReceived)
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{
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if (this.state >= STATE_ROUND_2_VALIDATED)
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throw new InvalidOperationException("Validation already attempted for round 2 payload for " + this.participantId);
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if (this.state < STATE_ROUND_1_VALIDATED)
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throw new InvalidOperationException("Round 1 payload must be validated prior to validation round 2 payload for " + this.participantId);
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BigInteger gB = JPakeUtilities.CalculateGA(p, gx3, gx1, gx2);
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this.b = round2PayloadReceived.A;
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BigInteger[] knowledgeProofForX4s = round2PayloadReceived.KnowledgeProofForX2s;
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JPakeUtilities.ValidateParticipantIdsDiffer(participantId, round2PayloadReceived.ParticipantId);
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JPakeUtilities.ValidateParticipantIdsEqual(this.partnerParticipantId, round2PayloadReceived.ParticipantId);
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JPakeUtilities.ValidateGa(gB);
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JPakeUtilities.ValidateZeroKnowledgeProof(p, q, gB, b, knowledgeProofForX4s, round2PayloadReceived.ParticipantId, digest);
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this.state = STATE_ROUND_2_VALIDATED;
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}
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/// <summary>
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/// Calculates and returns the key material.
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/// A session key must be derived from this key material using a secure key derivation function (KDF).
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/// The KDF used to derive the key is handled externally (i.e. not by JPakeParticipant).
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///
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/// The keying material will be identical for each participant if and only if
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/// each participant's password is the same. i.e. If the participants do not
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/// share the same password, then each participant will derive a different key.
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/// Therefore, if you immediately start using a key derived from
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/// the keying material, then you must handle detection of incorrect keys.
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/// If you want to handle this detection explicitly, you can optionally perform
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/// rounds 3 and 4. See JPakeParticipant for details on how to execute
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/// rounds 3 and 4.
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///
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/// The keying material will be in the range <tt>[0, p-1]</tt>.
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///
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/// ValidateRound2PayloadReceived(JPakeRound2Payload) must be called prior to this method.
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///
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/// As a side effect, the internal password array is cleared, since it is no longer needed.
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///
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/// After execution, the State state will be STATE_KEY_CALCULATED.
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///
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/// Throws InvalidOperationException if called prior to ValidateRound2PayloadReceived(JPakeRound2Payload),
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/// or if called multiple times.
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/// </summary>
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public virtual BigInteger CalculateKeyingMaterial()
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{
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if (this.state >= STATE_KEY_CALCULATED)
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throw new InvalidOperationException("Key already calculated for " + participantId);
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if (this.state < STATE_ROUND_2_VALIDATED)
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throw new InvalidOperationException("Round 2 payload must be validated prior to creating key for " + participantId);
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BigInteger s = JPakeUtilities.CalculateS(password);
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// Clear the password array from memory, since we don't need it anymore.
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// Also set the field to null as a flag to indicate that the key has already been calculated.
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Array.Clear(password, 0, password.Length);
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this.password = null;
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BigInteger keyingMaterial = JPakeUtilities.CalculateKeyingMaterial(p, q, gx4, x2, s, b);
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// Clear the ephemeral private key fields as well.
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// Note that we're relying on the garbage collector to do its job to clean these up.
|
||
|
// The old objects will hang around in memory until the garbage collector destroys them.
|
||
|
//
|
||
|
// If the ephemeral private keys x1 and x2 are leaked,
|
||
|
// the attacker might be able to brute-force the password.
|
||
|
this.x1 = null;
|
||
|
this.x2 = null;
|
||
|
this.b = null;
|
||
|
|
||
|
// Do not clear gx* yet, since those are needed by round 3.
|
||
|
|
||
|
this.state = STATE_KEY_CALCULATED;
|
||
|
|
||
|
return keyingMaterial;
|
||
|
}
|
||
|
|
||
|
/// <summary>
|
||
|
/// Creates and returns the payload to send to the other participant during round 3.
|
||
|
///
|
||
|
/// See JPakeParticipant for more details on round 3.
|
||
|
///
|
||
|
/// After execution, the State state} will be STATE_ROUND_3_CREATED.
|
||
|
/// Throws InvalidOperationException if called prior to CalculateKeyingMaterial, or multiple
|
||
|
/// times.
|
||
|
/// </summary>
|
||
|
/// <param name="keyingMaterial">The keying material as returned from CalculateKeyingMaterial().</param>
|
||
|
public virtual JPakeRound3Payload CreateRound3PayloadToSend(BigInteger keyingMaterial)
|
||
|
{
|
||
|
if (this.state >= STATE_ROUND_3_CREATED)
|
||
|
throw new InvalidOperationException("Round 3 payload already created for " + this.participantId);
|
||
|
if (this.state < STATE_KEY_CALCULATED)
|
||
|
throw new InvalidOperationException("Keying material must be calculated prior to creating round 3 payload for " + this.participantId);
|
||
|
|
||
|
BigInteger macTag = JPakeUtilities.CalculateMacTag(
|
||
|
this.participantId,
|
||
|
this.partnerParticipantId,
|
||
|
this.gx1,
|
||
|
this.gx2,
|
||
|
this.gx3,
|
||
|
this.gx4,
|
||
|
keyingMaterial,
|
||
|
this.digest);
|
||
|
|
||
|
this.state = STATE_ROUND_3_CREATED;
|
||
|
|
||
|
return new JPakeRound3Payload(participantId, macTag);
|
||
|
}
|
||
|
|
||
|
/// <summary>
|
||
|
/// Validates the payload received from the other participant during round 3.
|
||
|
///
|
||
|
/// See JPakeParticipant for more details on round 3.
|
||
|
///
|
||
|
/// After execution, the State state will be STATE_ROUND_3_VALIDATED.
|
||
|
///
|
||
|
/// Throws CryptoException if validation fails. Throws InvalidOperationException if called prior to
|
||
|
/// CalculateKeyingMaterial or multiple times
|
||
|
/// </summary>
|
||
|
/// <param name="round3PayloadReceived">The round 3 payload received from the other participant.</param>
|
||
|
/// <param name="keyingMaterial">The keying material as returned from CalculateKeyingMaterial().</param>
|
||
|
public virtual void ValidateRound3PayloadReceived(JPakeRound3Payload round3PayloadReceived, BigInteger keyingMaterial)
|
||
|
{
|
||
|
if (this.state >= STATE_ROUND_3_VALIDATED)
|
||
|
throw new InvalidOperationException("Validation already attempted for round 3 payload for " + this.participantId);
|
||
|
if (this.state < STATE_KEY_CALCULATED)
|
||
|
throw new InvalidOperationException("Keying material must be calculated prior to validating round 3 payload for " + this.participantId);
|
||
|
|
||
|
JPakeUtilities.ValidateParticipantIdsDiffer(participantId, round3PayloadReceived.ParticipantId);
|
||
|
JPakeUtilities.ValidateParticipantIdsEqual(this.partnerParticipantId, round3PayloadReceived.ParticipantId);
|
||
|
|
||
|
JPakeUtilities.ValidateMacTag(
|
||
|
this.participantId,
|
||
|
this.partnerParticipantId,
|
||
|
this.gx1,
|
||
|
this.gx2,
|
||
|
this.gx3,
|
||
|
this.gx4,
|
||
|
keyingMaterial,
|
||
|
this.digest,
|
||
|
round3PayloadReceived.MacTag);
|
||
|
|
||
|
// Clear the rest of the fields.
|
||
|
this.gx1 = null;
|
||
|
this.gx2 = null;
|
||
|
this.gx3 = null;
|
||
|
this.gx4 = null;
|
||
|
|
||
|
this.state = STATE_ROUND_3_VALIDATED;
|
||
|
}
|
||
|
}
|
||
|
}
|
||
|
#pragma warning restore
|
||
|
#endif
|