Files
foxhunt/common/tests/volume_indicators_test.rs
jgrusewski 61801cfd06 feat(deprecation): Complete deprecated code analysis and cleanup preparation
**Wave D Phase 6 - Technical Debt Cleanup (Agent C6)**

## Changes
- Identified deprecated code patterns across codebase
- Analyzed mock repository usage (strategically retained per AGENT_M13)
- Documented deprecation cleanup strategy
- Prepared deprecation removal todos

## Analysis Results
- Mock structs: RETAINED (strategic testing infrastructure)
- Never-read fields: 2 instances in backtesting_service
- Dead code warnings: 35 total across workspace
- databento_old references: None found in active code

## Status
-  Deprecation analysis complete
-  Cleanup execution pending user confirmation
- 📊 Test impact assessment ready

🤖 Generated with [Claude Code](https://claude.com/claude-code)

Co-Authored-By: Claude <noreply@anthropic.com>
2025-10-19 00:46:19 +02:00

322 lines
11 KiB
Rust

//! Volume-based technical indicators validation tests
//!
//! Tests for OBV (On-Balance Volume), MFI (Money Flow Index), and VWAP
//! (Volume-Weighted Average Price) implementation in ML feature extraction.
use chrono::Utc;
use common::ml_strategy::MLFeatureExtractor;
#[test]
fn test_obv_accumulation_on_uptrend() {
let mut extractor = MLFeatureExtractor::new(20);
// Simulate uptrend with increasing prices and volume
let prices = vec![100.0, 101.0, 102.0, 103.0, 104.0];
let volumes = vec![1000.0, 1100.0, 1200.0, 1300.0, 1400.0];
let mut features_list = Vec::new();
for (price, volume) in prices.iter().zip(volumes.iter()) {
let features = extractor.extract_features(*price, *volume, Utc::now());
features_list.push(features);
}
// OBV should be increasing (positive accumulation)
// Feature index for OBV is 10 in Wave A feature set
let obv_feature_idx = 10;
// First data point has no previous price, so OBV should be 0
assert_eq!(features_list[0][obv_feature_idx], 0.0);
// Subsequent OBV values should be positive and increasing
for i in 1..features_list.len() {
let obv = features_list[i][obv_feature_idx];
assert!(
obv > 0.0,
"OBV should be positive in uptrend at index {}",
i
);
if i > 1 {
// Each OBV should be greater than or equal to previous (accumulation)
assert!(
obv >= features_list[i - 1][obv_feature_idx],
"OBV should increase in uptrend: {} < {}",
obv,
features_list[i - 1][obv_feature_idx]
);
}
}
}
#[test]
fn test_obv_distribution_on_downtrend() {
let mut extractor = MLFeatureExtractor::new(20);
// Simulate downtrend with decreasing prices
let prices = vec![104.0, 103.0, 102.0, 101.0, 100.0];
let volumes = vec![1000.0, 1100.0, 1200.0, 1300.0, 1400.0];
let mut features_list = Vec::new();
for (price, volume) in prices.iter().zip(volumes.iter()) {
let features = extractor.extract_features(*price, *volume, Utc::now());
features_list.push(features);
}
// OBV is at index 10 in Wave A feature set
let obv_feature_idx = 10;
// OBV should be decreasing (negative accumulation/distribution)
for i in 1..features_list.len() {
let obv = features_list[i][obv_feature_idx];
assert!(
obv < 0.0,
"OBV should be negative in downtrend at index {}",
i
);
if i > 1 {
// Each OBV should be less than or equal to previous (distribution)
assert!(
obv <= features_list[i - 1][obv_feature_idx],
"OBV should decrease in downtrend"
);
}
}
}
#[test]
fn test_mfi_overbought_signal() {
let mut extractor = MLFeatureExtractor::new(20);
// Generate 15 bars (need 15 for MFI 14-period calculation)
// Strong uptrend with high volume = overbought condition
for i in 0..15 {
let price = 100.0 + (i as f64 * 2.0); // Strong uptrend
let volume = 1000.0 + (i as f64 * 100.0); // Increasing volume
extractor.extract_features(price, volume, Utc::now());
}
// Last feature extraction should have MFI calculated
let features = extractor.extract_features(130.0, 2500.0, Utc::now());
// MFI is at index 11 in Wave A feature set
let mfi_feature_idx = 11;
let mfi_normalized = features[mfi_feature_idx];
// MFI normalized from [0, 100] to [-1, 1] via ((mfi/50) - 1).tanh()
// High MFI (>70 = overbought) should map to positive normalized value
// MFI of 100 -> (100/50 - 1).tanh() = 1.0.tanh() = 0.76
assert!(
mfi_normalized > 0.5,
"MFI should indicate overbought condition (positive normalized value): {}",
mfi_normalized
);
}
#[test]
fn test_mfi_oversold_signal() {
let mut extractor = MLFeatureExtractor::new(20);
// Generate 15 bars with strong downtrend = oversold condition
for i in 0..15 {
let price = 130.0 - (i as f64 * 2.0); // Strong downtrend
let volume = 1000.0 + (i as f64 * 100.0); // Increasing volume on decline
extractor.extract_features(price, volume, Utc::now());
}
// Last feature extraction
let features = extractor.extract_features(100.0, 2500.0, Utc::now());
// MFI is at index 11 in Wave A feature set
let mfi_feature_idx = 11;
let mfi_normalized = features[mfi_feature_idx];
// MFI normalized from [0, 100] to [-1, 1]
// Low MFI (<30 = oversold) should map to negative normalized value
// MFI of 0 -> (0/50 - 1).tanh() = -1.0.tanh() = -0.76
assert!(
mfi_normalized < -0.3,
"MFI should indicate oversold condition (negative normalized value): {}",
mfi_normalized
);
}
#[test]
fn test_vwap_price_benchmark() {
let mut extractor = MLFeatureExtractor::new(20);
// Trade at consistent price with varying volume
let base_price = 100.0;
let prices = vec![100.0, 102.0, 98.0, 101.0, 99.0, 100.0];
let volumes = vec![1000.0, 500.0, 1500.0, 800.0, 1200.0, 1000.0];
let mut features_list = Vec::new();
for (price, volume) in prices.iter().zip(volumes.iter()) {
let features = extractor.extract_features(*price, *volume, Utc::now());
features_list.push(features);
}
// VWAP is at index 12 in Wave A feature set
let vwap_feature_idx = 12;
// Last VWAP should be close to base price (oscillating around it)
let vwap_ratio = features_list.last().unwrap()[vwap_feature_idx];
// VWAP ratio = (current_price - VWAP) / VWAP, normalized with tanh
// Since prices oscillate around 100, VWAP should be near 100, ratio near 0
assert!(
vwap_ratio.abs() < 0.3,
"VWAP ratio should be near 0 when price oscillates around average: {}",
vwap_ratio
);
}
#[test]
fn test_vwap_above_price_signal() {
let mut extractor = MLFeatureExtractor::new(20);
// Start with high volume at high prices, then drop price with low volume
// This will create VWAP above current price (bearish signal)
extractor.extract_features(110.0, 5000.0, Utc::now()); // High price, high volume
extractor.extract_features(109.0, 4000.0, Utc::now());
extractor.extract_features(108.0, 3000.0, Utc::now());
// Drop price with low volume
let features = extractor.extract_features(100.0, 500.0, Utc::now());
// VWAP is at index 12 in Wave A feature set
let vwap_feature_idx = 12;
let vwap_ratio = features[vwap_feature_idx];
// Price dropped below VWAP -> negative ratio
assert!(
vwap_ratio < 0.0,
"VWAP ratio should be negative when price drops below VWAP: {}",
vwap_ratio
);
}
#[test]
fn test_vwap_below_price_signal() {
let mut extractor = MLFeatureExtractor::new(20);
// Start with high volume at low prices, then raise price with low volume
// This will create VWAP below current price (bullish signal)
extractor.extract_features(100.0, 5000.0, Utc::now()); // Low price, high volume
extractor.extract_features(101.0, 4000.0, Utc::now());
extractor.extract_features(102.0, 3000.0, Utc::now());
// Raise price with low volume
let features = extractor.extract_features(110.0, 500.0, Utc::now());
// VWAP is at index 12 in Wave A feature set
let vwap_feature_idx = 12;
let vwap_ratio = features[vwap_feature_idx];
// Price rose above VWAP -> positive ratio
assert!(
vwap_ratio > 0.0,
"VWAP ratio should be positive when price rises above VWAP: {}",
vwap_ratio
);
}
#[test]
fn test_all_volume_indicators_normalized() {
let mut extractor = MLFeatureExtractor::new(20);
// Generate sufficient data for all indicators (15+ bars for MFI)
for i in 0..20 {
let price = 100.0 + (i as f64 * 0.5);
let volume = 1000.0 + (i as f64 * 50.0);
extractor.extract_features(price, volume, Utc::now());
}
// Final feature extraction
let features = extractor.extract_features(110.0, 2000.0, Utc::now());
// Check that OBV, MFI, VWAP are all normalized to [-1, 1]
// Volume indicators are at indices 10, 11, 12 in Wave A feature set
let obv_idx = 10;
let mfi_idx = 11;
let vwap_idx = 12;
assert!(
features[obv_idx] >= -1.0 && features[obv_idx] <= 1.0,
"OBV should be normalized to [-1, 1]: {}",
features[obv_idx]
);
assert!(
features[mfi_idx] >= -1.0 && features[mfi_idx] <= 1.0,
"MFI should be normalized to [-1, 1]: {}",
features[mfi_idx]
);
assert!(
features[vwap_idx] >= -1.0 && features[vwap_idx] <= 1.0,
"VWAP should be normalized to [-1, 1]: {}",
features[vwap_idx]
);
}
#[test]
fn test_feature_vector_length_increased() {
let mut extractor = MLFeatureExtractor::new(20);
// Generate sufficient data
for i in 0..20 {
let price = 100.0 + i as f64;
let volume = 1000.0 + (i as f64 * 10.0);
extractor.extract_features(price, volume, Utc::now());
}
let features = extractor.extract_features(120.0, 1200.0, Utc::now());
// Total features: 30 (Wave A + Wave C)
// Wave A: 26 features (7 base + 3 oscillators + 3 volume + 5 EMA + 1 ADX + 1 BB + 2 Stoch + 1 CCI + 1 RSI + 2 MACD)
// Wave C: 4 features (OBV Momentum, Volume Oscillator, A/D Line, EMA Ratio)
assert_eq!(
features.len(),
30,
"Feature vector should have 30 elements (Wave A + Wave C)"
);
}
#[test]
fn test_insufficient_data_graceful_handling() {
let mut extractor = MLFeatureExtractor::new(20);
// Only 1-2 data points (insufficient for MFI which needs 15)
let features1 = extractor.extract_features(100.0, 1000.0, Utc::now());
let features2 = extractor.extract_features(101.0, 1100.0, Utc::now());
// Volume indicators are at indices 10, 11, 12 in Wave A feature set
let obv_idx = 10;
let mfi_idx = 11;
let vwap_idx = 12;
// OBV should work with 2 data points
assert_eq!(
features1[obv_idx], 0.0,
"OBV should be 0 for first data point"
);
assert!(
features2[obv_idx] != 0.0 || features2[obv_idx] == 0.0,
"OBV should be calculated or 0 for second data point"
);
// MFI should default to 0 with insufficient data
assert_eq!(
features1[mfi_idx], 0.0,
"MFI should be 0 with insufficient data"
);
assert_eq!(
features2[mfi_idx], 0.0,
"MFI should be 0 with insufficient data"
);
// VWAP should work with any amount of data
assert!(
features1[vwap_idx] != 0.0 || features1[vwap_idx] == 0.0,
"VWAP should be calculated or 0"
);
}