task.rs 5.2 KB

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  1. //! Verify that tasks get polled by the virtualdom properly, and that we escape wait_for_work safely
  2. use std::{sync::atomic::AtomicUsize, time::Duration};
  3. use dioxus::prelude::*;
  4. async fn run_vdom(app: fn() -> Element) {
  5. let mut dom = VirtualDom::new(app);
  6. dom.rebuild(&mut dioxus_core::NoOpMutations);
  7. tokio::select! {
  8. _ = dom.wait_for_work() => {}
  9. _ = tokio::time::sleep(Duration::from_millis(500)) => {}
  10. };
  11. }
  12. #[tokio::test]
  13. async fn running_async() {
  14. static POLL_COUNT: AtomicUsize = AtomicUsize::new(0);
  15. fn app() -> Element {
  16. use_hook(|| {
  17. spawn(async {
  18. for x in 0..10 {
  19. tokio::time::sleep(Duration::from_micros(50)).await;
  20. POLL_COUNT.fetch_add(x, std::sync::atomic::Ordering::Relaxed);
  21. }
  22. });
  23. spawn(async {
  24. for x in 0..10 {
  25. tokio::time::sleep(Duration::from_micros(25)).await;
  26. POLL_COUNT.fetch_add(x * 2, std::sync::atomic::Ordering::Relaxed);
  27. }
  28. });
  29. });
  30. rsx!({})
  31. }
  32. run_vdom(app).await;
  33. // By the time the tasks are finished, we should've accumulated ticks from two tasks
  34. // Be warned that by setting the delay to too short, tokio might not schedule in the tasks
  35. assert_eq!(
  36. POLL_COUNT.fetch_add(0, std::sync::atomic::Ordering::Relaxed),
  37. 135
  38. );
  39. }
  40. /// Prove that yield_now doesn't cause a deadlock
  41. #[tokio::test]
  42. async fn yield_now_works() {
  43. thread_local! {
  44. static SEQUENCE: std::cell::RefCell<Vec<usize>> = std::cell::RefCell::new(Vec::new());
  45. }
  46. fn app() -> Element {
  47. // these two tasks should yield to eachother
  48. use_hook(|| {
  49. spawn(async move {
  50. for _ in 0..10 {
  51. tokio::task::yield_now().await;
  52. SEQUENCE.with(|s| s.borrow_mut().push(1));
  53. }
  54. })
  55. });
  56. use_hook(|| {
  57. spawn(async move {
  58. for _ in 0..10 {
  59. tokio::task::yield_now().await;
  60. SEQUENCE.with(|s| s.borrow_mut().push(2));
  61. }
  62. })
  63. });
  64. rsx!({})
  65. }
  66. run_vdom(app).await;
  67. SEQUENCE.with(|s| assert_eq!(s.borrow().len(), 20));
  68. }
  69. /// Ensure that calling wait_for_flush waits for dioxus to finish its syncrhonous work
  70. #[tokio::test]
  71. async fn flushing() {
  72. thread_local! {
  73. static SEQUENCE: std::cell::RefCell<Vec<usize>> = std::cell::RefCell::new(Vec::new());
  74. static BROADCAST: (tokio::sync::broadcast::Sender<()>, tokio::sync::broadcast::Receiver<()>) = tokio::sync::broadcast::channel(1);
  75. }
  76. fn app() -> Element {
  77. if generation() > 0 {
  78. println!("App");
  79. SEQUENCE.with(|s| s.borrow_mut().push(0));
  80. }
  81. use_hook(|| {
  82. spawn(async move {
  83. needs_update();
  84. });
  85. });
  86. use_hook(|| {
  87. spawn(async move {
  88. for _ in 0..10 {
  89. BROADCAST.with(|b| b.1.resubscribe()).recv().await.unwrap();
  90. println!("Task 1 recved");
  91. flush_sync().await;
  92. println!("Task 1");
  93. SEQUENCE.with(|s| s.borrow_mut().push(1));
  94. }
  95. })
  96. });
  97. use_hook(|| {
  98. spawn(async move {
  99. for _ in 0..10 {
  100. BROADCAST.with(|b| b.1.resubscribe()).recv().await.unwrap();
  101. println!("Task 2 recved");
  102. flush_sync().await;
  103. println!("Task 2");
  104. SEQUENCE.with(|s| s.borrow_mut().push(2));
  105. }
  106. })
  107. });
  108. rsx! {}
  109. }
  110. let mut dom = VirtualDom::new(app);
  111. dom.rebuild(&mut dioxus_core::NoOpMutations);
  112. let fut = async {
  113. // Trigger the flush by waiting for work
  114. for _ in 0..30 {
  115. BROADCAST.with(|b| b.0.send(()).unwrap());
  116. dom.mark_dirty(ScopeId(0));
  117. tokio::select! {
  118. _ = dom.wait_for_work() => {}
  119. _ = tokio::time::sleep(Duration::from_millis(10)) => {}
  120. }
  121. dom.render_immediate(&mut dioxus_core::NoOpMutations);
  122. println!("Flushed");
  123. }
  124. };
  125. tokio::select! {
  126. _ = fut => {}
  127. _ = tokio::time::sleep(Duration::from_millis(500)) => {
  128. println!("Aborting due to timeout");
  129. }
  130. };
  131. SEQUENCE.with(|s| {
  132. let s = s.borrow();
  133. println!("{:?}", s);
  134. assert_eq!(s.len(), 30);
  135. // We need to check if every three elements look like [0, 1, 2] or [0, 2, 1]
  136. let mut has_seen_1 = false;
  137. for (i, &x) in s.iter().enumerate() {
  138. let stage = i % 3;
  139. if stage == 0 {
  140. assert_eq!(x, 0);
  141. } else if stage == 1 {
  142. assert!(x == 1 || x == 2);
  143. has_seen_1 = x == 1;
  144. } else if stage == 2 {
  145. if has_seen_1 {
  146. assert_eq!(x, 2);
  147. } else {
  148. assert_eq!(x, 1);
  149. }
  150. }
  151. }
  152. });
  153. }