summaryrefslogtreecommitdiffstats
path: root/chrome/browser/memory_details.cc
blob: a6dc4dc28844ea3f02101f3767c18468a0aa1368 (plain)
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
212
213
214
215
216
217
218
219
220
221
222
223
224
225
226
227
228
229
230
231
232
233
234
235
236
237
238
239
240
241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
266
267
268
269
270
271
272
273
274
275
276
277
278
279
280
281
282
283
284
285
286
287
288
289
290
291
292
293
294
295
296
297
298
299
300
// Copyright (c) 2006-2008 The Chromium Authors. All rights reserved.
// Use of this source code is governed by a BSD-style license that can be
// found in the LICENSE file.

#include "chrome/browser/memory_details.h"
#include <psapi.h>

#include "base/file_version_info.h"
#include "base/string_util.h"
#include "chrome/browser/browser_process.h"
#include "chrome/browser/chrome_thread.h"
#include "chrome/browser/renderer_host/render_process_host.h"
#include "chrome/browser/tab_contents/navigation_entry.h"
#include "chrome/browser/tab_contents/web_contents.h"
#include "chrome/common/child_process_host.h"
#include "chrome/common/url_constants.h"

class RenderViewHostDelegate;

// Template of static data we use for finding browser process information.
// These entries must match the ordering for MemoryDetails::BrowserProcess.
static ProcessData g_process_template[] = {
    { L"Chromium", L"chrome.exe", },
    { L"IE", L"iexplore.exe", },
    { L"Firefox", L"firefox.exe", },
    { L"Opera", L"opera.exe", },
    { L"Safari", L"safari.exe", },
  };


// About threading:
//
// This operation will hit no fewer than 3 threads.
//
// The ChildProcessInfo::Iterator can only be accessed from the IO thread.
//
// The RenderProcessHostIterator can only be accessed from the UI thread.
//
// This operation can take 30-100ms to complete.  We never want to have
// one task run for that long on the UI or IO threads.  So, we run the
// expensive parts of this operation over on the file thread.
//

MemoryDetails::MemoryDetails()
  : ui_loop_(NULL) {
  for (int index = 0; index < arraysize(g_process_template); ++index) {
    process_data_[index].name = g_process_template[index].name;
    process_data_[index].process_name = g_process_template[index].process_name;
  }
}

void MemoryDetails::StartFetch() {
  ui_loop_ = MessageLoop::current();

  DCHECK(ui_loop_ != g_browser_process->io_thread()->message_loop());
  DCHECK(ui_loop_ != g_browser_process->file_thread()->message_loop());

  // In order to process this request, we need to use the plugin information.
  // However, plugin process information is only available from the IO thread.
  g_browser_process->io_thread()->message_loop()->PostTask(FROM_HERE,
      NewRunnableMethod(this, &MemoryDetails::CollectChildInfoOnIOThread));
}

void MemoryDetails::CollectChildInfoOnIOThread() {
  DCHECK(MessageLoop::current() ==
      ChromeThread::GetMessageLoop(ChromeThread::IO));

  std::vector<ProcessMemoryInformation> child_info;

  // Collect the list of child processes.
  for (ChildProcessHost::Iterator iter; !iter.Done(); ++iter) {
    ProcessMemoryInformation info;
    info.pid = iter->GetProcessId();
    if (!info.pid)
      continue;

    info.type = iter->type();
    info.titles.push_back(iter->name());
    child_info.push_back(info);
  }

  // Now go do expensive memory lookups from the file thread.
  ChromeThread::GetMessageLoop(ChromeThread::FILE)->PostTask(FROM_HERE,
      NewRunnableMethod(this, &MemoryDetails::CollectProcessData, child_info));
}

void MemoryDetails::CollectProcessData(
    std::vector<ProcessMemoryInformation> child_info) {
  DCHECK(MessageLoop::current() ==
      ChromeThread::GetMessageLoop(ChromeThread::FILE));

  int array_size = 32;
  scoped_ptr_malloc<DWORD> process_list;
  DWORD bytes_used = 0;
  do {
    array_size *= 2;
    process_list.reset(static_cast<DWORD*>(
        realloc(process_list.release(), sizeof(DWORD) * array_size)));
    // EnumProcesses doesn't return an error if the array is too small.
    // We have to check if the return buffer is full, and if so, call it
    // again.  See msdn docs for more info.
    if (!EnumProcesses(process_list.get(), array_size * sizeof(DWORD),
                       &bytes_used)) {
      LOG(ERROR) << "EnumProcesses failed: " << GetLastError();
      return;
    }
  } while (bytes_used == (array_size * sizeof(DWORD)));

  int num_processes = bytes_used / sizeof(DWORD);

  // Clear old data.
  for (int index = 0; index < arraysize(g_process_template); index++)
    process_data_[index].processes.clear();

  for (int index = 0; index < num_processes; index++) {
    int pid = process_list.get()[index];
    ScopedHandle handle(OpenProcess(
        PROCESS_QUERY_INFORMATION | PROCESS_VM_READ, FALSE, pid));
    if (!handle.Get())
      continue;
    TCHAR name[MAX_PATH];
    if (!GetModuleBaseName(handle, NULL, name, MAX_PATH - 1))
      continue;
    for (int index2 = 0; index2 < arraysize(g_process_template); index2++) {
      if (_wcsicmp(process_data_[index2].process_name, name) != 0)
        continue;
      // Get Memory Information.
      ProcessMemoryInformation info;
      info.pid = pid;
      if (info.pid == GetCurrentProcessId())
        info.type = ChildProcessInfo::BROWSER_PROCESS;
      else
        info.type = ChildProcessInfo::UNKNOWN_PROCESS;

      scoped_ptr<base::ProcessMetrics> metrics;
      metrics.reset(base::ProcessMetrics::CreateProcessMetrics(handle));
      metrics->GetCommittedKBytes(&info.committed);
      metrics->GetWorkingSetKBytes(&info.working_set);

      // Get Version Information.
      if (index2 == 0) {  // Chrome
        scoped_ptr<FileVersionInfo> version_info(
           FileVersionInfo::CreateFileVersionInfoForCurrentModule());
        if (version_info != NULL)
          info.version = version_info->file_version();
        // Check if this is one of the child processes whose data we collected
        // on the IO thread, and if so copy over that data.
        for (size_t child = 0; child < child_info.size(); child++) {
          if (child_info[child].pid != info.pid)
            continue;
          info.titles = child_info[child].titles;
          info.type = child_info[child].type;
          break;
        }
      } else if (GetModuleFileNameEx(handle, NULL, name, MAX_PATH - 1)) {
        std::wstring str_name(name);
        scoped_ptr<FileVersionInfo> version_info(
           FileVersionInfo::CreateFileVersionInfo(str_name));
        if (version_info != NULL) {
          info.version = version_info->product_version();
          info.product_name = version_info->product_name();
        }
      }

      // Add the process info to our list.
      process_data_[index2].processes.push_back(info);
      break;
    }
  }

  // Finally return to the browser thread.
  ui_loop_->PostTask(FROM_HERE,
      NewRunnableMethod(this, &MemoryDetails::CollectChildInfoOnUIThread));
}

void MemoryDetails::CollectChildInfoOnUIThread() {
  DCHECK(MessageLoop::current() == ui_loop_);

  // Get more information about the process.
  for (size_t index = 0; index < process_data_[CHROME_BROWSER].processes.size();
      index++) {
    // Check if it's a renderer, if so get the list of page titles in it and
    // check if it's a diagnostics-related process.  We skip all diagnostics
    // pages (e.g. "about:xxx" URLs).  Iterate the RenderProcessHosts to find
    // the tab contents.
    RenderProcessHost::iterator renderer_iter;
    for (renderer_iter = RenderProcessHost::begin(); renderer_iter !=
         RenderProcessHost::end(); ++renderer_iter) {
      DCHECK(renderer_iter->second);
      ProcessMemoryInformation& process =
          process_data_[CHROME_BROWSER].processes[index];
      if (process.pid != renderer_iter->second->process().pid())
        continue;
      process.type = ChildProcessInfo::RENDER_PROCESS;
      // The RenderProcessHost may host multiple TabContents.  Any
      // of them which contain diagnostics information make the whole
      // process be considered a diagnostics process.
      //
      // NOTE: This is a bit dangerous.  We know that for now, listeners
      //       are always RenderWidgetHosts.  But in theory, they don't
      //       have to be.
      RenderProcessHost::listeners_iterator iter;
      for (iter = renderer_iter->second->listeners_begin();
           iter != renderer_iter->second->listeners_end(); ++iter) {
        RenderWidgetHost* widget =
            static_cast<RenderWidgetHost*>(iter->second);
        DCHECK(widget);
        if (!widget || !widget->IsRenderView())
          continue;

        RenderViewHost* host = static_cast<RenderViewHost*>(widget);
        TabContents* contents = NULL;
        if (host->delegate())
          contents = host->delegate()->GetAsWebContents();
        if (!contents)
          continue;
        std::wstring title = UTF16ToWideHack(contents->GetTitle());
        if (!title.length())
          title = L"Untitled";
        process.titles.push_back(title);

        // We need to check the pending entry as well as the display_url to
        // see if it's an about:memory URL (we don't want to count these in the
        // total memory usage of the browser).
        //
        // When we reach here, about:memory will be the pending entry since we
        // haven't responded with any data such that it would be committed. If
        // you have another about:memory tab open (which would be committed),
        // we don't want to count it either, so we also check the last committed
        // entry.
        //
        // Either the pending or last committed entries can be NULL.
        const NavigationEntry* pending_entry =
            contents->controller().pending_entry();
        const NavigationEntry* last_committed_entry =
            contents->controller().GetLastCommittedEntry();
        if ((last_committed_entry &&
             LowerCaseEqualsASCII(last_committed_entry->display_url().spec(),
                                  chrome::kAboutMemoryURL)) ||
            (pending_entry &&
             LowerCaseEqualsASCII(pending_entry->display_url().spec(),
                                  chrome::kAboutMemoryURL)))
          process.is_diagnostics = true;
      }
    }
  }

  // Get rid of other Chrome processes that are from a different profile.
  for (size_t index = 0; index < process_data_[CHROME_BROWSER].processes.size();
      index++) {
    if (process_data_[CHROME_BROWSER].processes[index].type ==
        ChildProcessInfo::UNKNOWN_PROCESS) {
      process_data_[CHROME_BROWSER].processes.erase(
          process_data_[CHROME_BROWSER].processes.begin() + index);
      index--;
    }
  }

  UpdateHistograms();

  OnDetailsAvailable();
}

void MemoryDetails::UpdateHistograms() {
  // Reports a set of memory metrics to UMA.
  // Memory is measured in units of 10KB.

  ProcessData browser = process_data_[CHROME_BROWSER];
  size_t aggregate_memory = 0;
  int plugin_count = 0;
  int worker_count = 0;
  for (size_t index = 0; index < browser.processes.size(); index++) {
    int sample = static_cast<int>(browser.processes[index].working_set.priv);
    aggregate_memory += sample;
    switch (browser.processes[index].type) {
     case ChildProcessInfo::BROWSER_PROCESS:
       UMA_HISTOGRAM_MEMORY_KB("Memory.Browser", sample);
       break;
     case ChildProcessInfo::RENDER_PROCESS:
       UMA_HISTOGRAM_MEMORY_KB("Memory.Renderer", sample);
       break;
     case ChildProcessInfo::PLUGIN_PROCESS:
       UMA_HISTOGRAM_MEMORY_KB("Memory.Plugin", sample);
       plugin_count++;
       break;
     case ChildProcessInfo::WORKER_PROCESS:
       UMA_HISTOGRAM_MEMORY_KB("Memory.Worker", sample);
       worker_count++;
       break;
    }
  }

  UMA_HISTOGRAM_COUNTS_100("Memory.ProcessCount",
      static_cast<int>(browser.processes.size()));
  UMA_HISTOGRAM_COUNTS_100("Memory.PluginProcessCount", plugin_count);
  UMA_HISTOGRAM_COUNTS_100("Memory.WorkerProcessCount", worker_count);

  int total_sample = static_cast<int>(aggregate_memory / 1000);
  UMA_HISTOGRAM_MEMORY_MB("Memory.Total", total_sample);
}