/***
Olive - Non-Linear Video Editor
Copyright (C) 2022 Olive Team
This program is free software: you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation, either version 3 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program. If not, see .
***/
#include "timerange.h"
#include
#include
namespace olive {
TimeRange::TimeRange(const rational &in, const rational &out) :
in_(in),
out_(out)
{
normalize();
}
const rational &TimeRange::in() const
{
return in_;
}
const rational &TimeRange::out() const
{
return out_;
}
const rational &TimeRange::length() const
{
Q_ASSERT(!length_.isNaN());
return length_;
}
void TimeRange::set_in(const rational &in)
{
in_ = in;
normalize();
}
void TimeRange::set_out(const rational &out)
{
out_ = out;
normalize();
}
void TimeRange::set_range(const rational &in, const rational &out)
{
in_ = in;
out_ = out;
normalize();
}
bool TimeRange::operator==(const TimeRange &r) const
{
return in() == r.in() && out() == r.out();
}
bool TimeRange::operator!=(const TimeRange &r) const
{
return in() != r.in() || out() != r.out();
}
bool TimeRange::OverlapsWith(const TimeRange &a, bool in_inclusive, bool out_inclusive) const
{
bool doesnt_overlap_in = (in_inclusive) ? (a.out() < in()) : (a.out() <= in());
bool doesnt_overlap_out = (out_inclusive) ? (a.in() > out()) : (a.in() >= out());
return !doesnt_overlap_in && !doesnt_overlap_out;
}
TimeRange TimeRange::Combined(const TimeRange &a) const
{
return Combine(a, *this);
}
bool TimeRange::Contains(const TimeRange &compare, bool in_inclusive, bool out_inclusive) const
{
bool contains_in = (in_inclusive) ? (compare.in() >= in()) : (compare.in() > in());
bool contains_out = (out_inclusive) ? (compare.out() <= out()) : (compare.out() < out());
return contains_in && contains_out;
}
bool TimeRange::Contains(const rational &r) const
{
return r >= in_ && r < out_;
}
TimeRange TimeRange::Combine(const TimeRange &a, const TimeRange &b)
{
return TimeRange(qMin(a.in(), b.in()),
qMax(a.out(), b.out()));
}
TimeRange TimeRange::Intersected(const TimeRange &a) const
{
return Intersect(a, *this);
}
TimeRange TimeRange::Intersect(const TimeRange &a, const TimeRange &b)
{
return TimeRange(qMax(a.in(), b.in()),
qMin(a.out(), b.out()));
}
TimeRange TimeRange::operator+(const rational &rhs) const
{
TimeRange answer(*this);
answer += rhs;
return answer;
}
TimeRange TimeRange::operator-(const rational &rhs) const
{
TimeRange answer(*this);
answer -= rhs;
return answer;
}
const TimeRange &TimeRange::operator+=(const rational &rhs)
{
set_range(in_ + rhs, out_ + rhs);
return *this;
}
const TimeRange &TimeRange::operator-=(const rational &rhs)
{
set_range(in_ - rhs, out_ - rhs);
return *this;
}
std::list TimeRange::Split(const int &chunk_size) const
{
std::list split_ranges;
int start_time = qFloor(this->in().toDouble() / static_cast(chunk_size)) * chunk_size;
int end_time = qCeil(this->out().toDouble() / static_cast(chunk_size)) * chunk_size;
for (int i=start_time; iin(), rational(i)),
qMin(this->out(), rational(i + chunk_size))));
}
return split_ranges;
}
void TimeRange::normalize()
{
// If `out` is earlier than `in`, swap them
if (out_ < in_)
{
std::swap(out_, in_);
}
// Calculate length
if (out_ == RATIONAL_MIN || out_ == RATIONAL_MAX || in_ == RATIONAL_MIN || in_ == RATIONAL_MAX) {
length_ = rational::NaN;
} else {
length_ = out_ - in_;
}
}
void TimeRangeList::insert(const TimeRangeList &list_to_add)
{
for (auto it=list_to_add.cbegin(); it!=list_to_add.cend(); it++) {
insert(*it);
}
}
void TimeRangeList::insert(TimeRange range_to_add)
{
// See if list contains this range
if (contains(range_to_add)) {
return;
}
// Does not contain range, so we'll almost certainly be adding it in some way
for (int i=0;i= range.out()) {
// No intersect
continue;
} else {
// Crop the time range to the range and add it to the list
TimeRange cropped(qMax(range.in(), compare.in()),
qMin(range.out(), compare.out()));
intersect_list.insert(cropped);
}
}
return intersect_list;
}
uint qHash(const TimeRange &r, uint seed)
{
return qHash(r.in(), seed) ^ qHash(r.out(), seed);
}
TimeRangeListFrameIterator::TimeRangeListFrameIterator() :
TimeRangeListFrameIterator(TimeRangeList(), rational::NaN)
{
}
TimeRangeListFrameIterator::TimeRangeListFrameIterator(const TimeRangeList &list, const rational &timebase) :
list_(list),
timebase_(timebase),
range_index_(-1),
size_(-1),
frame_index_(0),
custom_range_(false)
{
if (!list_.isEmpty() && timebase_.isNull()) {
qCritical() << "TimeRangeListFrameIterator created with null timebase but non-empty list, this will likely lead to infinite loops";
}
UpdateIndexIfNecessary();
}
bool TimeRangeListFrameIterator::GetNext(rational *out)
{
if (!HasNext()) {
return false;
}
// Output current value
*out = current_;
// Determine next value by adding timebase
current_ += timebase_;
// If this time is outside the current range, jump to the next one
UpdateIndexIfNecessary();
// Increment frame index
frame_index_++;
return true;
}
bool TimeRangeListFrameIterator::HasNext() const
{
return range_index_ < list_.size();
}
int TimeRangeListFrameIterator::size()
{
if (size_ == -1) {
// Size isn't calculated automatically for optimization, so we'll calculate it now
size_ = 0;
foreach (const TimeRange &range, list_) {
rational start = Timecode::snap_time_to_timebase(range.in(), timebase_, Timecode::kCeil);
rational end = Timecode::snap_time_to_timebase(range.out(), timebase_, Timecode::kFloor);
if (end == range.out()) {
end -= timebase_;
}
int64_t start_ts = Timecode::time_to_timestamp(start, timebase_);
int64_t end_ts = Timecode::time_to_timestamp(end, timebase_);
size_ += 1 + (end_ts - start_ts);
}
}
return size_;
}
void TimeRangeListFrameIterator::UpdateIndexIfNecessary()
{
while (range_index_ < list_.size() && (range_index_ == -1 || current_ >= list_.at(range_index_).out())) {
range_index_++;
if (range_index_ < list_.size()) {
current_ = Timecode::snap_time_to_timebase(list_.at(range_index_).in(), timebase_, Timecode::kCeil);
}
}
}
}
QDebug operator<<(QDebug debug, const olive::TimeRange &r)
{
debug.nospace() << r.in().toDouble() << " - " << r.out().toDouble();
return debug.space();
}
QDebug operator<<(QDebug debug, const olive::TimeRangeList &r)
{
debug << r.internal_array();
return debug.space();
}