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+#!/bin/bash
+#SBATCH --job-name=snn_stable
+#SBATCH --account=bfqt-delta-gpu
+#SBATCH --partition=gpuA40x4
+#SBATCH --nodes=1
+#SBATCH --ntasks=1
+#SBATCH --cpus-per-task=8
+#SBATCH --gpus-per-node=1
+#SBATCH --mem=64G
+#SBATCH --time=48:00:00
+#SBATCH --output=runs/slurm_logs/%j_stable_init.out
+#SBATCH --error=runs/slurm_logs/%j_stable_init.err
+
+# ============================================================
+# Experiment 3: Stability-Aware Initialization
+# ============================================================
+# Hypothesis: The network starts chaotic (lambda~2-3) because of
+# standard Kaiming initialization. Using smaller weights from the
+# start should produce more stable dynamics.
+#
+# Stable init strategy:
+# - Scale down weights by 0.5
+# - Use orthogonal init for linear layers (preserves gradient norm)
+# - Should produce lambda closer to 0 initially
+# ============================================================
+
+set -e
+
+PROJECT_DIR="/projects/bfqt/users/yurenh2/ml-projects/snn-training"
+cd "$PROJECT_DIR"
+
+mkdir -p runs/slurm_logs data
+
+echo "============================================================"
+echo "STABLE INITIALIZATION Experiment"
+echo "Job ID: $SLURM_JOB_ID | Node: $SLURM_NODELIST"
+echo "Start: $(date)"
+echo "============================================================"
+nvidia-smi --query-gpu=name,memory.total --format=csv,noheader
+echo "============================================================"
+
+python files/experiments/depth_scaling_benchmark.py \
+ --dataset cifar100 \
+ --depths 4 8 12 16 \
+ --T 4 \
+ --epochs 150 \
+ --batch_size 128 \
+ --lr 0.001 \
+ --lambda_reg 0.1 \
+ --lambda_target -0.1 \
+ --reg_type squared \
+ --warmup_epochs 20 \
+ --stable_init \
+ --data_dir ./data \
+ --out_dir runs/depth_scaling_stable_init \
+ --device cuda
+
+echo "============================================================"
+echo "Finished: $(date)"
+echo "============================================================"