task_id
string
title
string
authors
string
year
int64
doi
string
arxiv
string
paper_files
list
input_files
list
instruction
string
code_only_instruction_suffix
string
expected_outputs
unknown
code_only_expected_outputs
unknown
docker
dict
grading_dimensions
list
task_bude_2021
Accelerating simulations of electromagnetic waves in hot, magnetized fusion plasmas
R H S Budé, D Van Eester, J van Dijk, R J E Jaspers and A B Smolders
2,021
10.1088/1361-6587/abd619
null
[ "Bude2021.md" ]
[]
# Paper Reproduction Task You are given a plasma physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement electromagnetic wave simulations to reproduce 7 key figures and 1 table. --- ## 1. Article Information | Field | Value | |-------|-------| | **Title** | Accelerating...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the simulations or generate CSV data files 5. Focus on writing correct,...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/plasma.py", "reproduction/dielectric.py", "reproduction/solvers.py", "reproduction/run_sim.py", "reproduction/fig2_profiles.py", "reproduction/fig3_4_tensor.py", "reproduction/fig5_fields.py", "reproduction/f...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/plasma.py", "reproduction/dielectric.py", "reproduction/solvers.py", "reproduction/run_sim.py", "reproduction/fig2_profiles.py", "reproduction/fig3_4_tensor.py", "reproduction/fig5_fields.py", "reproduction/f...
{ "image": "python:3.11-slim", "memory_limit": "8g", "timeout": 14400, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_davighi_2024
Topological Portal to the Dark Sector
Joe Davighi, Admir Greljo, Nudžeim Selimović
2,024
null
2401.09528
[ "Davighi2024.md" ]
[]
# Paper Reproduction Task You are given a particle physics phenomenology paper to reproduce. Your goal is to read the paper, understand its methodology, and implement numerical computations to reproduce 2 key figures. --- ## 1. Article Information | Field | Value | |-------|-------| | **Title** | Topological Portal...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduce/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduce/` 4. **DO NOT** run the scripts or generate data files 5. Focus on writing correct, complete, and...
{ "analysis": [ "reproduce/ANALYSIS.md" ], "code": [ "reproduce/fig2_compute.py", "reproduce/fig4_compute.py" ], "data": [ "data/fig2.csv", "data/fig4_relic.csv" ] }
{ "analysis": [ "reproduce/ANALYSIS.md" ], "code": [ "reproduce/fig2_compute.py", "reproduce/fig4_compute.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 7200, "pip_install": [ "numpy", "scipy", "matplotlib", "mpmath" ] }
[ { "name": "methodology_understanding", "weight": 0.15 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.55 }, { "name": "completeness", "weight": 0.15 } ]
task_dimitrov_2000
Chirality of Nuclear Rotation
S. Dimitrov, T. Frauendorf, F. Dönau
2,000
10.1103/PhysRevLett.84.5732
null
[ "3-Dimitrov2000Phys.Rev.Lett.5732.md" ]
[]
# Paper Reproduction Task You are given a nuclear-structure paper to reproduce. Your goal is to read the paper, understand its TAC methodology, and implement a self-contained Python reproduction for the main `134Pr` benchmark. --- ## 1. Article Information | Field | Value | | --- | --- | | **Title** | Chirality of ...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduce/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduce/` 4. **DO NOT** run the scripts or generate CSV data files 5. Focus on writing correct, complete,...
{ "analysis": [ "reproduce/ANALYSIS.md" ], "code": [ "reproduce/main.py", "reproduce/tac3d_python.py", "reproduce/ws_reference.py" ], "data": [ "data/pr134_final_reproduction_comparison.csv", "data/pr134_final_reproduction_metrics.csv", "data/pr134_table1_angles_j.csv", "data/p...
{ "analysis": [ "reproduce/ANALYSIS.md" ], "code": [ "reproduce/main.py", "reproduce/tac3d_python.py", "reproduce/ws_reference.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 21600, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.25 }, { "name": "data_accuracy", "weight": 0.4 }, { "name": "completeness", "weight": 0.15 } ]
task_dong_2025
Enhanced nonlinear Hall effect by Cooper pairs near the superconducting phase transition
Zi-Hao Dong, Hui Yang, Yi Zhang
2,025
10.1103/PhysRevB.111.155120
null
[ "PhysRevB.111.155120.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its content, and implement numerical calculations to reproduce Figure 2. --- ## 1. Article Information | Field | Value ...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement your computation under `reproduction/` (any language/format) 4. **DO NOT** run the scripts or generate any data files Your de...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/data.npz" ], "data": [ "data/data.csv" ] }
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 3600, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.15 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.55 }, { "name": "completeness", "weight": 0.15 } ]
task_fu_2001
Classical collisional trajectories as the source of strong-field double ionization of helium in the knee regime
L. B. Fu, J. Liu, J. Chen, S. G. Chen
2,001
10.1103/PhysRevA.63.043416
null
[ "fu2001.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement a classical trajectory Monte Carlo (CTMC) simulation to reproduce the key figure showing the "knee" structure in helium double ionization. --- ## 1. Article Information | F...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the Monte Carlo simulation or generate CSV data files 5. Focus on writi...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/fig3_knee_structure.py" ], "data": [ "data/fig3_knee_structure.csv" ] }
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/fig3_knee_structure.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 21600, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_fu_2008
Energetic-Particle-Induced Geodesic Acoustic Mode
Guoyong Fu
2,008
10.1103/PhysRevLett.101.185002
null
[ "fu2008.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement a kinetic dispersion relation solver to reproduce 3 key figures (Figure 4, which requires a full global PIC simulation, is explicitly excluded). --- ## 1. Article Informatio...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` (excluding Figure 4) 4. **DO NOT** run the kinetic dispersion relation simulations or gen...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/kinetic_integrals.py", "reproduction/dispersion_solver.py", "reproduction/fig1_compute.py", "reproduction/fig2_compute.py", "reproduction/fig3_compute.py" ], "data": [ "data/fig1_qh.csv", "data/fig2_roots.csv...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/kinetic_integrals.py", "reproduction/dispersion_solver.py", "reproduction/fig1_compute.py", "reproduction/fig2_compute.py", "reproduction/fig3_compute.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "8g", "timeout": 14400, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_fukushima_2004
Chiral effective model with the Polyakov loop
Kenji Fukushima
2,004
10.1016/j.physletb.2004.04.027
null
[ "Fukushima.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement a PNJL (Polyakov-loop extended Nambu--Jona-Lasinio) model to reproduce 3 key figures. --- ## 1. Article Information | Field | Value | |-------|-------| | **Title** | Chiral...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the simulation scripts or generate CSV data files 5. Focus on writing c...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/pnjl_model.py", "reproduction/fig1_pnjl.py", "reproduction/fig2_pnjl.py", "reproduction/fig3_pnjl.py" ], "data": [ "data/fig1_pnjl.csv", "data/fig2_pnjl.csv", "data/fig3_pnjl.csv" ] }
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/pnjl_model.py", "reproduction/fig1_pnjl.py", "reproduction/fig2_pnjl.py", "reproduction/fig3_pnjl.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 7200, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_gralla_2018
Observational Signature of High Spin at the Event Horizon Telescope
Samuel E. Gralla, Alexandru Lupsasca, Andrew Strominger
2,018
10.1093/mnras/sty039
null
[ "1710.11112v2.md" ]
[]
# Paper Reproduction Task You are given a general relativity paper to reproduce. Your goal is to read the paper, understand its methodology, and implement the near-extremal Kerr photon ray-tracing computation to reproduce the brightest-image data in Figure 3. --- ## 1. Article Information | Field | Va...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement your computation under `reproduction/` (any language/format) 4. **DO NOT** run the scripts or generate CSV data files 5. Focus...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [], "data": [ "data/beta_0.15.csv", "data/beta_0.01.csv", "data/beta_0.001.csv", "data/f_0.15.csv", "data/f_0.01.csv", "data/f_0.001.csv", "data/g_0.15.csv", "data/g_0.01.csv", "data/g_0.001.csv" ] }
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 10800, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.2 }, { "name": "data_accuracy", "weight": 0.45 }, { "name": "completeness", "weight": 0.15 } ]
task_harris_1989
Lasers without Inversion: Interference of Lifetime-Broadened Resonances
S. E. Harris
1,989
10.1103/PhysRevLett.62.1033
null
[ "10_1989_Lasers_Without_Inversion.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and to reproduce 3 key figures. ## 1. Article Information | Field | Value | | :------------- | :-------------...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the scripts or generate CSV data files 5. Focus on writing correct, com...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/fig2_compute.py" ], "data": [ "data/fig2.csv" ] }
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/fig2_compute.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 10800, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.2 }, { "name": "data_accuracy", "weight": 0.45 }, { "name": "completeness", "weight": 0.15 } ]
task_harris_1999
Nonlinear Optics at Low Light Levels
S. E. Harris and Lene Vestergaard Hau
1,999
10.1103/PhysRevLett.82.4611
null
[ "harris1999.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and reproduce 2 key figures. --- ## 1. Article Information | Field | Value | | ------------------- | --------------...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the scripts or generate CSV data files 5. Focus on writing correct, com...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/fig1.py", "reproduction/fig3.py", "reproduction/fig4.py" ], "data": [ "data/fig1_data.csv", "data/fig3_data.csv", "data/fig4_data.csv" ] }
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/fig1.py", "reproduction/fig3.py", "reproduction/fig4.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 10800, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_ishikawa_1982
The glueball mass spectrum in QCD: first results of a lattice Monte Carlo calculation
K. Ishikawa, M. Teper, G. Schierholz
1,982
null
[ "ishikawa1982.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement a lattice gauge theory glueball mass calculation to reproduce the key mass results. --- ## 1. Article Information | Field | Value ...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduce/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduce/` 4. **DO NOT** run the simulation scripts or generate CSV data files 5. Focus on writing correct...
{ "analysis": [ "reproduce/ANALYSIS.md" ], "code": [ "reproduce/glueball_simulation.py", "reproduce/fig1_compute.py", "reproduce/fig2_compute.py", "reproduce/fig3_compute.py" ], "data": [ "data/fig1.csv", "data/fig2.csv", "data/fig3.csv" ] }
{ "analysis": [ "reproduce/ANALYSIS.md" ], "code": [ "reproduce/glueball_simulation.py", "reproduce/fig1_compute.py", "reproduce/fig2_compute.py", "reproduce/fig3_compute.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 21600, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_kolb_2003
Hydrodynamic description of ultrarelativistic heavy-ion collisions
Peter F. Kolb and Ulrich Heinz
2,003
nucl-th/0305084v2
null
[ "P.Kolb2003IdealHydro.md" ]
[ "eosq.dat" ]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement the simulation to reproduce figures. --- ## 1. Article Information | Field | Value | |-------|-------| | **Title** | Hydrodynamic description of ultrarelativistic heavy-ion...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the simulation scripts or generate data files 5. Focus on writing corre...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/hydro_core.py", "reproduction/eos.py", "reproduction/glauber.py", "reproduction/fig2_glauber.py", "reproduction/fig4_entropy_temp.py", "reproduction/fig9_eccentricity.py" ], "data": [ "data/fig2_glauber.csv",...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/hydro_core.py", "reproduction/eos.py", "reproduction/glauber.py", "reproduction/fig2_glauber.py", "reproduction/fig4_entropy_temp.py", "reproduction/fig9_eccentricity.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 10800, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_li_2014
Classical-Quantum Correspondence for Above-Threshold Ionization
Min Li, Ji-Wei Geng, Hong Liu, Yongkai Deng, Chengyin Wu, Liang-You Peng, Qihuang Gong, Yunquan Liu
2,014
10.1103/PhysRevLett.112.113002
null
[ "qtmc.md" ]
[]
# Paper Reproduction Task: Quantum-Trajectory Monte Carlo Simulation You are given a physics paper to reproduce. Your goal is to read the paper, understand the Quantum-Trajectory Monte Carlo (QTMC) methodology, and implement a simulation to reproduce the photoelectron momentum distribution (PMD) for xenon atoms in str...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis and all formulas 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the simulation or generate CSV data files 5. Focus on ...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/qtmc_simulation.py" ], "data": [ "data/fig1d.csv" ] }
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/qtmc_simulation.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 7200, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_lin_2020
Bootstraps to Strings: Solving Random Matrix Models with Positivity
Henry W. Lin
2,020
arXiv:2002.08387
null
[ "Lin_2020.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement a bootstrap computation to reproduce 4 key figures. --- ## 1. Article Information | Field | Value | |-------|-------| | **Title** | Bootstraps to Strings: Solving Random Ma...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the scripts or generate CSV data files 5. Focus on writing correct, com...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/matrix_bootstrap.py", "reproduction/two_matrix_bootstrap.py", "reproduction/fig1_quartic_bootstrap.py", "reproduction/fig4_peninsula.py", "reproduction/fig5_cubic_bootstrap.py", "reproduction/fig8_two_matrix.py" ],...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/matrix_bootstrap.py", "reproduction/two_matrix_bootstrap.py", "reproduction/fig1_quartic_bootstrap.py", "reproduction/fig4_peninsula.py", "reproduction/fig5_cubic_bootstrap.py", "reproduction/fig8_two_matrix.py" ] ...
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 7200, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_liu_2025
Scattering Entanglement Entropy and Its Implications for Electroweak Phase Transitions
Jia Liu, Masanori Tanaka, Xiao-Ping Wang, Jing-Jun Zhang, Zifan Zheng
2,025
arXiv:2505.06001v2
null
[ "liu2025.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement a numerical computation to reproduce 8 data files corresponding to Figures 3, 4, and 5. --- ## 1. Article Information | Field | Value | |-------|-------| | **Title** | Scat...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis and all formulas 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the scripts or generate CSV data files 5. Focus on wri...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/entanglement_power.py", "reproduction/fig3_lambda_hS_lambda_S.py", "reproduction/fig4_mS_lambda_hS.py", "reproduction/fig5_vh_lambda_hS.py" ], "data": [ "data/fig3_N2_mS500_lambda_hS_lambda_S.csv", "data/fig3_N4_...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/entanglement_power.py", "reproduction/fig3_lambda_hS_lambda_S.py", "reproduction/fig4_mS_lambda_hS.py", "reproduction/fig5_vh_lambda_hS.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 3600, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_luscher_1991
Signatures of unstable particles in finite volume
Martin Luscher
1,991
10.1016/0550-3213(91)90584-K
null
[ "luscher1991.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement the Lüscher finite-volume quantization condition to reproduce 2 key figures. --- ## 1. Article Information | Field | Value ...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduce/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduce/` 4. **DO NOT** run the scripts or generate CSV data files 5. Focus on writing correct, complete,...
{ "analysis": [ "reproduce/ANALYSIS.md" ], "code": [ "reproduce/zeta_functions.py", "reproduce/luscher_quantization.py", "reproduce/reproduce_figures_final.py", "reproduce/fig1_compute.py", "reproduce/fig2_compute.py" ], "data": [ "data/fig1.csv", "data/fig2.csv" ] }
{ "analysis": [ "reproduce/ANALYSIS.md" ], "code": [ "reproduce/zeta_functions.py", "reproduce/luscher_quantization.py", "reproduce/reproduce_figures_final.py", "reproduce/fig1_compute.py", "reproduce/fig2_compute.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "2g", "timeout": 3600, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_monmayrant_2010
A newcomer's guide to ultrashort pulse shaping and characterization
Antoine Monmayrant, Sébastien Weber, Béatrice Chatel
2,010
10.1088/0953-4075/43/10/103001
null
[ "Monmayrant_2010.md" ]
[]
# Reproduction Instructions for AI Agent Reproduce **Figure 3: Pulse Shaping Gallery** from the paper: - **Title**: A newcomer's guide to ultrashort pulse shaping and characterization - **Authors**: Antoine Monmayrant, Sébastien Weber, Béatrice Chatel - **DOI**: 10.1088/0953-4075/43/10/103001 - **Journal**: J. Phys. B...
## Code-Only Mode Write the code to reproduce Figure 3 and export the data files. DO NOT run the simulation or generate the actual CSV files.
{ "code": [ "reproduction/fig3.py" ], "data": [ "data/spectral_data.csv", "data/temporal_data.csv", "data/pulse_features.csv" ] }
{ "code": [ "reproduction/fig3.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "2g", "timeout": 1800, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.2 }, { "name": "data_accuracy", "weight": 0.4 }, { "name": "completeness", "weight": 0.2 } ]
task_parke_1986
Amplitude for n-Gluon Scattering
Stephen J. Parke and T. R. Taylor
1,986
10.1103/PhysRevLett.56.2459
null
[ "parke_1986.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement a computation to reproduce the 5-gluon scattering amplitude results. --- ## 1. Article Information | Field | Value ...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the computation scripts or generate data files 5. Focus on writing corr...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/FeynmanRules.wl", "reproduction/ColorAlgebra.wl", "reproduction/Kinematics.wl", "reproduction/SpinorHelicity.wl", "reproduction/Amplitude5g.wl", "reproduction/ComputeAmplitude.wl", "reproduction/EvaluateDdim.wl",...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/FeynmanRules.wl", "reproduction/ColorAlgebra.wl", "reproduction/Kinematics.wl", "reproduction/SpinorHelicity.wl", "reproduction/Amplitude5g.wl", "reproduction/ComputeAmplitude.wl", "reproduction/EvaluateDdim.wl",...
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 10800, "pip_install": [ "numpy", "scipy", "matplotlib", "sympy" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.2 }, { "name": "data_accuracy", "weight": 0.45 }, { "name": "completeness", "weight": 0.15 } ]
task_ratti_2006
Phases of QCD: Lattice thermodynamics and a field theoretical model
Claudia Ratti, Michael A. Thaler, Wolfram Weise
2,006
10.1103/PhysRevD.73.014019
null
[ "Ratti.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement a PNJL (Polyakov-loop extended Nambu--Jona-Lasinio) model to reproduce 10 key figures. --- ## 1. Article Information | Field | Value | |-------|-------| | **Title** | Phase...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the scripts or generate data files 5. Focus on writing correct, complet...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/pnjl_model.py", "reproduction/fig1_2_3_pure_gauge.py", "reproduction/fig4_5_6_order_parameters.py", "reproduction/fig7_10_eos.py" ], "data": [] }
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/pnjl_model.py", "reproduction/fig1_2_3_pure_gauge.py", "reproduction/fig4_5_6_order_parameters.py", "reproduction/fig7_10_eos.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 7200, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_roothaan_1960
Self-Consistent Field Theory for Atomic Systems
Clemens C. J. Roothaan
1,960
10.1103/RevModPhys.32.186
null
[ "SCF theory.md", "SCF example.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement a Self-Consistent Field (SCF) solver to reproduce tables and wave functions for atomic systems. --- ## 1. Article Information | Field | Value | |-------|-------| | **Title*...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the papers 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the SCF computations or generate CSV data files 5. Focus on writing co...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/scf_solver.py", "reproduction/table_ii_li_plus.py", "reproduction/table_iii_li.py", "reproduction/table_iv_li_minus.py", "reproduction/table_v_compromise.py", "reproduction/table_vii_li_wavefunction.py", "reprodu...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/scf_solver.py", "reproduction/table_ii_li_plus.py", "reproduction/table_iii_li.py", "reproduction/table_iv_li_minus.py", "reproduction/table_v_compromise.py", "reproduction/table_vii_li_wavefunction.py", "reprodu...
{ "image": "python:3.11-slim", "memory_limit": "2g", "timeout": 3600, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_rosenbluth_1998
Poloidal Flow Driven by Ion-Temperature-Gradient Turbulence in Tokamaks
M. N. Rosenbluth, F. L. Hinton
1,998
10.1103/PhysRevLett.80.724
null
[ "rosenbluth_1998.md" ]
[]
# Paper Reproduction Task You are given a landmark theoretical physics paper to reproduce. Your goal is to read the paper, thoroughly understand its gyrokinetic methodology, and write a script to numerically evaluate the exact phase-space integrals that yield its famous residual flow coefficient. --- ## 1. Article I...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement the numerical integration script `reproduction/compute_rh_factor.py` 4. **DO NOT** execute the script to print outputs 5. Focu...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/compute_rh_factor.py" ], "data": [ "data/results.csv" ] }
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/compute_rh_factor.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 1800, "pip_install": [ "numpy", "scipy" ] }
[ { "name": "methodology_understanding", "weight": 0.35 }, { "name": "numerical_accuracy", "weight": 0.35 }, { "name": "code_correctness", "weight": 0.2 }, { "name": "completeness", "weight": 0.1 } ]
task_shvetsov_2016
Semiclassical two-step model for strong-field ionization
N. I. Shvetsov-Shilovski et al.
2,016
10.1103/PhysRevA.94.013415
null
[ "shvetsov2016.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement a semiclassical two-step model for strong-field ionization to reproduce key figures. --- ## 1. Article Information | Field | Value | |-------|-------| | **Title** | Semicla...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the scripts or generate CSV data files 5. Focus on writing correct, com...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/scts_core.py", "reproduction/fig1_momentum_distribution.py", "reproduction/fig2_lowenergy_momentum.py", "reproduction/fig4_energy_spectrum.py", "reproduction/fig4_angular_distribution.py", "reproduction/fig6_sfa_mome...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/scts_core.py", "reproduction/fig1_momentum_distribution.py", "reproduction/fig2_lowenergy_momentum.py", "reproduction/fig4_energy_spectrum.py", "reproduction/fig4_angular_distribution.py", "reproduction/fig6_sfa_mome...
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 10800, "pip_install": [ "numpy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_vautherin_1972
Hartree-Fock Calculations with Skyrme's Interaction. I. Spherical Nuclei
D. Vautherin and D. M. Brink
1,972
10.1103/PhysRevC.5.626
null
[ "Vautherin1972Phys.Rev.C626.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement a Skyrme-Hartree-Fock (HF) code to reproduce ground-state properties of spherical nuclei. --- ## 1. Article Information | Field | Value | |-------|-------| | **Title** | Ha...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the Skyrme-HF computations or generate CSV data files 5. Focus on writi...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/constants.py", "reproduction/grid.py", "reproduction/orbitals.py", "reproduction/densities.py", "reproduction/meanfields.py", "reproduction/solver.py", "reproduction/scf.py", "reproduction/main.py" ], "da...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/constants.py", "reproduction/grid.py", "reproduction/orbitals.py", "reproduction/densities.py", "reproduction/meanfields.py", "reproduction/solver.py", "reproduction/scf.py", "reproduction/main.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "2g", "timeout": 10800, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_wang_2015
Quantum Computation under Micromotion in a Planar Ion Crystal
S.-T. Wang, C. Shen, L.-M. Duan
2,015
10.1038/srep08555
null
[ "MicroOf2DTrap.md" ]
[]
# Reproduction Instructions for AI Agent This document provides complete instructions for an AI agent to reproduce all figures from the referenced physics paper. **Note**: The paper contains figures as images. These image files are available at `/workspace/_paper_images/` (JPEG files like `_page_*.jpeg`). You can rea...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the scripts or generate CSV data files 5. Focus on writing correct, com...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/GateOfLinearTrap.py", "reproduction/Balance_place_of_ions.py", "reproduction/normal_frequancy.py", "reproduction/Raman_Segments.py" ], "data": [ "data/Balance_place_of_ions.csv", "data/normal_frequancy.csv", ...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/GateOfLinearTrap.py", "reproduction/Balance_place_of_ions.py", "reproduction/normal_frequancy.py", "reproduction/Raman_Segments.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 10800, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.15 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.55 }, { "name": "completeness", "weight": 0.15 } ]
task_white_1993
Density-matrix algorithms for quantum renormalization groups
Steven R. White
1,993
10.1103/PhysRevB.48.10345
null
[ "white1993.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement a DMRG simulation to reproduce 7 key figures. --- ## 1. Article Information | Field | Value | | -------...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the DMRG simulations or generate CSV data files 5. Focus on writing cor...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/operators.py", "reproduction/block.py", "reproduction/superblock.py", "reproduction/dmrg_infinite.py", "reproduction/dmrg_finite.py", "reproduction/fig2_compute.py", "reproduction/fig3_compute.py", "reproduct...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/operators.py", "reproduction/block.py", "reproduction/superblock.py", "reproduction/dmrg_infinite.py", "reproduction/dmrg_finite.py", "reproduction/fig2_compute.py", "reproduction/fig3_compute.py", "reproduct...
{ "image": "python:3.11-slim", "memory_limit": "8g", "timeout": 14400, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_wu_2013
Time-domain Perspective on Autler-Townes Splitting in Attosecond Transient Absorption
Mengxi Wu, Shaohao Chen, Mette B. Gaarde, Kenneth J. Schafer
2,013
10.1103/PhysRevA.88.043416
null
[ "wu2013.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand its methodology, select an appropriate numerical algorithm, write the code, and reproduce Figure 3 (a) through numerical simulation. --- ## 1. Article Information | Field | Value ...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduce/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduce/` 4. **DO NOT** run the scripts or generate CSV data files 5. Focus on writing correct, complete,...
{ "analysis": [ "reproduce/ANALYSIS.md" ], "code": [ "reproduce/simulate_fig3a.py", "reproduce/plot_fig3a.py" ], "data": [ "data/fig3a.csv" ] }
{ "analysis": [ "reproduce/ANALYSIS.md" ], "code": [ "reproduce/simulate_fig3a.py", "reproduce/plot_fig3a.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 10800, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.5 }, { "name": "completeness", "weight": 0.15 } ]
task_wu_2018
Noise analysis for high-fidelity quantum entangling gates in an anharmonic linear Paul trap
Yukai Wu, Sheng-Tao Wang, L.-M. Duan
2,018
10.1103/PhysRevA.97.062325
null
[ "GateOfLinearTrap.md" ]
[]
# Reproduction Instructions for AI Agent This document provides complete instructions for an AI agent to reproduce all figures from the referenced physics paper. **Note**: The paper contains figures as images. These image files are available at `/workspace/_paper_images/images1/` (JPEG files). You can read them using...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the scripts or generate CSV data files 5. Focus on writing correct, com...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/GateOfLinearTrap.py", "reproduction/Balance_place_of_ions.py", "reproduction/normal_frequancy.py", "reproduction/infidelity_of_mu.py", "reproduction/Raman_Segments.py" ], "data": [ "data/Balance_place_of_ions.csv...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/GateOfLinearTrap.py", "reproduction/Balance_place_of_ions.py", "reproduction/normal_frequancy.py", "reproduction/infidelity_of_mu.py", "reproduction/Raman_Segments.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 10800, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.15 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.55 }, { "name": "completeness", "weight": 0.15 } ]
task_wu_2021
High-fidelity entangling gates in a three-dimensional ion crystal under micromotion
Y.-K. Wu, Z.-D. Liu, W.-D. Zhao, L.-M. Duan
2,021
10.1103/PhysRevA.103.022419
null
[ "GateOf2D.md" ]
[]
# Reproduction Instructions for AI Agent This document provides complete instructions for an AI agent to reproduce all figures from the referenced physics paper. **Note**: The paper contains figures as images. These image files are available at `/workspace/_paper_images/` (JPEG files like `_page_*.jpeg`). You can rea...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the scripts or generate CSV data files 5. Focus on writing correct, com...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/GateOfLinearTrap.py", "reproduction/Balance_place_of_ions.py", "reproduction/normal_frequancy.py", "reproduction/infidelity_of_mu.py", "reproduction/Raman_Segments.py" ], "data": [ "data/Balance_place_of_ions.csv...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/GateOfLinearTrap.py", "reproduction/Balance_place_of_ions.py", "reproduction/normal_frequancy.py", "reproduction/infidelity_of_mu.py", "reproduction/Raman_Segments.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 10800, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.15 }, { "name": "code_correctness", "weight": 0.15 }, { "name": "data_accuracy", "weight": 0.55 }, { "name": "completeness", "weight": 0.15 } ]
task_xie_2025
Developing a linear fluid plasma model with accurate kinetic Bernstein waves: A first step
Huasheng Xie
2,025
10.1063/5.0274495
null
[ "Xie2025.md" ]
[]
# Paper Reproduction Task You are given a physics paper to reproduce. Your goal is to read the paper, understand the target outputs, and implement the linear fluid plasma calculations needed to reproduce the required Xie (2025) figures. --- ## 1. Article Information | Field | Value | |-------|-------| | **Title** |...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduce/ANALYSIS.md` 3. Implement all required code files under `reproduce/` 4. **DO NOT** run the scripts or generate CSV data files 5. Do not provide external implementation methodology inform...
{ "analysis": [ "reproduce/ANALYSIS.md" ], "code": [ "reproduce/params_loader.py", "reproduce/fluid_matrix.py", "reproduce/solver.py", "reproduce/plot_dispersion.py", "reproduce/fig3_compute.py", "reproduce/fig4_compute.py" ], "data": [ "data/fig3.csv", "data/fig3_scatter.c...
{ "analysis": [ "reproduce/ANALYSIS.md" ], "code": [ "reproduce/params_loader.py", "reproduce/fluid_matrix.py", "reproduce/solver.py", "reproduce/plot_dispersion.py", "reproduce/fig3_compute.py", "reproduce/fig4_compute.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "2g", "timeout": 3600, "pip_install": [ "numpy", "scipy", "matplotlib", "pandas" ] }
[ { "name": "instruction_following", "weight": 0.15 }, { "name": "code_correctness", "weight": 0.25 }, { "name": "data_accuracy", "weight": 0.45 }, { "name": "completeness", "weight": 0.15 } ]
task_xue_2023
Generalized Quantum Measurements on a Higher-Dimensional System via Quantum Walks
Peng Xue
2,023
10.1103/PhysRevLett.131.150803
null
[ "2023PRL.md" ]
[]
# Project: Physics Paper Figure Reproduction ## Role & Core Directives You are an **Expert Computational Physicist**. Your goal is to deeply understand a paper's theoretical framework and write rigorous, production-grade Python scientific computing code to reproduce 3 key figures. --- ## 1. Article Information | F...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the scripts or generate CSV data files
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/fig3_compute.py", "reproduction/fig4_compute.py", "reproduction/fig5_compute.py" ], "data": [ "data/fig3.csv", "data/fig4.csv", "data/fig5.csv" ] }
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/fig3_compute.py", "reproduction/fig4_compute.py", "reproduction/fig5_compute.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "4g", "timeout": 10800, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
[ { "name": "methodology_understanding", "weight": 0.2 }, { "name": "code_correctness", "weight": 0.2 }, { "name": "data_accuracy", "weight": 0.45 }, { "name": "completeness", "weight": 0.15 } ]
task_yee_1966
Numerical Solution of Initial Boundary Value Problems Involving Maxwell's Equations in Isotropic Media
Kane S. Yee
1,966
10.1109/TAP.1966.1138693
null
[ "yee1966.md" ]
[]
# Paper Reproduction Task You are given a computational electromagnetics paper to reproduce. Your goal is to read the paper, understand its methodology, and implement an FDTD simulation to reproduce key figures. --- ## 1. Article Information | Field | Value | |-------|-------| | **Title** | Numerical Solution of In...
## IMPORTANT: Code-Only Mode In this task you are in **code-only mode**. You must: 1. Read and analyze the paper 2. Write `reproduction/ANALYSIS.md` with your methodology analysis 3. Implement ALL code files under `reproduction/` 4. **DO NOT** run the scripts or generate CSV data files 5. Focus on writing correct, com...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/yee1966.py" ], "data": [ "data/fig3_a.csv", "data/fig3_b.csv", "data/fig3_c.csv", "data/fig3_d.csv", "data/fig4_a.csv", "data/fig4_b.csv", "data/fig4_c.csv", "data/fig4_d.csv", "data/fig4_e.csv", ...
{ "analysis": [ "reproduction/ANALYSIS.md" ], "code": [ "reproduction/yee1966.py" ] }
{ "image": "python:3.11-slim", "memory_limit": "2g", "timeout": 3600, "pip_install": [ "numpy", "scipy", "matplotlib" ] }
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