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tubestation/dom/performance/PerformanceTiming.cpp
Brindusan Cristian 1153f2c09e Backed out 12 changesets (bug 1425458) for mochitest failures on WorkerPrivate.cpp on a CLOSED TREE
Backed out changeset 11997de13778 (bug 1425458)
Backed out changeset 100b9d4f36bc (bug 1425458)
Backed out changeset a29e9dbb8c42 (bug 1425458)
Backed out changeset b96d58fd945c (bug 1425458)
Backed out changeset f140da44ba68 (bug 1425458)
Backed out changeset af56400233d9 (bug 1425458)
Backed out changeset 7034af4332e4 (bug 1425458)
Backed out changeset f70500179140 (bug 1425458)
Backed out changeset 793bbfc23257 (bug 1425458)
Backed out changeset 2efb375a8ffc (bug 1425458)
Backed out changeset 07e781e37451 (bug 1425458)
Backed out changeset e875f3702a5f (bug 1425458)
2018-01-24 20:47:48 +02:00

530 lines
17 KiB
C++

/* -*- Mode: C++; tab-width: 8; indent-tabs-mode: nil; c-basic-offset: 2 -*- */
/* vim: set ts=8 sts=2 et sw=2 tw=80: */
/* This Source Code Form is subject to the terms of the Mozilla Public
* License, v. 2.0. If a copy of the MPL was not distributed with this
* file, You can obtain one at http://mozilla.org/MPL/2.0/. */
#include "PerformanceTiming.h"
#include "mozilla/dom/PerformanceTimingBinding.h"
#include "mozilla/Telemetry.h"
#include "nsIDocShell.h"
#include "nsIDocShellTreeItem.h"
#include "nsIDocument.h"
#include "nsITimedChannel.h"
namespace mozilla {
namespace dom {
NS_IMPL_CYCLE_COLLECTION_WRAPPERCACHE(PerformanceTiming, mPerformance)
NS_IMPL_CYCLE_COLLECTION_ROOT_NATIVE(PerformanceTiming, AddRef)
NS_IMPL_CYCLE_COLLECTION_UNROOT_NATIVE(PerformanceTiming, Release)
PerformanceTiming::PerformanceTiming(Performance* aPerformance,
nsITimedChannel* aChannel,
nsIHttpChannel* aHttpChannel,
DOMHighResTimeStamp aZeroTime)
: mPerformance(aPerformance),
mFetchStart(0.0),
mZeroTime(nsRFPService::ReduceTimePrecisionAsMSecs(aZeroTime)),
mRedirectCount(0),
mTimingAllowed(true),
mAllRedirectsSameOrigin(true),
mInitialized(!!aChannel),
mReportCrossOriginRedirect(true)
{
MOZ_ASSERT(aPerformance, "Parent performance object should be provided");
if (!nsContentUtils::IsPerformanceTimingEnabled() ||
nsContentUtils::ShouldResistFingerprinting()) {
mZeroTime = 0;
}
// The aHttpChannel argument is null if this PerformanceTiming object is
// being used for navigation timing (which is only relevant for documents).
// It has a non-null value if this PerformanceTiming object is being used
// for resource timing, which can include document loads, both toplevel and
// in subframes, and resources linked from a document.
if (aHttpChannel) {
mTimingAllowed = CheckAllowedOrigin(aHttpChannel, aChannel);
bool redirectsPassCheck = false;
aChannel->GetAllRedirectsPassTimingAllowCheck(&redirectsPassCheck);
mReportCrossOriginRedirect = mTimingAllowed && redirectsPassCheck;
}
mSecureConnection = false;
nsCOMPtr<nsIURI> uri;
if (aHttpChannel) {
aHttpChannel->GetURI(getter_AddRefs(uri));
} else {
nsCOMPtr<nsIHttpChannel> httpChannel = do_QueryInterface(aChannel);
if (httpChannel) {
httpChannel->GetURI(getter_AddRefs(uri));
}
}
if (uri) {
nsresult rv = uri->SchemeIs("https", &mSecureConnection);
if (NS_FAILED(rv)) {
mSecureConnection = false;
}
}
InitializeTimingInfo(aChannel);
// Non-null aHttpChannel implies that this PerformanceTiming object is being
// used for subresources, which is irrelevant to this probe.
if (!aHttpChannel &&
nsContentUtils::IsPerformanceTimingEnabled() &&
IsTopLevelContentDocument()) {
Telemetry::Accumulate(Telemetry::TIME_TO_RESPONSE_START_MS,
ResponseStartHighRes() - mZeroTime);
}
}
// Copy the timing info from the channel so we don't need to keep the channel
// alive just to get the timestamps.
void
PerformanceTiming::InitializeTimingInfo(nsITimedChannel* aChannel)
{
if (aChannel) {
aChannel->GetAsyncOpen(&mAsyncOpen);
aChannel->GetAllRedirectsSameOrigin(&mAllRedirectsSameOrigin);
aChannel->GetRedirectCount(&mRedirectCount);
aChannel->GetRedirectStart(&mRedirectStart);
aChannel->GetRedirectEnd(&mRedirectEnd);
aChannel->GetDomainLookupStart(&mDomainLookupStart);
aChannel->GetDomainLookupEnd(&mDomainLookupEnd);
aChannel->GetConnectStart(&mConnectStart);
aChannel->GetSecureConnectionStart(&mSecureConnectionStart);
aChannel->GetConnectEnd(&mConnectEnd);
aChannel->GetRequestStart(&mRequestStart);
aChannel->GetResponseStart(&mResponseStart);
aChannel->GetCacheReadStart(&mCacheReadStart);
aChannel->GetResponseEnd(&mResponseEnd);
aChannel->GetCacheReadEnd(&mCacheReadEnd);
aChannel->GetDispatchFetchEventStart(&mWorkerStart);
aChannel->GetHandleFetchEventStart(&mWorkerRequestStart);
// TODO: Track when FetchEvent.respondWith() promise resolves as
// ServiceWorker interception responseStart?
aChannel->GetHandleFetchEventEnd(&mWorkerResponseEnd);
// The performance timing api essentially requires that the event timestamps
// have a strict relation with each other. The truth, however, is the browser
// engages in a number of speculative activities that sometimes mean connections
// and lookups begin at different times. Workaround that here by clamping
// these values to what we expect FetchStart to be. This means the later of
// AsyncOpen or WorkerStart times.
if (!mAsyncOpen.IsNull()) {
// We want to clamp to the expected FetchStart value. This is later of
// the AsyncOpen and WorkerStart values.
const TimeStamp* clampTime = &mAsyncOpen;
if (!mWorkerStart.IsNull() && mWorkerStart > mAsyncOpen) {
clampTime = &mWorkerStart;
}
if (!mDomainLookupStart.IsNull() && mDomainLookupStart < *clampTime) {
mDomainLookupStart = *clampTime;
}
if (!mDomainLookupEnd.IsNull() && mDomainLookupEnd < *clampTime) {
mDomainLookupEnd = *clampTime;
}
if (!mConnectStart.IsNull() && mConnectStart < *clampTime) {
mConnectStart = *clampTime;
}
if (mSecureConnection && !mSecureConnectionStart.IsNull() &&
mSecureConnectionStart < *clampTime) {
mSecureConnectionStart = *clampTime;
}
if (!mConnectEnd.IsNull() && mConnectEnd < *clampTime) {
mConnectEnd = *clampTime;
}
}
}
}
PerformanceTiming::~PerformanceTiming()
{
}
DOMHighResTimeStamp
PerformanceTiming::FetchStartHighRes()
{
if (!mFetchStart) {
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting()) {
return mZeroTime;
}
MOZ_ASSERT(!mAsyncOpen.IsNull(), "The fetch start time stamp should always be "
"valid if the performance timing is enabled");
if (!mAsyncOpen.IsNull()) {
if (!mWorkerRequestStart.IsNull() && mWorkerRequestStart > mAsyncOpen) {
mFetchStart = TimeStampToDOMHighRes(mWorkerRequestStart);
} else {
mFetchStart = TimeStampToDOMHighRes(mAsyncOpen);
}
}
}
return nsRFPService::ReduceTimePrecisionAsMSecs(mFetchStart);
}
DOMTimeMilliSec
PerformanceTiming::FetchStart()
{
return static_cast<int64_t>(FetchStartHighRes());
}
bool
PerformanceTiming::CheckAllowedOrigin(nsIHttpChannel* aResourceChannel,
nsITimedChannel* aChannel)
{
if (!IsInitialized()) {
return false;
}
// Check that the current document passes the ckeck.
nsCOMPtr<nsILoadInfo> loadInfo;
aResourceChannel->GetLoadInfo(getter_AddRefs(loadInfo));
if (!loadInfo) {
return false;
}
// TYPE_DOCUMENT loads have no loadingPrincipal. And that's OK, because we
// never actually need to have a performance timing entry for TYPE_DOCUMENT
// loads.
if (loadInfo->GetExternalContentPolicyType() == nsIContentPolicy::TYPE_DOCUMENT) {
return false;
}
nsCOMPtr<nsIPrincipal> principal = loadInfo->LoadingPrincipal();
// Check if the resource is either same origin as the page that started
// the load, or if the response contains the proper Timing-Allow-Origin
// header with the domain of the page that started the load.
return aChannel->TimingAllowCheck(principal);
}
bool
PerformanceTiming::TimingAllowed() const
{
return mTimingAllowed;
}
uint8_t
PerformanceTiming::GetRedirectCount() const
{
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting()) {
return 0;
}
if (!mAllRedirectsSameOrigin) {
return 0;
}
return mRedirectCount;
}
bool
PerformanceTiming::ShouldReportCrossOriginRedirect() const
{
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting()) {
return false;
}
// If the redirect count is 0, or if one of the cross-origin
// redirects doesn't have the proper Timing-Allow-Origin header,
// then RedirectStart and RedirectEnd will be set to zero
return (mRedirectCount != 0) && mReportCrossOriginRedirect;
}
DOMHighResTimeStamp
PerformanceTiming::AsyncOpenHighRes()
{
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting() || mAsyncOpen.IsNull()) {
return mZeroTime;
}
return nsRFPService::ReduceTimePrecisionAsMSecs(TimeStampToDOMHighRes(mAsyncOpen));
}
DOMHighResTimeStamp
PerformanceTiming::WorkerStartHighRes()
{
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting() || mWorkerStart.IsNull()) {
return mZeroTime;
}
return nsRFPService::ReduceTimePrecisionAsMSecs(TimeStampToDOMHighRes(mWorkerStart));
}
/**
* RedirectStartHighRes() is used by both the navigation timing and the
* resource timing. Since, navigation timing and resource timing check and
* interpret cross-domain redirects in a different manner,
* RedirectStartHighRes() will make no checks for cross-domain redirect.
* It's up to the consumers of this method (PerformanceTiming::RedirectStart()
* and PerformanceResourceTiming::RedirectStart() to make such verifications.
*
* @return a valid timing if the Performance Timing is enabled
*/
DOMHighResTimeStamp
PerformanceTiming::RedirectStartHighRes()
{
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting()) {
return mZeroTime;
}
return TimeStampToReducedDOMHighResOrFetchStart(mRedirectStart);
}
DOMTimeMilliSec
PerformanceTiming::RedirectStart()
{
if (!IsInitialized()) {
return 0;
}
// We have to check if all the redirect URIs had the same origin (since there
// is no check in RedirectStartHighRes())
if (mAllRedirectsSameOrigin && mRedirectCount) {
return static_cast<int64_t>(RedirectStartHighRes());
}
return 0;
}
/**
* RedirectEndHighRes() is used by both the navigation timing and the resource
* timing. Since, navigation timing and resource timing check and interpret
* cross-domain redirects in a different manner, RedirectEndHighRes() will make
* no checks for cross-domain redirect. It's up to the consumers of this method
* (PerformanceTiming::RedirectEnd() and
* PerformanceResourceTiming::RedirectEnd() to make such verifications.
*
* @return a valid timing if the Performance Timing is enabled
*/
DOMHighResTimeStamp
PerformanceTiming::RedirectEndHighRes()
{
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting()) {
return mZeroTime;
}
return TimeStampToReducedDOMHighResOrFetchStart(mRedirectEnd);
}
DOMTimeMilliSec
PerformanceTiming::RedirectEnd()
{
if (!IsInitialized()) {
return 0;
}
// We have to check if all the redirect URIs had the same origin (since there
// is no check in RedirectEndHighRes())
if (mAllRedirectsSameOrigin && mRedirectCount) {
return static_cast<int64_t>(RedirectEndHighRes());
}
return 0;
}
DOMHighResTimeStamp
PerformanceTiming::DomainLookupStartHighRes()
{
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting()) {
return mZeroTime;
}
return TimeStampToReducedDOMHighResOrFetchStart(mDomainLookupStart);
}
DOMTimeMilliSec
PerformanceTiming::DomainLookupStart()
{
return static_cast<int64_t>(DomainLookupStartHighRes());
}
DOMHighResTimeStamp
PerformanceTiming::DomainLookupEndHighRes()
{
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting()) {
return mZeroTime;
}
// Bug 1155008 - nsHttpTransaction is racy. Return DomainLookupStart when null
return mDomainLookupEnd.IsNull() ? DomainLookupStartHighRes()
: nsRFPService::ReduceTimePrecisionAsMSecs(
TimeStampToDOMHighRes(mDomainLookupEnd));
}
DOMTimeMilliSec
PerformanceTiming::DomainLookupEnd()
{
return static_cast<int64_t>(DomainLookupEndHighRes());
}
DOMHighResTimeStamp
PerformanceTiming::ConnectStartHighRes()
{
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting()) {
return mZeroTime;
}
return mConnectStart.IsNull() ? DomainLookupEndHighRes()
: nsRFPService::ReduceTimePrecisionAsMSecs(
TimeStampToDOMHighRes(mConnectStart));
}
DOMTimeMilliSec
PerformanceTiming::ConnectStart()
{
return static_cast<int64_t>(ConnectStartHighRes());
}
DOMHighResTimeStamp
PerformanceTiming::SecureConnectionStartHighRes()
{
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting()) {
return mZeroTime;
}
return !mSecureConnection
? 0 // We use 0 here, because mZeroTime is sometimes set to the navigation
// start time.
: (mSecureConnectionStart.IsNull() ? mZeroTime
: nsRFPService::ReduceTimePrecisionAsMSecs(
TimeStampToDOMHighRes(mSecureConnectionStart)));
}
DOMTimeMilliSec
PerformanceTiming::SecureConnectionStart()
{
return static_cast<int64_t>(SecureConnectionStartHighRes());
}
DOMHighResTimeStamp
PerformanceTiming::ConnectEndHighRes()
{
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting()) {
return mZeroTime;
}
// Bug 1155008 - nsHttpTransaction is racy. Return ConnectStart when null
return mConnectEnd.IsNull() ? ConnectStartHighRes()
: nsRFPService::ReduceTimePrecisionAsMSecs(
TimeStampToDOMHighRes(mConnectEnd));
}
DOMTimeMilliSec
PerformanceTiming::ConnectEnd()
{
return static_cast<int64_t>(ConnectEndHighRes());
}
DOMHighResTimeStamp
PerformanceTiming::RequestStartHighRes()
{
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting()) {
return mZeroTime;
}
if (mRequestStart.IsNull()) {
mRequestStart = mWorkerRequestStart;
}
return TimeStampToReducedDOMHighResOrFetchStart(mRequestStart);
}
DOMTimeMilliSec
PerformanceTiming::RequestStart()
{
return static_cast<int64_t>(RequestStartHighRes());
}
DOMHighResTimeStamp
PerformanceTiming::ResponseStartHighRes()
{
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting()) {
return mZeroTime;
}
if (mResponseStart.IsNull() ||
(!mCacheReadStart.IsNull() && mCacheReadStart < mResponseStart)) {
mResponseStart = mCacheReadStart;
}
if (mResponseStart.IsNull() ||
(!mRequestStart.IsNull() && mResponseStart < mRequestStart)) {
mResponseStart = mRequestStart;
}
return TimeStampToReducedDOMHighResOrFetchStart(mResponseStart);
}
DOMTimeMilliSec
PerformanceTiming::ResponseStart()
{
return static_cast<int64_t>(ResponseStartHighRes());
}
DOMHighResTimeStamp
PerformanceTiming::ResponseEndHighRes()
{
if (!nsContentUtils::IsPerformanceTimingEnabled() || !IsInitialized() ||
nsContentUtils::ShouldResistFingerprinting()) {
return mZeroTime;
}
if (mResponseEnd.IsNull() ||
(!mCacheReadEnd.IsNull() && mCacheReadEnd < mResponseEnd)) {
mResponseEnd = mCacheReadEnd;
}
if (mResponseEnd.IsNull()) {
mResponseEnd = mWorkerResponseEnd;
}
// Bug 1155008 - nsHttpTransaction is racy. Return ResponseStart when null
return mResponseEnd.IsNull() ? ResponseStartHighRes()
: nsRFPService::ReduceTimePrecisionAsMSecs(
TimeStampToDOMHighRes(mResponseEnd));
}
DOMTimeMilliSec
PerformanceTiming::ResponseEnd()
{
return static_cast<int64_t>(ResponseEndHighRes());
}
bool
PerformanceTiming::IsInitialized() const
{
return mInitialized;
}
JSObject*
PerformanceTiming::WrapObject(JSContext *cx, JS::Handle<JSObject*> aGivenProto)
{
return PerformanceTimingBinding::Wrap(cx, this, aGivenProto);
}
bool
PerformanceTiming::IsTopLevelContentDocument() const
{
nsCOMPtr<nsIDocument> document = mPerformance->GetDocumentIfCurrent();
if (!document) {
return false;
}
nsCOMPtr<nsIDocShell> docShell = document->GetDocShell();
if (!docShell) {
return false;
}
nsCOMPtr<nsIDocShellTreeItem> rootItem;
Unused << docShell->GetSameTypeRootTreeItem(getter_AddRefs(rootItem));
if (rootItem.get() != static_cast<nsIDocShellTreeItem*>(docShell.get())) {
return false;
}
return rootItem->ItemType() == nsIDocShellTreeItem::typeContent;
}
} // dom namespace
} // mozilla namespace