inc_complete/storage/
singleton.rs1use serde::{Deserialize, ser::SerializeStruct};
2
3use super::{Computation, StorageFor};
4use crate::Cell;
5
6pub struct SingletonStorage<K: Computation> {
11 cell: std::sync::OnceLock<Cell>,
12 key: std::sync::OnceLock<K>,
13 value: std::sync::Mutex<Option<K::Output>>,
14}
15
16impl<K: Computation> Default for SingletonStorage<K> {
17 fn default() -> Self {
18 Self {
19 cell: Default::default(),
20 value: Default::default(),
21 key: Default::default(),
22 }
23 }
24}
25
26impl<K> StorageFor<K> for SingletonStorage<K>
27where
28 K: Computation + Clone,
29 K::Output: Eq + Clone,
30{
31 fn get_cell_for_computation(&self, _: &K) -> Option<Cell> {
32 self.cell.get().copied()
33 }
34
35 fn insert_new_cell(&self, cell: Cell, key: K) {
36 assert!(
37 self.cell.set(cell).is_ok(),
38 "Overwriting previous singleton value - are you using SingleStorage<{}> with a non-singleton type?",
39 std::any::type_name::<K>()
40 );
41 let result = self.key.set(key);
42 result.unwrap_or_else(|_| panic!("insert_new_cell: cell already initialized"));
43 }
44
45 fn try_get_input(&self, cell: Cell) -> Option<K> {
46 if cell == self.cell.get().cloned()? {
47 self.key.get().cloned()
48 } else {
49 None
50 }
51 }
52
53 fn get_input(&self, _: Cell) -> K {
54 self.key.get().cloned().unwrap()
55 }
56
57 fn get_output(&self, _: Cell) -> Option<K::Output> {
58 self.value.lock().unwrap().clone()
59 }
60
61 fn update_output(&self, _: Cell, new_value: K::Output) -> bool {
62 let mut guard = self.value.lock().unwrap();
63 let changed = K::ASSUME_CHANGED || guard.as_ref().is_none_or(|value| *value != new_value);
64 *guard = Some(new_value);
65 changed
66 }
67
68 fn gc(&mut self, used_cells: &std::collections::HashSet<Cell>) {
69 if let Some(this_cell) = self.cell.get() {
70 if !used_cells.contains(this_cell) {
71 if let Ok(val) = self.value.get_mut() {
72 *val = None;
73 }
74 }
75 }
76 }
77}
78
79impl<K> serde::Serialize for SingletonStorage<K>
80where
81 K: serde::Serialize + Computation,
82 K::Output: serde::Serialize,
83{
84 fn serialize<S>(&self, serializer: S) -> Result<S::Ok, S::Error>
85 where
86 S: serde::Serializer,
87 {
88 let mut s = serializer.serialize_struct("SingletonStorage", 3)?;
89 s.serialize_field("cell", &self.cell.get())?;
90 s.serialize_field("key", &self.key.get())?;
91 let guard = self.value.lock().unwrap();
92
93 s.serialize_field("value", &guard.as_ref().map(|value| (value,)))?;
97 s.end()
98 }
99}
100
101impl<'de, K> serde::Deserialize<'de> for SingletonStorage<K>
102where
103 K: serde::Deserialize<'de> + Computation,
104 K::Output: serde::Deserialize<'de>,
105{
106 fn deserialize<D>(deserializer: D) -> Result<Self, D::Error>
107 where
108 D: serde::Deserializer<'de>,
109 {
110 let wrapper: SerializeWrapper<K> = Deserialize::deserialize(deserializer)?;
111 Ok(wrapper.into_storage())
112 }
113}
114
115#[derive(Deserialize)]
116struct SerializeWrapper<K: Computation> {
117 #[serde(default)]
118 cell: Option<Cell>,
119
120 #[serde(default = "none")]
122 key: Option<K>,
123
124 #[serde(default)]
125 #[serde(bound = "K::Output: Deserialize<'de>")]
126 value: Option<(K::Output,)>,
127}
128
129fn none<T>() -> Option<T> {
130 None
131}
132
133impl<K: Computation> SerializeWrapper<K> {
134 fn into_storage(self) -> SingletonStorage<K> {
135 let cell = match self.cell {
136 Some(cell) => std::sync::OnceLock::from(cell),
137 None => std::sync::OnceLock::new(),
138 };
139 let key = match self.key {
140 Some(key) => std::sync::OnceLock::from(key),
141 None => std::sync::OnceLock::new(),
142 };
143 let value = std::sync::Mutex::new(self.value.map(|(value,)| value));
144 SingletonStorage { cell, key, value }
145 }
146}