// components/private_ai/mojom/oak_session.mojom.cc is auto generated by mojom_bindings_generator.py, do not edit

// Copyright 2013 The Chromium Authors
// Use of this source code is governed by a BSD-style license that can be
// found in the LICENSE file.

#if defined(__clang__)
#pragma clang diagnostic push
#pragma clang diagnostic ignored "-Wunused-private-field"
#endif

#include "components/private_ai/mojom/oak_session.mojom.h"
#include <math.h>
#include <stdint.h>
#include <utility>
#include "base/debug/alias.h"
#include "base/notreached.h"
#include "base/run_loop.h"
#include "base/strings/string_number_conversions.h"
#include "base/task/thread_pool/thread_pool_instance.h"
#include "base/trace_event/trace_event.h"
#include "base/trace_event/typed_macros.h"
#include "mojo/public/cpp/bindings/lib/default_construct_tag_internal.h"
#include "mojo/public/cpp/bindings/lib/generated_code_util.h"
#include "mojo/public/cpp/bindings/lib/message_internal.h"
#include "mojo/public/cpp/bindings/lib/proxy_to_responder.h"
#include "mojo/public/cpp/bindings/lib/send_message_helper.h"
#include "mojo/public/cpp/bindings/lib/serialization.h"
#include "mojo/public/cpp/bindings/lib/unserialized_message_context.h"
#include "mojo/public/cpp/bindings/lib/validate_params.h"
#include "mojo/public/cpp/bindings/lib/validation_errors.h"
#include "mojo/public/cpp/bindings/mojo_buildflags.h"
#include "mojo/public/cpp/bindings/urgent_message_scope.h"
#include "mojo/public/interfaces/bindings/interface_control_messages.mojom.h"
#include "third_party/perfetto/include/perfetto/tracing/traced_value.h"

#include "components/private_ai/mojom/oak_session.mojom-params-data.h"
#include "components/private_ai/mojom/oak_session.mojom-shared-message-ids.h"

#include "components/private_ai/mojom/oak_session.mojom-import-headers.h"
#include "components/private_ai/mojom/oak_session.mojom-test-utils.h"


namespace private_ai::mojom {
HandshakeMessage::HandshakeMessage()
    : ephemeral_public_key(),
      ciphertext() {}

HandshakeMessage::HandshakeMessage(
    std::vector<uint8_t> ephemeral_public_key_in,
    std::vector<uint8_t> ciphertext_in)
    : ephemeral_public_key(std::move(ephemeral_public_key_in)),
      ciphertext(std::move(ciphertext_in)) {}

HandshakeMessage::~HandshakeMessage() = default;

void HandshakeMessage::WriteIntoTrace(
    perfetto::TracedValue traced_context) const {
  [[maybe_unused]] auto dict = std::move(traced_context).WriteDictionary();
  perfetto::WriteIntoTracedValueWithFallback(
    dict.AddItem(
      "ephemeral_public_key"), this->ephemeral_public_key,
#if BUILDFLAG(MOJO_TRACE_ENABLED)
      "<value of type const std::vector<uint8_t>&>"
#else
      "<value>"
#endif  // BUILDFLAG(MOJO_TRACE_ENABLED)
    );
  perfetto::WriteIntoTracedValueWithFallback(
    dict.AddItem(
      "ciphertext"), this->ciphertext,
#if BUILDFLAG(MOJO_TRACE_ENABLED)
      "<value of type const std::vector<uint8_t>&>"
#else
      "<value>"
#endif  // BUILDFLAG(MOJO_TRACE_ENABLED)
    );
}

bool HandshakeMessage::Validate(
    const void* data,
    mojo::internal::ValidationContext* validation_context) {
  return Data_::Validate(data, validation_context);
}
// The declaration includes the definition on other builds.

OakSession::IPCStableHashFunction OakSession::MessageToMethodInfo_(mojo::Message& message) {
#if !BUILDFLAG(IS_FUCHSIA)
  switch (static_cast<messages::OakSession>(message.name())) {
    case messages::OakSession::kInitiateHandshake: {
      return &OakSession::InitiateHandshake_Sym::IPCStableHash;
    }
    case messages::OakSession::kCompleteHandshake: {
      return &OakSession::CompleteHandshake_Sym::IPCStableHash;
    }
    case messages::OakSession::kEncrypt: {
      return &OakSession::Encrypt_Sym::IPCStableHash;
    }
    case messages::OakSession::kDecrypt: {
      return &OakSession::Decrypt_Sym::IPCStableHash;
    }
  }
#endif  // !BUILDFLAG(IS_FUCHSIA)
  return nullptr;
}


const char* OakSession::MessageToMethodName_(mojo::Message& message) {
#if BUILDFLAG(MOJO_TRACE_ENABLED)
  bool is_response = message.has_flag(mojo::Message::kFlagIsResponse);
  if (!is_response) {
    switch (static_cast<messages::OakSession>(message.name())) {
      case messages::OakSession::kInitiateHandshake:
            return "Receive private_ai::mojom::OakSession::InitiateHandshake";
      case messages::OakSession::kCompleteHandshake:
            return "Receive private_ai::mojom::OakSession::CompleteHandshake";
      case messages::OakSession::kEncrypt:
            return "Receive private_ai::mojom::OakSession::Encrypt";
      case messages::OakSession::kDecrypt:
            return "Receive private_ai::mojom::OakSession::Decrypt";
    }
  } else {
    switch (static_cast<messages::OakSession>(message.name())) {
      case messages::OakSession::kInitiateHandshake:
            return "Receive reply private_ai::mojom::OakSession::InitiateHandshake";
      case messages::OakSession::kCompleteHandshake:
            return "Receive reply private_ai::mojom::OakSession::CompleteHandshake";
      case messages::OakSession::kEncrypt:
            return "Receive reply private_ai::mojom::OakSession::Encrypt";
      case messages::OakSession::kDecrypt:
            return "Receive reply private_ai::mojom::OakSession::Decrypt";
    }
  }
  return "Receive unknown mojo message";
#else
  bool is_response = message.has_flag(mojo::Message::kFlagIsResponse);
  if (is_response) {
    return "Receive mojo reply";
  } else {
    return "Receive mojo message";
  }
#endif // BUILDFLAG(MOJO_TRACE_ENABLED)
}

#if !BUILDFLAG(IS_FUCHSIA)
uint32_t OakSession::InitiateHandshake_Sym::IPCStableHash() {
  // This method's address is used for identifying the mojo method name after
  // symbolization. So each IPCStableHash should have a unique address.
  // We cannot use NO_CODE_FOLDING() here - it relies on the uniqueness of
  // __LINE__ value, which is not unique across different mojo modules.
  // The code below is very similar to NO_CODE_FOLDING, but it uses a unique
  // hash instead of __LINE__.
  static constexpr uint32_t kHash = 0x9bfc31be;  // IPCStableHash for private_ai::mojom::OakSession::InitiateHandshake
  const uint32_t hash = kHash;
  base::debug::Alias(&hash);
  return hash;
}
uint32_t OakSession::CompleteHandshake_Sym::IPCStableHash() {
  // This method's address is used for identifying the mojo method name after
  // symbolization. So each IPCStableHash should have a unique address.
  // We cannot use NO_CODE_FOLDING() here - it relies on the uniqueness of
  // __LINE__ value, which is not unique across different mojo modules.
  // The code below is very similar to NO_CODE_FOLDING, but it uses a unique
  // hash instead of __LINE__.
  static constexpr uint32_t kHash = 0x627c0554;  // IPCStableHash for private_ai::mojom::OakSession::CompleteHandshake
  const uint32_t hash = kHash;
  base::debug::Alias(&hash);
  return hash;
}
uint32_t OakSession::Encrypt_Sym::IPCStableHash() {
  // This method's address is used for identifying the mojo method name after
  // symbolization. So each IPCStableHash should have a unique address.
  // We cannot use NO_CODE_FOLDING() here - it relies on the uniqueness of
  // __LINE__ value, which is not unique across different mojo modules.
  // The code below is very similar to NO_CODE_FOLDING, but it uses a unique
  // hash instead of __LINE__.
  static constexpr uint32_t kHash = 0x8ec5a0fb;  // IPCStableHash for private_ai::mojom::OakSession::Encrypt
  const uint32_t hash = kHash;
  base::debug::Alias(&hash);
  return hash;
}
uint32_t OakSession::Decrypt_Sym::IPCStableHash() {
  // This method's address is used for identifying the mojo method name after
  // symbolization. So each IPCStableHash should have a unique address.
  // We cannot use NO_CODE_FOLDING() here - it relies on the uniqueness of
  // __LINE__ value, which is not unique across different mojo modules.
  // The code below is very similar to NO_CODE_FOLDING, but it uses a unique
  // hash instead of __LINE__.
  static constexpr uint32_t kHash = 0x3edf5aaa;  // IPCStableHash for private_ai::mojom::OakSession::Decrypt
  const uint32_t hash = kHash;
  base::debug::Alias(&hash);
  return hash;
}
# endif // !BUILDFLAG(IS_FUCHSIA)

class OakSession_InitiateHandshake_ForwardToCallback
    : public mojo::MessageReceiver {
 public:
  OakSession_InitiateHandshake_ForwardToCallback(
      OakSession::InitiateHandshakeCallback callback
      ) : callback_(std::move(callback)) {
  }

  OakSession_InitiateHandshake_ForwardToCallback(const OakSession_InitiateHandshake_ForwardToCallback&) = delete;
  OakSession_InitiateHandshake_ForwardToCallback& operator=(const OakSession_InitiateHandshake_ForwardToCallback&) = delete;

  bool Accept(mojo::Message* message) override;
 private:
  OakSession::InitiateHandshakeCallback callback_;
};

class OakSession_CompleteHandshake_ForwardToCallback
    : public mojo::MessageReceiver {
 public:
  OakSession_CompleteHandshake_ForwardToCallback(
      OakSession::CompleteHandshakeCallback callback
      ) : callback_(std::move(callback)) {
  }

  OakSession_CompleteHandshake_ForwardToCallback(const OakSession_CompleteHandshake_ForwardToCallback&) = delete;
  OakSession_CompleteHandshake_ForwardToCallback& operator=(const OakSession_CompleteHandshake_ForwardToCallback&) = delete;

  bool Accept(mojo::Message* message) override;
 private:
  OakSession::CompleteHandshakeCallback callback_;
};

class OakSession_Encrypt_ForwardToCallback
    : public mojo::MessageReceiver {
 public:
  OakSession_Encrypt_ForwardToCallback(
      OakSession::EncryptCallback callback
      ) : callback_(std::move(callback)) {
  }

  OakSession_Encrypt_ForwardToCallback(const OakSession_Encrypt_ForwardToCallback&) = delete;
  OakSession_Encrypt_ForwardToCallback& operator=(const OakSession_Encrypt_ForwardToCallback&) = delete;

  bool Accept(mojo::Message* message) override;
 private:
  OakSession::EncryptCallback callback_;
};

class OakSession_Decrypt_ForwardToCallback
    : public mojo::MessageReceiver {
 public:
  OakSession_Decrypt_ForwardToCallback(
      OakSession::DecryptCallback callback
      ) : callback_(std::move(callback)) {
  }

  OakSession_Decrypt_ForwardToCallback(const OakSession_Decrypt_ForwardToCallback&) = delete;
  OakSession_Decrypt_ForwardToCallback& operator=(const OakSession_Decrypt_ForwardToCallback&) = delete;

  bool Accept(mojo::Message* message) override;
 private:
  OakSession::DecryptCallback callback_;
};

OakSessionProxy::OakSessionProxy(mojo::MessageReceiverWithResponder* receiver)
    : receiver_(receiver) {
}

void OakSessionProxy::InitiateHandshake(
    InitiateHandshakeCallback callback) {
#if BUILDFLAG(MOJO_TRACE_ENABLED)
  TRACE_EVENT0("mojom", "Send private_ai::mojom::OakSession::InitiateHandshake");
#endif

  const bool kExpectsResponse = true;
  const bool kIsSync = false;
  const bool kAllowInterrupt = true;
  const bool is_urgent = false;

  const uint32_t kFlags =
      ((kExpectsResponse) ? mojo::Message::kFlagExpectsResponse : 0) |
      ((kIsSync) ? mojo::Message::kFlagIsSync : 0) |
      ((kAllowInterrupt) ? 0 : mojo::Message::kFlagNoInterrupt) |
      ((is_urgent) ? mojo::Message::kFlagIsUrgent : 0);

  const size_t estimated_payload_size =
    0;
  mojo::Message message(
      std::to_underlying(messages::OakSession::kInitiateHandshake), kFlags, estimated_payload_size);
  mojo::internal::MessageFragment<
      ::private_ai::mojom::internal::OakSession_InitiateHandshake_Params_Data> params(
          message);
  params.Allocate();

#if defined(ENABLE_IPC_FUZZER)
  message.set_interface_name(OakSession::Name_);
  message.set_method_name("InitiateHandshake");
#endif
  std::unique_ptr<mojo::MessageReceiver> responder(
      new OakSession_InitiateHandshake_ForwardToCallback(
          std::move(callback)));
  ::mojo::internal::SendMojoMessage(*receiver_, message, std::move(responder));
}

void OakSessionProxy::CompleteHandshake(
    ::private_ai::HandshakeMessage in_response, CompleteHandshakeCallback callback) {
#if BUILDFLAG(MOJO_TRACE_ENABLED)
  TRACE_EVENT1(
    "mojom", "Send private_ai::mojom::OakSession::CompleteHandshake", "input_parameters",
    [&](perfetto::TracedValue context){
      auto dict = std::move(context).WriteDictionary();
      perfetto::WriteIntoTracedValueWithFallback(
           dict.AddItem("response"), in_response,
                        "<value of type ::private_ai::HandshakeMessage>");
   });
#endif

  const bool kExpectsResponse = true;
  const bool kIsSync = false;
  const bool kAllowInterrupt = true;
  const bool is_urgent = false;

  const uint32_t kFlags =
      ((kExpectsResponse) ? mojo::Message::kFlagExpectsResponse : 0) |
      ((kIsSync) ? mojo::Message::kFlagIsSync : 0) |
      ((kAllowInterrupt) ? 0 : mojo::Message::kFlagNoInterrupt) |
      ((is_urgent) ? mojo::Message::kFlagIsUrgent : 0);

  const size_t estimated_payload_size =
    0;
  mojo::Message message(
      std::to_underlying(messages::OakSession::kCompleteHandshake), kFlags, estimated_payload_size);
  mojo::internal::MessageFragment<
      ::private_ai::mojom::internal::OakSession_CompleteHandshake_Params_Data> params(
          message);
  params.Allocate();
  mojo::internal::MessageFragment<
      typename decltype(params->response)::BaseType> response_fragment(
          params.message());
  
  mojo::internal::Serialize<::private_ai::mojom::HandshakeMessageDataView>(
    in_response,
    response_fragment);

  params->response.Set(
      response_fragment.is_null() ? nullptr : response_fragment.data());

  
  MOJO_INTERNAL_CHECK_SERIALIZATION(
    mojo::internal::SendValidation::kDefault,
    !(params->response.is_null()),
    mojo::internal::VALIDATION_ERROR_UNEXPECTED_NULL_POINTER,
    "null response in OakSession.CompleteHandshake request");

#if defined(ENABLE_IPC_FUZZER)
  message.set_interface_name(OakSession::Name_);
  message.set_method_name("CompleteHandshake");
#endif
  std::unique_ptr<mojo::MessageReceiver> responder(
      new OakSession_CompleteHandshake_ForwardToCallback(
          std::move(callback)));
  ::mojo::internal::SendMojoMessage(*receiver_, message, std::move(responder));
}

void OakSessionProxy::Encrypt(
    const std::vector<uint8_t>& in_input, EncryptCallback callback) {
#if BUILDFLAG(MOJO_TRACE_ENABLED)
  TRACE_EVENT1(
    "mojom", "Send private_ai::mojom::OakSession::Encrypt", "input_parameters",
    [&](perfetto::TracedValue context){
      auto dict = std::move(context).WriteDictionary();
      perfetto::WriteIntoTracedValueWithFallback(
           dict.AddItem("input"), in_input,
                        "<value of type const std::vector<uint8_t>&>");
   });
#endif

  const bool kExpectsResponse = true;
  const bool kIsSync = false;
  const bool kAllowInterrupt = true;
  const bool is_urgent = false;

  const uint32_t kFlags =
      ((kExpectsResponse) ? mojo::Message::kFlagExpectsResponse : 0) |
      ((kIsSync) ? mojo::Message::kFlagIsSync : 0) |
      ((kAllowInterrupt) ? 0 : mojo::Message::kFlagNoInterrupt) |
      ((is_urgent) ? mojo::Message::kFlagIsUrgent : 0);

  const size_t estimated_payload_size =
    0;
  mojo::Message message(
      std::to_underlying(messages::OakSession::kEncrypt), kFlags, estimated_payload_size);
  mojo::internal::MessageFragment<
      ::private_ai::mojom::internal::OakSession_Encrypt_Params_Data> params(
          message);
  params.Allocate();
  mojo::internal::MessageFragment<
      typename decltype(params->input)::BaseType>
      input_fragment(params.message());
  constexpr const mojo::internal::ContainerValidateParams& input_validate_params =
      mojo::internal::GetArrayValidator<0, false, nullptr>();
  
  mojo::internal::Serialize<mojo::ArrayDataView<uint8_t>>(
    in_input,
    input_fragment,
    &input_validate_params);

  params->input.Set(
      input_fragment.is_null() ? nullptr : input_fragment.data());

  
  MOJO_INTERNAL_CHECK_SERIALIZATION(
    mojo::internal::SendValidation::kDefault,
    !(params->input.is_null()),
    mojo::internal::VALIDATION_ERROR_UNEXPECTED_NULL_POINTER,
    "null input in OakSession.Encrypt request");

#if defined(ENABLE_IPC_FUZZER)
  message.set_interface_name(OakSession::Name_);
  message.set_method_name("Encrypt");
#endif
  std::unique_ptr<mojo::MessageReceiver> responder(
      new OakSession_Encrypt_ForwardToCallback(
          std::move(callback)));
  ::mojo::internal::SendMojoMessage(*receiver_, message, std::move(responder));
}

void OakSessionProxy::Decrypt(
    const std::vector<uint8_t>& in_input, DecryptCallback callback) {
#if BUILDFLAG(MOJO_TRACE_ENABLED)
  TRACE_EVENT1(
    "mojom", "Send private_ai::mojom::OakSession::Decrypt", "input_parameters",
    [&](perfetto::TracedValue context){
      auto dict = std::move(context).WriteDictionary();
      perfetto::WriteIntoTracedValueWithFallback(
           dict.AddItem("input"), in_input,
                        "<value of type const std::vector<uint8_t>&>");
   });
#endif

  const bool kExpectsResponse = true;
  const bool kIsSync = false;
  const bool kAllowInterrupt = true;
  const bool is_urgent = false;

  const uint32_t kFlags =
      ((kExpectsResponse) ? mojo::Message::kFlagExpectsResponse : 0) |
      ((kIsSync) ? mojo::Message::kFlagIsSync : 0) |
      ((kAllowInterrupt) ? 0 : mojo::Message::kFlagNoInterrupt) |
      ((is_urgent) ? mojo::Message::kFlagIsUrgent : 0);

  const size_t estimated_payload_size =
    0;
  mojo::Message message(
      std::to_underlying(messages::OakSession::kDecrypt), kFlags, estimated_payload_size);
  mojo::internal::MessageFragment<
      ::private_ai::mojom::internal::OakSession_Decrypt_Params_Data> params(
          message);
  params.Allocate();
  mojo::internal::MessageFragment<
      typename decltype(params->input)::BaseType>
      input_fragment(params.message());
  constexpr const mojo::internal::ContainerValidateParams& input_validate_params =
      mojo::internal::GetArrayValidator<0, false, nullptr>();
  
  mojo::internal::Serialize<mojo::ArrayDataView<uint8_t>>(
    in_input,
    input_fragment,
    &input_validate_params);

  params->input.Set(
      input_fragment.is_null() ? nullptr : input_fragment.data());

  
  MOJO_INTERNAL_CHECK_SERIALIZATION(
    mojo::internal::SendValidation::kDefault,
    !(params->input.is_null()),
    mojo::internal::VALIDATION_ERROR_UNEXPECTED_NULL_POINTER,
    "null input in OakSession.Decrypt request");

#if defined(ENABLE_IPC_FUZZER)
  message.set_interface_name(OakSession::Name_);
  message.set_method_name("Decrypt");
#endif
  std::unique_ptr<mojo::MessageReceiver> responder(
      new OakSession_Decrypt_ForwardToCallback(
          std::move(callback)));
  ::mojo::internal::SendMojoMessage(*receiver_, message, std::move(responder));
}
class OakSession_InitiateHandshake_ProxyToResponder : public ::mojo::internal::ProxyToResponder {
 public:
  static OakSession::InitiateHandshakeCallback CreateCallback(
      ::mojo::Message& message,
      std::unique_ptr<mojo::MessageReceiverWithStatus> responder) {
    std::unique_ptr<OakSession_InitiateHandshake_ProxyToResponder> proxy(
        new OakSession_InitiateHandshake_ProxyToResponder(
            message, std::move(responder)));
    return base::BindOnce(&OakSession_InitiateHandshake_ProxyToResponder::Run,
                          std::move(proxy));
  }

  ~OakSession_InitiateHandshake_ProxyToResponder() {
#if DCHECK_IS_ON()
    if (responder_) {
      // If we're being destroyed without being run, we want to ensure the
      // binding endpoint has been closed. This checks for that asynchronously.
      // We pass a bound generated callback to handle the response so that any
      // resulting DCHECK stack will have useful interface type information.
      // Instantiate a ScopedFizzleBlockShutdownTasks to allow this request to
      // fizzle if this happens after shutdown and the endpoint is bound to a
      // BLOCK_SHUTDOWN sequence.
      base::ThreadPoolInstance::ScopedFizzleBlockShutdownTasks fizzler;
      responder_->IsConnectedAsync(base::BindOnce(&OnIsConnectedComplete));
    }
#endif
  }

 private:
  OakSession_InitiateHandshake_ProxyToResponder(
      ::mojo::Message& message,
      std::unique_ptr<mojo::MessageReceiverWithStatus> responder)
      : ::mojo::internal::ProxyToResponder(message, std::move(responder)) {
  }

#if DCHECK_IS_ON()
  static void OnIsConnectedComplete(bool connected) {
    DCHECK(!connected)
        << "OakSession::InitiateHandshakeCallback was destroyed without "
        << "first either being run or its corresponding binding being closed. "
        << "It is an error to drop response callbacks which still correspond "
        << "to an open interface pipe.";
  }
#endif

  void Run(
      ::private_ai::HandshakeMessage in_request);
};

bool OakSession_InitiateHandshake_ForwardToCallback::Accept(
    mojo::Message* message) {
  DCHECK(message->is_serialized());
  internal::OakSession_InitiateHandshake_ResponseParams_Data* params =
      reinterpret_cast<
          internal::OakSession_InitiateHandshake_ResponseParams_Data*>(
              message->mutable_payload());
  

  // Validation for OakSession.0
  bool success = true;
  ::private_ai::HandshakeMessage p_request{};
  OakSession_InitiateHandshake_ResponseParamsDataView input_data_view(params, message);
  
  if (success && !input_data_view.ReadRequest(&p_request))
    success = false;
  if (!success) {
    ReportValidationErrorForMessage(
        message,
        mojo::internal::VALIDATION_ERROR_DESERIALIZATION_FAILED,
        OakSession::Name_, 0, true);
    return false;
  }
  if (!callback_.is_null()) {
    std::move(callback_).Run(
std::move(p_request));
  }
  return true;
}

void OakSession_InitiateHandshake_ProxyToResponder::Run(
    ::private_ai::HandshakeMessage in_request) {
#if BUILDFLAG(MOJO_TRACE_ENABLED)
  TRACE_EVENT1(
    "mojom", "Send reply private_ai::mojom::OakSession::InitiateHandshake", "async_response_parameters",
    [&](perfetto::TracedValue context){
      auto dict = std::move(context).WriteDictionary();
      perfetto::WriteIntoTracedValueWithFallback(
           dict.AddItem("request"), in_request,
                        "<value of type ::private_ai::HandshakeMessage>");
   });
#endif

  const uint32_t kFlags = mojo::Message::kFlagIsResponse |
      ((is_sync_) ? mojo::Message::kFlagIsSync : 0) |
      ((true) ? 0 : mojo::Message::kFlagNoInterrupt) |
      ((false) ? mojo::Message::kFlagIsUrgent : 0);

  const size_t estimated_payload_size =
    0;
  mojo::Message message(
      std::to_underlying(messages::OakSession::kInitiateHandshake), kFlags, estimated_payload_size);
  mojo::internal::MessageFragment<
      ::private_ai::mojom::internal::OakSession_InitiateHandshake_ResponseParams_Data> params(
          message);
  params.Allocate();
  mojo::internal::MessageFragment<
      typename decltype(params->request)::BaseType> request_fragment(
          params.message());
  
  mojo::internal::Serialize<::private_ai::mojom::HandshakeMessageDataView>(
    in_request,
    request_fragment);

  params->request.Set(
      request_fragment.is_null() ? nullptr : request_fragment.data());

  
  MOJO_INTERNAL_CHECK_SERIALIZATION(
    mojo::internal::SendValidation::kDefault,
    !(params->request.is_null()),
    mojo::internal::VALIDATION_ERROR_UNEXPECTED_NULL_POINTER,
    "null request in ");

#if defined(ENABLE_IPC_FUZZER)
  message.set_interface_name(OakSession::Name_);
  message.set_method_name("InitiateHandshake");
#endif

  message.set_request_id(request_id_);
  message.set_trace_nonce(trace_nonce_);
  ::mojo::internal::SendMojoMessage(*responder_, message);
  // SendMojoMessage() fails silently if the responder connection is closed,
  // or if the message is malformed.
  //
  // TODO(darin): If Accept() returns false due to a malformed message, that
  // may be good reason to close the connection. However, we don't have a
  // way to do that from here. We should add a way.
  responder_ = nullptr;
}
class OakSession_CompleteHandshake_ProxyToResponder : public ::mojo::internal::ProxyToResponder {
 public:
  static OakSession::CompleteHandshakeCallback CreateCallback(
      ::mojo::Message& message,
      std::unique_ptr<mojo::MessageReceiverWithStatus> responder) {
    std::unique_ptr<OakSession_CompleteHandshake_ProxyToResponder> proxy(
        new OakSession_CompleteHandshake_ProxyToResponder(
            message, std::move(responder)));
    return base::BindOnce(&OakSession_CompleteHandshake_ProxyToResponder::Run,
                          std::move(proxy));
  }

  ~OakSession_CompleteHandshake_ProxyToResponder() {
#if DCHECK_IS_ON()
    if (responder_) {
      // If we're being destroyed without being run, we want to ensure the
      // binding endpoint has been closed. This checks for that asynchronously.
      // We pass a bound generated callback to handle the response so that any
      // resulting DCHECK stack will have useful interface type information.
      // Instantiate a ScopedFizzleBlockShutdownTasks to allow this request to
      // fizzle if this happens after shutdown and the endpoint is bound to a
      // BLOCK_SHUTDOWN sequence.
      base::ThreadPoolInstance::ScopedFizzleBlockShutdownTasks fizzler;
      responder_->IsConnectedAsync(base::BindOnce(&OnIsConnectedComplete));
    }
#endif
  }

 private:
  OakSession_CompleteHandshake_ProxyToResponder(
      ::mojo::Message& message,
      std::unique_ptr<mojo::MessageReceiverWithStatus> responder)
      : ::mojo::internal::ProxyToResponder(message, std::move(responder)) {
  }

#if DCHECK_IS_ON()
  static void OnIsConnectedComplete(bool connected) {
    DCHECK(!connected)
        << "OakSession::CompleteHandshakeCallback was destroyed without "
        << "first either being run or its corresponding binding being closed. "
        << "It is an error to drop response callbacks which still correspond "
        << "to an open interface pipe.";
  }
#endif

  void Run(
      bool in_success);
};

bool OakSession_CompleteHandshake_ForwardToCallback::Accept(
    mojo::Message* message) {
  DCHECK(message->is_serialized());
  internal::OakSession_CompleteHandshake_ResponseParams_Data* params =
      reinterpret_cast<
          internal::OakSession_CompleteHandshake_ResponseParams_Data*>(
              message->mutable_payload());
  

  // Validation for OakSession.1
  bool success = true;
  bool p_success{};
  OakSession_CompleteHandshake_ResponseParamsDataView input_data_view(params, message);
  
  if (success)
    p_success = input_data_view.success();
  if (!success) {
    ReportValidationErrorForMessage(
        message,
        mojo::internal::VALIDATION_ERROR_DESERIALIZATION_FAILED,
        OakSession::Name_, 1, true);
    return false;
  }
  if (!callback_.is_null()) {
    std::move(callback_).Run(
std::move(p_success));
  }
  return true;
}

void OakSession_CompleteHandshake_ProxyToResponder::Run(
    bool in_success) {
#if BUILDFLAG(MOJO_TRACE_ENABLED)
  TRACE_EVENT1(
    "mojom", "Send reply private_ai::mojom::OakSession::CompleteHandshake", "async_response_parameters",
    [&](perfetto::TracedValue context){
      auto dict = std::move(context).WriteDictionary();
      perfetto::WriteIntoTracedValueWithFallback(
           dict.AddItem("success"), in_success,
                        "<value of type bool>");
   });
#endif

  const uint32_t kFlags = mojo::Message::kFlagIsResponse |
      ((is_sync_) ? mojo::Message::kFlagIsSync : 0) |
      ((true) ? 0 : mojo::Message::kFlagNoInterrupt) |
      ((false) ? mojo::Message::kFlagIsUrgent : 0);

  const size_t estimated_payload_size =
    0;
  mojo::Message message(
      std::to_underlying(messages::OakSession::kCompleteHandshake), kFlags, estimated_payload_size);
  mojo::internal::MessageFragment<
      ::private_ai::mojom::internal::OakSession_CompleteHandshake_ResponseParams_Data> params(
          message);
  params.Allocate();

  params->success = in_success;

#if defined(ENABLE_IPC_FUZZER)
  message.set_interface_name(OakSession::Name_);
  message.set_method_name("CompleteHandshake");
#endif

  message.set_request_id(request_id_);
  message.set_trace_nonce(trace_nonce_);
  ::mojo::internal::SendMojoMessage(*responder_, message);
  // SendMojoMessage() fails silently if the responder connection is closed,
  // or if the message is malformed.
  //
  // TODO(darin): If Accept() returns false due to a malformed message, that
  // may be good reason to close the connection. However, we don't have a
  // way to do that from here. We should add a way.
  responder_ = nullptr;
}
class OakSession_Encrypt_ProxyToResponder : public ::mojo::internal::ProxyToResponder {
 public:
  static OakSession::EncryptCallback CreateCallback(
      ::mojo::Message& message,
      std::unique_ptr<mojo::MessageReceiverWithStatus> responder) {
    std::unique_ptr<OakSession_Encrypt_ProxyToResponder> proxy(
        new OakSession_Encrypt_ProxyToResponder(
            message, std::move(responder)));
    return base::BindOnce(&OakSession_Encrypt_ProxyToResponder::Run,
                          std::move(proxy));
  }

  ~OakSession_Encrypt_ProxyToResponder() {
#if DCHECK_IS_ON()
    if (responder_) {
      // If we're being destroyed without being run, we want to ensure the
      // binding endpoint has been closed. This checks for that asynchronously.
      // We pass a bound generated callback to handle the response so that any
      // resulting DCHECK stack will have useful interface type information.
      // Instantiate a ScopedFizzleBlockShutdownTasks to allow this request to
      // fizzle if this happens after shutdown and the endpoint is bound to a
      // BLOCK_SHUTDOWN sequence.
      base::ThreadPoolInstance::ScopedFizzleBlockShutdownTasks fizzler;
      responder_->IsConnectedAsync(base::BindOnce(&OnIsConnectedComplete));
    }
#endif
  }

 private:
  OakSession_Encrypt_ProxyToResponder(
      ::mojo::Message& message,
      std::unique_ptr<mojo::MessageReceiverWithStatus> responder)
      : ::mojo::internal::ProxyToResponder(message, std::move(responder)) {
  }

#if DCHECK_IS_ON()
  static void OnIsConnectedComplete(bool connected) {
    DCHECK(!connected)
        << "OakSession::EncryptCallback was destroyed without "
        << "first either being run or its corresponding binding being closed. "
        << "It is an error to drop response callbacks which still correspond "
        << "to an open interface pipe.";
  }
#endif

  void Run(
      const std::optional<std::vector<uint8_t>>& in_output);
};

bool OakSession_Encrypt_ForwardToCallback::Accept(
    mojo::Message* message) {
  DCHECK(message->is_serialized());
  internal::OakSession_Encrypt_ResponseParams_Data* params =
      reinterpret_cast<
          internal::OakSession_Encrypt_ResponseParams_Data*>(
              message->mutable_payload());
  

  // Validation for OakSession.2
  bool success = true;
  std::optional<std::vector<uint8_t>> p_output{};
  OakSession_Encrypt_ResponseParamsDataView input_data_view(params, message);
  
  if (success && !input_data_view.ReadOutput(&p_output))
    success = false;
  if (!success) {
    ReportValidationErrorForMessage(
        message,
        mojo::internal::VALIDATION_ERROR_DESERIALIZATION_FAILED,
        OakSession::Name_, 2, true);
    return false;
  }
  if (!callback_.is_null()) {
    std::move(callback_).Run(
std::move(p_output));
  }
  return true;
}

void OakSession_Encrypt_ProxyToResponder::Run(
    const std::optional<std::vector<uint8_t>>& in_output) {
#if BUILDFLAG(MOJO_TRACE_ENABLED)
  TRACE_EVENT1(
    "mojom", "Send reply private_ai::mojom::OakSession::Encrypt", "async_response_parameters",
    [&](perfetto::TracedValue context){
      auto dict = std::move(context).WriteDictionary();
      perfetto::WriteIntoTracedValueWithFallback(
           dict.AddItem("output"), in_output,
                        "<value of type const std::optional<std::vector<uint8_t>>&>");
   });
#endif

  const uint32_t kFlags = mojo::Message::kFlagIsResponse |
      ((is_sync_) ? mojo::Message::kFlagIsSync : 0) |
      ((true) ? 0 : mojo::Message::kFlagNoInterrupt) |
      ((false) ? mojo::Message::kFlagIsUrgent : 0);

  const size_t estimated_payload_size =
    0;
  mojo::Message message(
      std::to_underlying(messages::OakSession::kEncrypt), kFlags, estimated_payload_size);
  mojo::internal::MessageFragment<
      ::private_ai::mojom::internal::OakSession_Encrypt_ResponseParams_Data> params(
          message);
  params.Allocate();
  mojo::internal::MessageFragment<
      typename decltype(params->output)::BaseType>
      output_fragment(params.message());
  constexpr const mojo::internal::ContainerValidateParams& output_validate_params =
      mojo::internal::GetArrayValidator<0, false, nullptr>();
  
  mojo::internal::Serialize<mojo::ArrayDataView<uint8_t>>(
    in_output,
    output_fragment,
    &output_validate_params);

  params->output.Set(
      output_fragment.is_null() ? nullptr : output_fragment.data());

#if defined(ENABLE_IPC_FUZZER)
  message.set_interface_name(OakSession::Name_);
  message.set_method_name("Encrypt");
#endif

  message.set_request_id(request_id_);
  message.set_trace_nonce(trace_nonce_);
  ::mojo::internal::SendMojoMessage(*responder_, message);
  // SendMojoMessage() fails silently if the responder connection is closed,
  // or if the message is malformed.
  //
  // TODO(darin): If Accept() returns false due to a malformed message, that
  // may be good reason to close the connection. However, we don't have a
  // way to do that from here. We should add a way.
  responder_ = nullptr;
}
class OakSession_Decrypt_ProxyToResponder : public ::mojo::internal::ProxyToResponder {
 public:
  static OakSession::DecryptCallback CreateCallback(
      ::mojo::Message& message,
      std::unique_ptr<mojo::MessageReceiverWithStatus> responder) {
    std::unique_ptr<OakSession_Decrypt_ProxyToResponder> proxy(
        new OakSession_Decrypt_ProxyToResponder(
            message, std::move(responder)));
    return base::BindOnce(&OakSession_Decrypt_ProxyToResponder::Run,
                          std::move(proxy));
  }

  ~OakSession_Decrypt_ProxyToResponder() {
#if DCHECK_IS_ON()
    if (responder_) {
      // If we're being destroyed without being run, we want to ensure the
      // binding endpoint has been closed. This checks for that asynchronously.
      // We pass a bound generated callback to handle the response so that any
      // resulting DCHECK stack will have useful interface type information.
      // Instantiate a ScopedFizzleBlockShutdownTasks to allow this request to
      // fizzle if this happens after shutdown and the endpoint is bound to a
      // BLOCK_SHUTDOWN sequence.
      base::ThreadPoolInstance::ScopedFizzleBlockShutdownTasks fizzler;
      responder_->IsConnectedAsync(base::BindOnce(&OnIsConnectedComplete));
    }
#endif
  }

 private:
  OakSession_Decrypt_ProxyToResponder(
      ::mojo::Message& message,
      std::unique_ptr<mojo::MessageReceiverWithStatus> responder)
      : ::mojo::internal::ProxyToResponder(message, std::move(responder)) {
  }

#if DCHECK_IS_ON()
  static void OnIsConnectedComplete(bool connected) {
    DCHECK(!connected)
        << "OakSession::DecryptCallback was destroyed without "
        << "first either being run or its corresponding binding being closed. "
        << "It is an error to drop response callbacks which still correspond "
        << "to an open interface pipe.";
  }
#endif

  void Run(
      const std::optional<std::vector<uint8_t>>& in_output);
};

bool OakSession_Decrypt_ForwardToCallback::Accept(
    mojo::Message* message) {
  DCHECK(message->is_serialized());
  internal::OakSession_Decrypt_ResponseParams_Data* params =
      reinterpret_cast<
          internal::OakSession_Decrypt_ResponseParams_Data*>(
              message->mutable_payload());
  

  // Validation for OakSession.3
  bool success = true;
  std::optional<std::vector<uint8_t>> p_output{};
  OakSession_Decrypt_ResponseParamsDataView input_data_view(params, message);
  
  if (success && !input_data_view.ReadOutput(&p_output))
    success = false;
  if (!success) {
    ReportValidationErrorForMessage(
        message,
        mojo::internal::VALIDATION_ERROR_DESERIALIZATION_FAILED,
        OakSession::Name_, 3, true);
    return false;
  }
  if (!callback_.is_null()) {
    std::move(callback_).Run(
std::move(p_output));
  }
  return true;
}

void OakSession_Decrypt_ProxyToResponder::Run(
    const std::optional<std::vector<uint8_t>>& in_output) {
#if BUILDFLAG(MOJO_TRACE_ENABLED)
  TRACE_EVENT1(
    "mojom", "Send reply private_ai::mojom::OakSession::Decrypt", "async_response_parameters",
    [&](perfetto::TracedValue context){
      auto dict = std::move(context).WriteDictionary();
      perfetto::WriteIntoTracedValueWithFallback(
           dict.AddItem("output"), in_output,
                        "<value of type const std::optional<std::vector<uint8_t>>&>");
   });
#endif

  const uint32_t kFlags = mojo::Message::kFlagIsResponse |
      ((is_sync_) ? mojo::Message::kFlagIsSync : 0) |
      ((true) ? 0 : mojo::Message::kFlagNoInterrupt) |
      ((false) ? mojo::Message::kFlagIsUrgent : 0);

  const size_t estimated_payload_size =
    0;
  mojo::Message message(
      std::to_underlying(messages::OakSession::kDecrypt), kFlags, estimated_payload_size);
  mojo::internal::MessageFragment<
      ::private_ai::mojom::internal::OakSession_Decrypt_ResponseParams_Data> params(
          message);
  params.Allocate();
  mojo::internal::MessageFragment<
      typename decltype(params->output)::BaseType>
      output_fragment(params.message());
  constexpr const mojo::internal::ContainerValidateParams& output_validate_params =
      mojo::internal::GetArrayValidator<0, false, nullptr>();
  
  mojo::internal::Serialize<mojo::ArrayDataView<uint8_t>>(
    in_output,
    output_fragment,
    &output_validate_params);

  params->output.Set(
      output_fragment.is_null() ? nullptr : output_fragment.data());

#if defined(ENABLE_IPC_FUZZER)
  message.set_interface_name(OakSession::Name_);
  message.set_method_name("Decrypt");
#endif

  message.set_request_id(request_id_);
  message.set_trace_nonce(trace_nonce_);
  ::mojo::internal::SendMojoMessage(*responder_, message);
  // SendMojoMessage() fails silently if the responder connection is closed,
  // or if the message is malformed.
  //
  // TODO(darin): If Accept() returns false due to a malformed message, that
  // may be good reason to close the connection. However, we don't have a
  // way to do that from here. We should add a way.
  responder_ = nullptr;
}

// static
bool OakSessionStubDispatch::Accept(
    OakSession* impl,
    mojo::Message* message) {
  switch (static_cast<messages::OakSession>(message->header()->name)) {
    case messages::OakSession::kInitiateHandshake: {
      break;
    }
    case messages::OakSession::kCompleteHandshake: {
      break;
    }
    case messages::OakSession::kEncrypt: {
      break;
    }
    case messages::OakSession::kDecrypt: {
      break;
    }
  }
  return false;
}

// static
bool OakSessionStubDispatch::AcceptWithResponder(
    OakSession* impl,
    mojo::Message* message,
    std::unique_ptr<mojo::MessageReceiverWithStatus> responder) {
  [[maybe_unused]] const bool message_is_sync =
      message->has_flag(mojo::Message::kFlagIsSync);
  [[maybe_unused]] const uint64_t request_id = message->request_id();
  switch (static_cast<messages::OakSession>(message->header()->name)) {
    case messages::OakSession::kInitiateHandshake: {
      internal::OakSession_InitiateHandshake_Params_Data* params =
          reinterpret_cast<
              internal::OakSession_InitiateHandshake_Params_Data*>(
                  message->mutable_payload());
      

      // Validation for OakSession.0
      bool success = true;
      OakSession_InitiateHandshake_ParamsDataView input_data_view(params, message);
      
      if (!success) {
        ReportValidationErrorForMessage(
            message,
            mojo::internal::VALIDATION_ERROR_DESERIALIZATION_FAILED,
            OakSession::Name_, 0, false);
        return false;
      }
      auto callback =
          OakSession_InitiateHandshake_ProxyToResponder::CreateCallback(
              *message, std::move(responder));
      // A null |impl| means no implementation was bound.
      DCHECK(impl);
      impl->InitiateHandshake(std::move(callback));
      return true;
    }
    case messages::OakSession::kCompleteHandshake: {
      internal::OakSession_CompleteHandshake_Params_Data* params =
          reinterpret_cast<
              internal::OakSession_CompleteHandshake_Params_Data*>(
                  message->mutable_payload());
      

      // Validation for OakSession.1
      bool success = true;
      ::private_ai::HandshakeMessage p_response{};
      OakSession_CompleteHandshake_ParamsDataView input_data_view(params, message);
      
      if (success && !input_data_view.ReadResponse(&p_response))
        success = false;
      if (!success) {
        ReportValidationErrorForMessage(
            message,
            mojo::internal::VALIDATION_ERROR_DESERIALIZATION_FAILED,
            OakSession::Name_, 1, false);
        return false;
      }
      auto callback =
          OakSession_CompleteHandshake_ProxyToResponder::CreateCallback(
              *message, std::move(responder));
      // A null |impl| means no implementation was bound.
      DCHECK(impl);
      impl->CompleteHandshake(        
        std::move(p_response), std::move(callback));
      return true;
    }
    case messages::OakSession::kEncrypt: {
      internal::OakSession_Encrypt_Params_Data* params =
          reinterpret_cast<
              internal::OakSession_Encrypt_Params_Data*>(
                  message->mutable_payload());
      

      // Validation for OakSession.2
      bool success = true;
      std::vector<uint8_t> p_input{};
      OakSession_Encrypt_ParamsDataView input_data_view(params, message);
      
      if (success && !input_data_view.ReadInput(&p_input))
        success = false;
      if (!success) {
        ReportValidationErrorForMessage(
            message,
            mojo::internal::VALIDATION_ERROR_DESERIALIZATION_FAILED,
            OakSession::Name_, 2, false);
        return false;
      }
      auto callback =
          OakSession_Encrypt_ProxyToResponder::CreateCallback(
              *message, std::move(responder));
      // A null |impl| means no implementation was bound.
      DCHECK(impl);
      impl->Encrypt(        
        std::move(p_input), std::move(callback));
      return true;
    }
    case messages::OakSession::kDecrypt: {
      internal::OakSession_Decrypt_Params_Data* params =
          reinterpret_cast<
              internal::OakSession_Decrypt_Params_Data*>(
                  message->mutable_payload());
      

      // Validation for OakSession.3
      bool success = true;
      std::vector<uint8_t> p_input{};
      OakSession_Decrypt_ParamsDataView input_data_view(params, message);
      
      if (success && !input_data_view.ReadInput(&p_input))
        success = false;
      if (!success) {
        ReportValidationErrorForMessage(
            message,
            mojo::internal::VALIDATION_ERROR_DESERIALIZATION_FAILED,
            OakSession::Name_, 3, false);
        return false;
      }
      auto callback =
          OakSession_Decrypt_ProxyToResponder::CreateCallback(
              *message, std::move(responder));
      // A null |impl| means no implementation was bound.
      DCHECK(impl);
      impl->Decrypt(        
        std::move(p_input), std::move(callback));
      return true;
    }
  }
  return false;
}
namespace {
}  // namespace
static const mojo::internal::GenericValidationInfo kOakSessionValidationInfo[] = {
    { &internal::OakSession_InitiateHandshake_Params_Data::Validate,
     &internal::OakSession_InitiateHandshake_ResponseParams_Data::Validate},
    { &internal::OakSession_CompleteHandshake_Params_Data::Validate,
     &internal::OakSession_CompleteHandshake_ResponseParams_Data::Validate},
    { &internal::OakSession_Encrypt_Params_Data::Validate,
     &internal::OakSession_Encrypt_ResponseParams_Data::Validate},
    { &internal::OakSession_Decrypt_Params_Data::Validate,
     &internal::OakSession_Decrypt_ResponseParams_Data::Validate},
};

bool OakSessionRequestValidator::Accept(mojo::Message* message) {
  return mojo::internal::ValidateRequestGenericPacked(
    message,
    ::private_ai::mojom::OakSession::Name_,
    kOakSessionValidationInfo);
}

bool OakSessionResponseValidator::Accept(mojo::Message* message) {
  return mojo::internal::ValidateResponseGenericPacked(
    message,
    ::private_ai::mojom::OakSession::Name_,
    kOakSessionValidationInfo);
}


}  // private_ai::mojom


namespace mojo {


// static
bool StructTraits<::private_ai::mojom::HandshakeMessage::DataView, ::private_ai::mojom::HandshakeMessagePtr>::Read(
    ::private_ai::mojom::HandshakeMessage::DataView input,
    ::private_ai::mojom::HandshakeMessagePtr* output) {
  bool success = true;
  ::private_ai::mojom::HandshakeMessagePtr result(::private_ai::mojom::HandshakeMessage::New());
  
      if (success && !input.ReadEphemeralPublicKey(&result->ephemeral_public_key))
        success = false;
      if (success && !input.ReadCiphertext(&result->ciphertext))
        success = false;
  *output = std::move(result);
  return success;
}

}  // namespace mojo


// Symbols declared in the -test-utils.h header are defined here instead of a
// separate .cc file to save compile time.


namespace private_ai::mojom {


void OakSessionInterceptorForTesting::InitiateHandshake(InitiateHandshakeCallback callback) {
  GetForwardingInterface()->InitiateHandshake(std::move(callback));
}
void OakSessionInterceptorForTesting::CompleteHandshake(::private_ai::HandshakeMessage response, CompleteHandshakeCallback callback) {
  GetForwardingInterface()->CompleteHandshake(
    std::move(response)
    , std::move(callback));
}
void OakSessionInterceptorForTesting::Encrypt(const std::vector<uint8_t>& input, EncryptCallback callback) {
  GetForwardingInterface()->Encrypt(
    std::move(input)
    , std::move(callback));
}
void OakSessionInterceptorForTesting::Decrypt(const std::vector<uint8_t>& input, DecryptCallback callback) {
  GetForwardingInterface()->Decrypt(
    std::move(input)
    , std::move(callback));
}
OakSessionAsyncWaiter::OakSessionAsyncWaiter(
    OakSession* proxy) : proxy_(proxy) {}

OakSessionAsyncWaiter::~OakSessionAsyncWaiter() = default;


void OakSessionAsyncWaiter::InitiateHandshake(
    ::private_ai::HandshakeMessage* out_request) {
  base::RunLoop loop;
  proxy_->InitiateHandshake(
      base::BindOnce(
          [](base::RunLoop* loop,
             ::private_ai::HandshakeMessage* out_request
,
             ::private_ai::HandshakeMessage request) {*out_request = std::move(request);
            loop->Quit();
          },
          &loop,
          out_request));
  loop.Run();
}

::private_ai::HandshakeMessage OakSessionAsyncWaiter::InitiateHandshake(
    ) {
  ::private_ai::HandshakeMessage async_wait_result;
  InitiateHandshake(&async_wait_result);
  return async_wait_result;
}

void OakSessionAsyncWaiter::CompleteHandshake(
    ::private_ai::HandshakeMessage response, bool* out_success) {
  base::RunLoop loop;
  proxy_->CompleteHandshake(
      std::move(response),
      base::BindOnce(
          [](base::RunLoop* loop,
             bool* out_success
,
             bool success) {*out_success = std::move(success);
            loop->Quit();
          },
          &loop,
          out_success));
  loop.Run();
}

bool OakSessionAsyncWaiter::CompleteHandshake(
    ::private_ai::HandshakeMessage response) {
  bool async_wait_result;
  CompleteHandshake(std::move(response),&async_wait_result);
  return async_wait_result;
}

void OakSessionAsyncWaiter::Encrypt(
    const std::vector<uint8_t>& input, std::optional<std::vector<uint8_t>>* out_output) {
  base::RunLoop loop;
  proxy_->Encrypt(
      std::move(input),
      base::BindOnce(
          [](base::RunLoop* loop,
             std::optional<std::vector<uint8_t>>* out_output
,
             const std::optional<std::vector<uint8_t>>& output) {*out_output = std::move(output);
            loop->Quit();
          },
          &loop,
          out_output));
  loop.Run();
}

std::optional<std::vector<uint8_t>> OakSessionAsyncWaiter::Encrypt(
    const std::vector<uint8_t>& input) {
  std::optional<std::vector<uint8_t>> async_wait_result;
  Encrypt(std::move(input),&async_wait_result);
  return async_wait_result;
}

void OakSessionAsyncWaiter::Decrypt(
    const std::vector<uint8_t>& input, std::optional<std::vector<uint8_t>>* out_output) {
  base::RunLoop loop;
  proxy_->Decrypt(
      std::move(input),
      base::BindOnce(
          [](base::RunLoop* loop,
             std::optional<std::vector<uint8_t>>* out_output
,
             const std::optional<std::vector<uint8_t>>& output) {*out_output = std::move(output);
            loop->Quit();
          },
          &loop,
          out_output));
  loop.Run();
}

std::optional<std::vector<uint8_t>> OakSessionAsyncWaiter::Decrypt(
    const std::vector<uint8_t>& input) {
  std::optional<std::vector<uint8_t>> async_wait_result;
  Decrypt(std::move(input),&async_wait_result);
  return async_wait_result;
}






}  // private_ai::mojom


#if defined(__clang__)
#pragma clang diagnostic pop
#endif