Files
Jungfraujoch/common/ThreadSafeFIFO.h
T
leonarski_f 6a21d453ba macOS groundwork: what a static read says will stop an Apple Clang / libc++ build
None of this has been built on a Mac - there is none yet. It is the list a read-only audit of the
viewer/rugnux subtree produced, plus a serial -fsyntax-only pass of every reachable .cpp with
clang 16 + libc++ on Linux, which found exactly one error (the first item).

- JFJochDatasetInfoChartView: std::vector<fftwf_complex> does not compile with libc++, whose
  construct_at refuses an array element type (float[2]). Use std::vector<std::complex<float>> and
  the reinterpret_cast every other FFTW call site already uses.
- libcurl: GSSAPI off on Linux, and neither TLS nor GSSAPI on macOS. The viewer never sets
  CURLOPT_HTTPAUTH, so Negotiate was dead weight that cost a krb5-devel build dependency; on macOS
  curl's FindGSS refuses the system Heimdal outright, and with Secure Transport gone from curl
  (8.15) TLS would mean a Homebrew OpenSSL - the only host library a Mac build would need.
  Linux keeps OpenSSL. CURL_USE_GSSAPI is forced OFF rather than left unset so an existing build
  tree drops its cached ON.
- libjpeg-turbo ExternalProject: CMAKE_SYSTEM_NAME/PROCESSOR were forwarded unconditionally, which
  puts even a native sub-build into cross-compiling mode, and CMAKE_OSX_ARCHITECTURES / SYSROOT /
  DEPLOYMENT_TARGET were not forwarded at all. Now the same rule the zlib-ng sub-build follows.
- ShadowAccumulatorGPU.cu was added on the JFJOCH_USE_CUDA option (default ON) instead of
  JFJOCH_CUDA_AVAILABLE like every other .cu, so a machine without nvcc got a CUDA source in a
  target with no CUDA language.
- CMAKE_OSX_DEPLOYMENT_TARGET defaults to 12.0 (overridable). Left unset, CMake takes the build
  machine's OS version and the .dmg starts nowhere older.
- Standard headers that were only arriving transitively (<chrono>, <cmath>, <limits>, <cstring>,
  <atomic>, <thread>, <string>); newer libc++ releases keep removing such transitive includes.

Checked: the seven changed sources pass clang 16 + libc++ -fsyntax-only. The CMake changes are
not configured or built.

Co-Authored-By: Claude Fable 5.1 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_015eAE2K7i5JGDwgwifiCfuA
(cherry picked from commit 5a7282759a)
2026-09-20 18:45:04 +02:00

146 lines
4.0 KiB
C++

// SPDX-FileCopyrightText: 2024 Filip Leonarski, Paul Scherrer Institute <filip.leonarski@psi.ch>
// SPDX-License-Identifier: GPL-3.0-only
#pragma once
#include <chrono>
#include <queue>
#include <mutex>
#include <condition_variable>
#include <set>
template <class T>
class ThreadSafeFIFO {
std::queue<T> queue;
std::condition_variable c_empty, c_full;
mutable std::mutex m;
const size_t max_size;
size_t max_utilization;
size_t utilization;
bool stopped = false;
public:
explicit ThreadSafeFIFO(size_t in_max_size = UINT32_MAX) : max_size(in_max_size), max_utilization(0), utilization(0) {}
// Release every waiter and make all further blocking operations return at once: puts are
// dropped, gets answer with a default-constructed element. Used when the owner of the queue is
// torn down - at that point nobody is going to drain it any more, so a producer blocked on a
// full queue would never return and the thread join in the destructor would deadlock.
void Stop() {
std::unique_lock ul(m);
stopped = true;
c_empty.notify_all();
c_full.notify_all();
}
void Clear() {
std::unique_lock ul(m);
queue = {};
utilization = 0;
max_utilization = 0;
// A producer blocked on the full queue has to be told the room it was waiting for is there;
// nothing else would wake it, as the next Get finds the queue empty and notifies no one.
c_full.notify_all();
}
bool Put(T val) {
std::unique_lock ul(m);
if (queue.size() < max_size) {
queue.push(val);
c_empty.notify_one();
utilization++;
if (utilization > max_utilization)
max_utilization = utilization;
return true;
} else
return false;
};
void PutBlocking(T val) {
std::unique_lock ul(m);
c_full.wait(ul, [&]{return stopped || (queue.size() < max_size);});
if (stopped)
return;
queue.push(val);
utilization++;
if (utilization > max_utilization)
max_utilization = utilization;
c_empty.notify_one();
};
bool PutTimeout(T val, std::chrono::milliseconds timeout) {
std::unique_lock ul(m);
if (!c_full.wait_for(ul, timeout, [&]{ return stopped || (queue.size() < max_size); }))
return false;
if (stopped)
return false;
queue.push(val);
utilization++;
if (utilization > max_utilization)
max_utilization = utilization;
c_empty.notify_one();
return true;
}
int Get(T &val) {
std::unique_lock ul(m);
if (queue.empty())
return 0;
else {
val = queue.front();
queue.pop();
c_full.notify_one();
utilization--;
return 1;
}
}
T GetBlocking() {
std::unique_lock ul(m);
c_empty.wait(ul, [&]{return stopped || !queue.empty();});
if (queue.empty())
return T{};
T tmp = queue.front();
queue.pop();
c_full.notify_one();
utilization--;
return tmp;
};
int GetTimeout(T &val, std::chrono::microseconds timeout) {
std::unique_lock ul(m);
if (queue.empty())
c_empty.wait_for(ul, timeout, [&]{return stopped || !queue.empty();});
if (queue.empty())
return 0;
else {
val = queue.front();
queue.pop();
c_full.notify_one();
utilization--;
return 1;
}
}
[[nodiscard]] size_t Size() const {
std::unique_lock ul(m);
return queue.size();
}
void ClearMaxUtilization() {
std::unique_lock ul(m);
max_utilization = utilization;
}
[[nodiscard]] size_t GetMaxUtilization() const {
std::unique_lock ul(m);
return max_utilization;
}
[[nodiscard]] size_t GetCurrentUtilization() const {
std::unique_lock ul(m);
return utilization;
}
};