use cobre_core::EntityId;
use parquet::arrow::arrow_reader::ParquetRecordBatchReaderBuilder;
use std::fs::File;
use std::path::Path;
use crate::LoadError;
use crate::parquet_helpers::{extract_required_float64, extract_required_int32};
#[derive(Debug, Clone, PartialEq)]
pub struct InflowSeasonalStatsRow {
pub hydro_id: EntityId,
pub stage_id: i32,
pub mean_m3s: f64,
pub std_m3s: f64,
}
pub fn parse_inflow_seasonal_stats(path: &Path) -> Result<Vec<InflowSeasonalStatsRow>, LoadError> {
let file = File::open(path).map_err(|e| LoadError::io(path, e))?;
let builder = ParquetRecordBatchReaderBuilder::try_new(file)
.map_err(|e| LoadError::parse(path, e.to_string()))?;
let reader = builder
.build()
.map_err(|e| LoadError::parse(path, e.to_string()))?;
let mut rows: Vec<InflowSeasonalStatsRow> = Vec::new();
for batch_result in reader {
let batch = batch_result.map_err(|e| LoadError::parse(path, e.to_string()))?;
let hydro_id_col = extract_required_int32(&batch, "hydro_id", path)?;
let stage_id_col = extract_required_int32(&batch, "stage_id", path)?;
let mean_m3s_col = extract_required_float64(&batch, "mean_m3s", path)?;
let std_m3s_col = extract_required_float64(&batch, "std_m3s", path)?;
let n = batch.num_rows();
let base_idx = rows.len();
rows.reserve(n);
for i in 0..n {
let row_idx = base_idx + i;
let hydro_id = EntityId::from(hydro_id_col.value(i));
let stage_id = stage_id_col.value(i);
let mean_m3s = mean_m3s_col.value(i);
let std_m3s = std_m3s_col.value(i);
if !mean_m3s.is_finite() {
return Err(LoadError::SchemaError {
path: path.to_path_buf(),
field: format!("inflow_seasonal_stats[{row_idx}].mean_m3s"),
message: format!("value must be finite, got {mean_m3s}"),
});
}
if !std_m3s.is_finite() || std_m3s < 0.0 {
return Err(LoadError::SchemaError {
path: path.to_path_buf(),
field: format!("inflow_seasonal_stats[{row_idx}].std_m3s"),
message: format!("value must be non-negative and finite, got {std_m3s}"),
});
}
rows.push(InflowSeasonalStatsRow {
hydro_id,
stage_id,
mean_m3s,
std_m3s,
});
}
}
rows.sort_by(|a, b| {
a.hydro_id
.0
.cmp(&b.hydro_id.0)
.then_with(|| a.stage_id.cmp(&b.stage_id))
});
Ok(rows)
}
#[cfg(test)]
#[allow(
clippy::doc_markdown,
clippy::expect_used,
clippy::panic,
clippy::too_many_lines,
clippy::unwrap_used
)]
mod tests {
use super::*;
use arrow::array::{Float64Array, Int32Array};
use arrow::datatypes::{DataType, Field, Schema};
use arrow::record_batch::RecordBatch;
use parquet::arrow::ArrowWriter;
use std::sync::Arc;
use tempfile::NamedTempFile;
fn schema() -> Arc<Schema> {
Arc::new(Schema::new(vec![
Field::new("hydro_id", DataType::Int32, false),
Field::new("stage_id", DataType::Int32, false),
Field::new("mean_m3s", DataType::Float64, false),
Field::new("std_m3s", DataType::Float64, false),
]))
}
fn write_parquet(batch: &RecordBatch) -> NamedTempFile {
let tmp = NamedTempFile::new().expect("tempfile");
let mut writer = ArrowWriter::try_new(tmp.reopen().expect("reopen"), batch.schema(), None)
.expect("ArrowWriter");
writer.write(batch).expect("write batch");
writer.close().expect("close writer");
tmp
}
fn make_batch(
hydro_ids: &[i32],
stage_ids: &[i32],
means: &[f64],
stds: &[f64],
) -> RecordBatch {
RecordBatch::try_new(
schema(),
vec![
Arc::new(Int32Array::from(hydro_ids.to_vec())),
Arc::new(Int32Array::from(stage_ids.to_vec())),
Arc::new(Float64Array::from(means.to_vec())),
Arc::new(Float64Array::from(stds.to_vec())),
],
)
.expect("valid batch")
}
#[test]
fn test_valid_4_rows_sorted_by_hydro_stage() {
let batch = make_batch(
&[3, 1, 3, 1],
&[1, 0, 0, 1],
&[200.0, 150.0, 180.0, 160.0],
&[40.0, 30.0, 35.0, 32.0],
);
let tmp = write_parquet(&batch);
let rows = parse_inflow_seasonal_stats(tmp.path()).unwrap();
assert_eq!(rows.len(), 4);
assert_eq!(rows[0].hydro_id, EntityId::from(1));
assert_eq!(rows[0].stage_id, 0);
assert!((rows[0].mean_m3s - 150.0).abs() < 1e-10);
assert!((rows[0].std_m3s - 30.0).abs() < 1e-10);
assert_eq!(rows[1].hydro_id, EntityId::from(1));
assert_eq!(rows[1].stage_id, 1);
assert_eq!(rows[2].hydro_id, EntityId::from(3));
assert_eq!(rows[2].stage_id, 0);
assert_eq!(rows[3].hydro_id, EntityId::from(3));
assert_eq!(rows[3].stage_id, 1);
}
#[test]
fn test_missing_mean_m3s_column() {
let schema_no_mean = Arc::new(Schema::new(vec![
Field::new("hydro_id", DataType::Int32, false),
Field::new("stage_id", DataType::Int32, false),
Field::new("std_m3s", DataType::Float64, false),
]));
let batch = RecordBatch::try_new(
schema_no_mean,
vec![
Arc::new(Int32Array::from(vec![1_i32])),
Arc::new(Int32Array::from(vec![0_i32])),
Arc::new(Float64Array::from(vec![30.0])),
],
)
.unwrap();
let tmp = write_parquet(&batch);
let err = parse_inflow_seasonal_stats(tmp.path()).unwrap_err();
match &err {
LoadError::SchemaError { field, message, .. } => {
assert!(
field.contains("mean_m3s"),
"field should contain 'mean_m3s', got: {field}"
);
assert!(
message.contains("missing required column"),
"message should mention missing column, got: {message}"
);
}
other => panic!("expected SchemaError, got: {other:?}"),
}
}
#[test]
fn test_negative_std_m3s() {
let batch = make_batch(&[1], &[0], &[150.0], &[-1.0]);
let tmp = write_parquet(&batch);
let err = parse_inflow_seasonal_stats(tmp.path()).unwrap_err();
match &err {
LoadError::SchemaError { field, .. } => {
assert!(
field.contains("std_m3s"),
"field should contain 'std_m3s', got: {field}"
);
}
other => panic!("expected SchemaError, got: {other:?}"),
}
}
#[test]
fn test_nan_mean_m3s() {
let batch = make_batch(&[1], &[0], &[f64::NAN], &[30.0]);
let tmp = write_parquet(&batch);
let err = parse_inflow_seasonal_stats(tmp.path()).unwrap_err();
match &err {
LoadError::SchemaError { field, .. } => {
assert!(
field.contains("mean_m3s"),
"field should contain 'mean_m3s', got: {field}"
);
}
other => panic!("expected SchemaError, got: {other:?}"),
}
}
#[test]
fn test_empty_parquet_returns_empty_vec() {
let batch = make_batch(&[], &[], &[], &[]);
let tmp = write_parquet(&batch);
let rows = parse_inflow_seasonal_stats(tmp.path()).unwrap();
assert!(rows.is_empty());
}
#[test]
fn test_declaration_order_invariance() {
let batch_asc = make_batch(
&[1, 1, 5, 5],
&[0, 1, 0, 1],
&[100.0, 110.0, 200.0, 210.0],
&[10.0, 11.0, 20.0, 21.0],
);
let batch_desc = make_batch(
&[5, 5, 1, 1],
&[1, 0, 1, 0],
&[210.0, 200.0, 110.0, 100.0],
&[21.0, 20.0, 11.0, 10.0],
);
let tmp_asc = write_parquet(&batch_asc);
let tmp_desc = write_parquet(&batch_desc);
let rows_asc = parse_inflow_seasonal_stats(tmp_asc.path()).unwrap();
let rows_desc = parse_inflow_seasonal_stats(tmp_desc.path()).unwrap();
let keys_asc: Vec<(i32, i32)> = rows_asc
.iter()
.map(|r| (r.hydro_id.0, r.stage_id))
.collect();
let keys_desc: Vec<(i32, i32)> = rows_desc
.iter()
.map(|r| (r.hydro_id.0, r.stage_id))
.collect();
assert_eq!(keys_asc, keys_desc);
}
}