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281 lines
8.0 KiB
281 lines
8.0 KiB
// Copyright (c) 2012 The Chromium Authors. All rights reserved. |
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// Use of this source code is governed by a BSD-style license that can be |
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// found in the LICENSE file. |
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#include "ipc/ipc_message.h" |
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#include <stddef.h> |
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#include <stdint.h> |
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#include <string.h> |
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#include <limits> |
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#include <memory> |
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#include <utility> |
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#include "base/memory/ptr_util.h" |
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#include "base/strings/utf_string_conversions.h" |
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#include "base/values.h" |
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#include "build/build_config.h" |
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#include "ipc/ipc_message_utils.h" |
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#include "testing/gtest/include/gtest/gtest.h" |
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// IPC messages for testing ---------------------------------------------------- |
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#define IPC_MESSAGE_IMPL |
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#include "ipc/ipc_message_macros.h" |
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#define IPC_MESSAGE_START TestMsgStart |
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IPC_MESSAGE_CONTROL0(TestMsgClassEmpty) |
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IPC_MESSAGE_CONTROL1(TestMsgClassI, int) |
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IPC_SYNC_MESSAGE_CONTROL1_1(TestMsgClassIS, int, std::string) |
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namespace IPC { |
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TEST(IPCMessageTest, BasicMessageTest) { |
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int v1 = 10; |
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std::string v2("foobar"); |
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base::string16 v3(base::ASCIIToUTF16("hello world")); |
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IPC::Message m(0, 1, IPC::Message::PRIORITY_NORMAL); |
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m.WriteInt(v1); |
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m.WriteString(v2); |
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m.WriteString16(v3); |
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base::PickleIterator iter(m); |
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int vi; |
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std::string vs; |
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base::string16 vs16; |
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EXPECT_TRUE(iter.ReadInt(&vi)); |
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EXPECT_EQ(v1, vi); |
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EXPECT_TRUE(iter.ReadString(&vs)); |
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EXPECT_EQ(v2, vs); |
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EXPECT_TRUE(iter.ReadString16(&vs16)); |
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EXPECT_EQ(v3, vs16); |
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// should fail |
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EXPECT_FALSE(iter.ReadInt(&vi)); |
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EXPECT_FALSE(iter.ReadString(&vs)); |
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EXPECT_FALSE(iter.ReadString16(&vs16)); |
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} |
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TEST(IPCMessageTest, ListValue) { |
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base::ListValue input; |
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input.AppendDouble(42.42); |
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input.AppendString("forty"); |
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input.Append(std::make_unique<base::Value>()); |
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IPC::Message msg(1, 2, IPC::Message::PRIORITY_NORMAL); |
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IPC::WriteParam(&msg, input); |
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base::ListValue output; |
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base::PickleIterator iter(msg); |
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EXPECT_TRUE(IPC::ReadParam(&msg, &iter, &output)); |
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EXPECT_TRUE(input.Equals(&output)); |
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// Also test the corrupt case. |
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IPC::Message bad_msg(1, 2, IPC::Message::PRIORITY_NORMAL); |
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bad_msg.WriteInt(99); |
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iter = base::PickleIterator(bad_msg); |
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EXPECT_FALSE(IPC::ReadParam(&bad_msg, &iter, &output)); |
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} |
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TEST(IPCMessageTest, DictionaryValue) { |
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base::DictionaryValue input; |
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input.Set("null", std::make_unique<base::Value>()); |
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input.SetBoolean("bool", true); |
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input.SetInteger("int", 42); |
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input.SetKey("int.with.dot", base::Value(43)); |
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auto subdict = std::make_unique<base::DictionaryValue>(); |
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subdict->SetString("str", "forty two"); |
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subdict->SetBoolean("bool", false); |
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auto sublist = std::make_unique<base::ListValue>(); |
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sublist->AppendDouble(42.42); |
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sublist->AppendString("forty"); |
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sublist->AppendString("two"); |
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subdict->Set("list", std::move(sublist)); |
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input.Set("dict", std::move(subdict)); |
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IPC::Message msg(1, 2, IPC::Message::PRIORITY_NORMAL); |
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IPC::WriteParam(&msg, input); |
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base::DictionaryValue output; |
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base::PickleIterator iter(msg); |
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EXPECT_TRUE(IPC::ReadParam(&msg, &iter, &output)); |
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EXPECT_TRUE(input.Equals(&output)); |
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// Also test the corrupt case. |
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IPC::Message bad_msg(1, 2, IPC::Message::PRIORITY_NORMAL); |
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bad_msg.WriteInt(99); |
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iter = base::PickleIterator(bad_msg); |
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EXPECT_FALSE(IPC::ReadParam(&bad_msg, &iter, &output)); |
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} |
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TEST(IPCMessageTest, FindNext) { |
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IPC::Message message; |
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message.WriteString("Goooooooogle"); |
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message.WriteInt(111); |
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std::vector<char> message_data(message.size() + 7); |
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memcpy(message_data.data(), message.data(), message.size()); |
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const char* data_start = message_data.data(); |
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const char* data_end = data_start + message.size(); |
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IPC::Message::NextMessageInfo next; |
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// Data range contains the entire message plus some extra bytes |
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IPC::Message::FindNext(data_start, data_end + 1, &next); |
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EXPECT_TRUE(next.message_found); |
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EXPECT_EQ(next.message_size, message.size()); |
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EXPECT_EQ(next.pickle_end, data_end); |
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EXPECT_EQ(next.message_end, data_end); |
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// Data range exactly contains the entire message |
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IPC::Message::FindNext(data_start, data_end, &next); |
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EXPECT_TRUE(next.message_found); |
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EXPECT_EQ(next.message_size, message.size()); |
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EXPECT_EQ(next.pickle_end, data_end); |
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EXPECT_EQ(next.message_end, data_end); |
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// Data range doesn't contain the entire message |
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// (but contains the message header) |
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IPC::Message::FindNext(data_start, data_end - 1, &next); |
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EXPECT_FALSE(next.message_found); |
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EXPECT_EQ(next.message_size, message.size()); |
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// Data range doesn't contain the message header |
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// (but contains the pickle header) |
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IPC::Message::FindNext(data_start, |
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data_start + sizeof(IPC::Message::Header) - 1, |
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&next); |
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EXPECT_FALSE(next.message_found); |
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EXPECT_EQ(next.message_size, 0u); |
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// Data range doesn't contain the pickle header |
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IPC::Message::FindNext(data_start, |
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data_start + sizeof(base::Pickle::Header) - 1, |
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&next); |
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EXPECT_FALSE(next.message_found); |
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EXPECT_EQ(next.message_size, 0u); |
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} |
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TEST(IPCMessageTest, FindNextOverflow) { |
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IPC::Message message; |
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message.WriteString("Data"); |
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message.WriteInt(777); |
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const char* data_start = reinterpret_cast<const char*>(message.data()); |
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const char* data_end = data_start + message.size(); |
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IPC::Message::NextMessageInfo next; |
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// Payload size is negative (defeats 'start + size > end' check) |
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message.header()->payload_size = static_cast<uint32_t>(-1); |
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IPC::Message::FindNext(data_start, data_end, &next); |
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EXPECT_FALSE(next.message_found); |
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if (sizeof(size_t) > sizeof(uint32_t)) { |
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// No overflow, just insane message size |
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EXPECT_EQ(next.message_size, |
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message.header()->payload_size + sizeof(IPC::Message::Header)); |
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} else { |
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// Actual overflow, reported as max size_t |
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EXPECT_EQ(next.message_size, std::numeric_limits<size_t>::max()); |
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} |
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// Payload size is max positive integer (defeats size < 0 check, while |
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// still potentially causing overflow down the road). |
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message.header()->payload_size = std::numeric_limits<int32_t>::max(); |
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IPC::Message::FindNext(data_start, data_end, &next); |
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EXPECT_FALSE(next.message_found); |
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EXPECT_EQ(next.message_size, |
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message.header()->payload_size + sizeof(IPC::Message::Header)); |
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} |
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namespace { |
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class IPCMessageParameterTest : public testing::Test { |
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public: |
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IPCMessageParameterTest() : extra_param_("extra_param"), called_(false) {} |
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bool OnMessageReceived(const IPC::Message& message) { |
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bool handled = true; |
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IPC_BEGIN_MESSAGE_MAP_WITH_PARAM(IPCMessageParameterTest, message, |
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&extra_param_) |
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IPC_MESSAGE_HANDLER(TestMsgClassEmpty, OnEmpty) |
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IPC_MESSAGE_HANDLER(TestMsgClassI, OnInt) |
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//IPC_MESSAGE_HANDLER(TestMsgClassIS, OnSync) |
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IPC_MESSAGE_UNHANDLED(handled = false) |
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IPC_END_MESSAGE_MAP() |
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return handled; |
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} |
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void OnEmpty(std::string* extra_param) { |
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EXPECT_EQ(extra_param, &extra_param_); |
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called_ = true; |
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} |
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void OnInt(std::string* extra_param, int foo) { |
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EXPECT_EQ(extra_param, &extra_param_); |
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EXPECT_EQ(foo, 42); |
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called_ = true; |
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} |
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/* TODO: handle sync IPCs |
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void OnSync(std::string* extra_param, int foo, std::string* out) { |
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EXPECT_EQ(extra_param, &extra_param_); |
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EXPECT_EQ(foo, 42); |
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called_ = true; |
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*out = std::string("out"); |
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} |
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bool Send(IPC::Message* reply) { |
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delete reply; |
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return true; |
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}*/ |
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std::string extra_param_; |
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bool called_; |
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}; |
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} // namespace |
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TEST_F(IPCMessageParameterTest, EmptyDispatcherWithParam) { |
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TestMsgClassEmpty message; |
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EXPECT_TRUE(OnMessageReceived(message)); |
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EXPECT_TRUE(called_); |
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} |
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#if defined(OS_ANDROID) |
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#define MAYBE_OneIntegerWithParam DISABLED_OneIntegerWithParam |
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#else |
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#define MAYBE_OneIntegerWithParam OneIntegerWithParam |
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#endif |
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TEST_F(IPCMessageParameterTest, MAYBE_OneIntegerWithParam) { |
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TestMsgClassI message(42); |
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EXPECT_TRUE(OnMessageReceived(message)); |
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EXPECT_TRUE(called_); |
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} |
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/* TODO: handle sync IPCs |
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TEST_F(IPCMessageParameterTest, Sync) { |
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std::string output; |
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TestMsgClassIS message(42, &output); |
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EXPECT_TRUE(OnMessageReceived(message)); |
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EXPECT_TRUE(called_); |
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EXPECT_EQ(output, std::string("out")); |
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}*/ |
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} // namespace IPC
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