akar_processor/physical/order_aggregate/
orderby.rs1use crate::physical::common::{take_global_rows, value_cmp};
3use crate::physical::order_aggregate::BlockMergeSorter;
4use crate::physical::types::{OperatorResult, PhysicalOperatorExec};
5use akar_common::types::Value;
6use akar_common::vector::DataChunk;
7
8struct ChunkAccessor<'a> {
13 chunks: &'a [DataChunk],
14 offsets: Vec<usize>,
15 num_fields: usize,
16}
17
18impl<'a> ChunkAccessor<'a> {
19 fn new(chunks: &'a [DataChunk]) -> Self {
20 let mut offsets = Vec::with_capacity(chunks.len());
21 let mut cum = 0usize;
22 for c in chunks {
23 offsets.push(cum);
24 cum += c.size;
25 }
26 let num_fields = chunks.first().map(|c| c.num_fields()).unwrap_or(0);
27 Self {
28 chunks,
29 offsets,
30 num_fields,
31 }
32 }
33
34 fn total_rows(&self) -> usize {
35 self.offsets
36 .last()
37 .map(|&o| o + self.chunks.last().unwrap().size)
38 .unwrap_or(0)
39 }
40
41 fn resolve(&self, global_row: usize) -> (usize, usize) {
42 for (ci, chunk) in self.chunks.iter().enumerate() {
43 let offset = self.offsets[ci];
44 if global_row < offset + chunk.size {
45 return (ci, global_row - offset);
46 }
47 }
48 (self.chunks.len() - 1, 0)
49 }
50
51 fn get_value(&self, col: usize, global_row: usize) -> Value {
52 let (ci, local) = self.resolve(global_row);
53 self.chunks[ci].get_value(col, local).unwrap_or(Value::Null)
54 }
55
56 fn is_null(&self, col: usize, global_row: usize) -> bool {
57 let (ci, local) = self.resolve(global_row);
58 self.chunks[ci].is_null(col, local)
59 }
60}
61
62pub struct PhysicalOrderBy {
65 pub sort_keys: Vec<(u32, bool)>,
66}
67
68impl PhysicalOperatorExec for PhysicalOrderBy {
69 fn operator_type(&self) -> &str {
70 "order_by"
71 }
72
73 fn execute(&self, input: Vec<DataChunk>) -> OperatorResult {
74 if input.is_empty() {
75 return Ok(Vec::new());
76 }
77
78 let accessor = ChunkAccessor::new(&input);
79 let total_rows = accessor.total_rows();
80 if total_rows == 0 {
81 return Ok(input);
82 }
83
84 let num_fields = accessor.num_fields;
85 let field_names = input[0].field_names.clone();
86
87 let block_size = 10000usize;
89 let indices = if total_rows > block_size && !self.sort_keys.is_empty() {
90 let sorter = BlockMergeSorter::new(block_size, self.sort_keys.clone());
91 let mut all_values: Vec<Vec<(Value, bool)>> =
93 (0..num_fields).map(|_| Vec::with_capacity(total_rows)).collect();
94 for global_row in 0..total_rows {
95 for col in 0..num_fields {
96 let val = accessor.get_value(col, global_row);
97 let is_null = accessor.is_null(col, global_row);
98 all_values[col].push((val, is_null));
99 }
100 }
101 sorter.sort(&all_values, num_fields)
102 } else {
103 let mut indices: Vec<usize> = (0..total_rows).collect();
104 if !self.sort_keys.is_empty() {
105 indices.sort_by(|a, b| {
106 for &(col, ascending) in &self.sort_keys {
107 let col = col as usize;
108 if col >= num_fields {
109 continue;
110 }
111 let va = accessor.get_value(col, *a);
112 let vb = accessor.get_value(col, *b);
113 let cmp = value_cmp(&va, &vb);
114 if cmp != std::cmp::Ordering::Equal {
115 return if ascending { cmp } else { cmp.reverse() };
116 }
117 }
118 std::cmp::Ordering::Equal
119 });
120 }
121 indices
122 };
123
124 let chunk_size = 100usize;
127 let mut output = Vec::new();
128 for chunk_start in (0..total_rows).step_by(chunk_size) {
129 let chunk_end = (chunk_start + chunk_size).min(total_rows);
130 output.push(take_global_rows(
131 &input,
132 &indices[chunk_start..chunk_end],
133 field_names.clone(),
134 )?);
135 }
136 Ok(output)
137 }
138}