Ran Zhou

16 papers A* 3A 2B 3Journal 3Unranked 5
YearRankTypeTitle / Venue / Authors
2026 A* conf
CHI
Alice C. Haynes, Laia Turmo Vidal, Andreas Lindegren, Ran Zhou, Alejandra Gómez Ortega, Joo Young Park, Anna Brynskov, Hannah Johnson, Kristina Höök
2026 B conf
TEI
Andreas Lindegren, Ran Zhou, Mafalda Gamboa, Katerina Koleva, Ylva Fernaeus
2025 conf
CHI Extended Abstracts
Ran Zhou, Jianru Ding, Chenfeng Gao, Wanli Qian, Benjamin Erickson, Madeline Balaam, Daniel Leithinger, Ken Nakagaki
2025 A* conf
CHI
Ran Zhou, Jianru Ding, Chenfeng Gao, Wanli Qian, Benjamin Erickson, Madeline Balaam, Daniel Leithinger, Ken Nakagaki
2025 J jnl
CoRR
Ran Zhou, Jianru Ding, Chenfeng Gao, Wanli Qian, Benjamin Erickson, Madeline Balaam, Daniel Leithinger, Ken Nakagaki
2024 conf
UIST (Adjunct Volume)
Pragathi Praveena, Arissa J. Sato, Amy Koike, Ran Zhou, Nathan Thomas White, Ken Nakagaki
2024 B conf
TEI
Yuzhen (Adam) Zhang, Ruixiang (Albert) Han, Ran Zhou, Peter Gyory, Clement Zheng, Patrick C. Shih, Ellen Yi-Luen Do, Malte F. Jung, Wendy Ju, Daniel Leithinger
2023 J jnl
IEEE Trans. Vis. Comput. Graph.
S. Sandra Bae, Rishi Vanukuru, Ruhan Yang, Peter Gyory, Ran Zhou, Ellen Yi-Luen Do, Danielle Albers Szafir
2023 conf
CHI Extended Abstracts
Ran Zhou, Zachary Schwemler, Akshay Baweja, Harpreet Sareen, Casey Lee Hunt, Daniel Leithinger
2023 conf
UIST (Adjunct Volume)
Daniel Leithinger, Ran Zhou, Eric Acome, Ahad Mujtaba Rauf, Teng Han, Craig D. Shultz, Joe Mullenbach
2023 A* conf
CHI
Ran Zhou, Zachary Schwemler, Akshay Baweja, Harpreet Sareen, Casey Lee Hunt, Daniel Leithinger
2022 J jnl
CoRR
S. Sandra Bae, Rishi Vanukuru, Ruhan Yang, Peter Gyory, Ran Zhou, Ellen Yi-Luen Do, Danielle Albers Szafir
2022 A conf
Conference on Designing Interactive Systems
Ran Zhou, Harpreet Sareen, Yufei Zhang, Daniel Leithinger
2020 A conf
Conference on Designing Interactive Systems (Companion Volume)
Ran Zhou, Harpreet Sareen
2020 conf
SIGGRAPH ASIA Emerging Technologies
Ran Zhou, Yanzhe Wu, Harpreet Sareen
2020 B conf
VRST
Ran Zhou, Yanzhe Wu, Harpreet Sareen
tests/unit/test_decompile_decompiler.py
← Index tests/unit/test_decompile_decompiler.py python
"""Unit tests (mocked BN) for bninja/decompiler.py — BinaryNinjaDecompiler."""
import sys
import json
import time
import pytest
from unittest.mock import MagicMock, patch, mock_open

from tests.unit.conftest_binja_stubs import (
    install_binja_stubs,
    MockFunction,
    MockBasicBlock,
    MockDisassemblyLine,
    MockToken,
    MockSymbol,
    MockBinaryView,
    MockEdge,
    SymbolType,
    InstructionTextTokenType,
    BranchType,
)

install_binja_stubs()

from redb.extractors.decompiler.bninja.decompiler import (
    BinaryNinjaDecompiler,
    is_lib_or_thunk,
)
from redb.extractors.decompiler.bninja.function_type import FunctionType


# ============================================================================
# 10a. BinaryNinjaDecompiler
# ============================================================================


class TestBinaryNinjaDecompilerLogError:
    def _make_decompiler(self):
        with patch.object(BinaryNinjaDecompiler, "__init__", lambda self, *a, **kw: None):
            d = BinaryNinjaDecompiler.__new__(BinaryNinjaDecompiler)
            d.log = MagicMock()
            d.errors = []
            d.filepath = "/fake/binary"
            d.bv = None
            d.analysis_results = None
            d.exporters = []
            d.index_prefix = None
            d.filetype = None
            d.goresym = None
            d.BNINJA_TIMEOUT = 60
            return d

    def test_log_error_appends(self):
        d = self._make_decompiler()
        d.log_error("test error", "func1", 0x1000, Exception("boom"), "extract")
        assert len(d.errors) == 1

    def test_log_error_schema(self):
        d = self._make_decompiler()
        d.log_error("test error", "func1", 0x1000, Exception("boom"), "extract")
        error = d.errors[0]
        expected_keys = [
            "function_name",
            "function_address",
            "error_location",
            "error_message",
            "error_details",
            "error_type",
            "timestamp",
        ]
        for key in expected_keys:
            assert key in error, f"Missing key: {key}"


class TestBinaryNinjaDecompilerIsTooFewBlocks:
    def _make_decompiler(self):
        with patch.object(BinaryNinjaDecompiler, "__init__", lambda self, *a, **kw: None):
            d = BinaryNinjaDecompiler.__new__(BinaryNinjaDecompiler)
            d.log = MagicMock()
            d.errors = []
            d.MIN_FUNCTION_SIZE = 10
            return d

    def test_is_too_few_blocks_none(self):
        d = self._make_decompiler()
        func = MagicMock()
        func.basic_blocks = None
        assert d.is_too_few_blocks(func) is False

    def test_is_too_few_blocks_empty(self):
        # Empty basic_blocks now returns True because Binja creates function
        # stubs with empty blocks before analysis completes — we no longer
        # skip these so they get filtered downstream instead.
        d = self._make_decompiler()
        func = MagicMock()
        func.basic_blocks = []
        assert d.is_too_few_blocks(func) is True

    def test_is_too_few_blocks_small_single(self):
        d = self._make_decompiler()
        block = MagicMock()
        block.disassembly_text = [MagicMock() for _ in range(5)]  # < 10
        func = MagicMock()
        func.basic_blocks = [block]
        assert d.is_too_few_blocks(func) is False

    def test_is_too_few_blocks_large_single(self):
        d = self._make_decompiler()
        block = MagicMock()
        block.disassembly_text = [MagicMock() for _ in range(15)]  # >= 10
        func = MagicMock()
        func.basic_blocks = [block]
        assert d.is_too_few_blocks(func) is True

    def test_is_too_few_blocks_multiple(self):
        d = self._make_decompiler()
        func = MagicMock()
        func.basic_blocks = [MagicMock(), MagicMock()]
        assert d.is_too_few_blocks(func) is True


class TestIsLibOrThunk:
    def test_is_lib_or_thunk_user(self):
        func = MagicMock()
        func.symbol.type = SymbolType.FunctionSymbol
        func.is_thunk = False
        assert is_lib_or_thunk(func) is True  # NOT filtered

    def test_is_lib_or_thunk_thunk(self):
        func = MagicMock()
        func.symbol.type = SymbolType.FunctionSymbol
        func.is_thunk = True
        assert is_lib_or_thunk(func) is False  # Filtered out

    def test_is_lib_or_thunk_external(self):
        func = MagicMock()
        func.symbol.type = SymbolType.ImportedFunctionSymbol
        func.is_thunk = False
        assert is_lib_or_thunk(func) is False  # Filtered out


class TestBinaryNinjaDecompilerExtract:
    def _make_decompiler(self):
        with patch.object(BinaryNinjaDecompiler, "__init__", lambda self, *a, **kw: None):
            d = BinaryNinjaDecompiler.__new__(BinaryNinjaDecompiler)
            d.log = MagicMock()
            d.errors = []
            d.filepath = "/fake/binary"
            d.bv = MagicMock()
            d.analysis_results = None
            d.exporters = []
            d.index_prefix = None
            d.filetype = None
            d.goresym = None
            d.BNINJA_TIMEOUT = 60
            d.arch = MagicMock()
            return d

    def test_extract_success(self):
        d = self._make_decompiler()
        mock_results = {
            "decompiled": [{"test": True}],
            "disassembled": [],
            "cfg": [],
            "llil": [],
            "errors": [],
            "strings": [],
            "mlil": [],
        }
        with patch.object(d, "analyze_binary", return_value=mock_results):
            result = d.extract()
            assert result is True
            assert d.analysis_results == mock_results

    def test_extract_failure(self):
        d = self._make_decompiler()
        with patch.object(d, "analyze_binary", return_value=None):
            result = d.extract()
            assert result is False

    def test_tag(self):
        d = self._make_decompiler()
        assert d.tag() == "DECOMPILED"


class TestBinaryNinjaDecompilerAnalyzeBinary:
    def _make_decompiler(self):
        with patch.object(BinaryNinjaDecompiler, "__init__", lambda self, *a, **kw: None):
            d = BinaryNinjaDecompiler.__new__(BinaryNinjaDecompiler)
            d.log = MagicMock()
            d.errors = []
            d.filepath = "/fake/binary"
            d.analysis_results = None
            d.exporters = []
            d.index_prefix = None
            d.filetype = None
            d.goresym = None
            d.BNINJA_TIMEOUT = 60
            d.arch = MagicMock()
            d.MIN_FUNCTION_SIZE = 10
            return d

    def test_analyze_binary_links_hlil_disasm(self):
        """Bi-directional hash linkage between decompiled and disassembled."""
        d = self._make_decompiler()
        d.bv = MagicMock()
        d.bv.functions = []
        # Mock methods to return controlled data
        with patch.object(d, "extract_hlil") as mock_hlil, \
             patch.object(d, "extract_disasm") as mock_disasm, \
             patch.object(d, "extract_cfg", return_value=None), \
             patch.object(d, "extract_lowlevel", return_value=None):

            mock_hlil.return_value = {
                "decompiled_function_hash": "HLIL_HASH",
                "decompiled_function_name": "test",
                "decompiled_function": "code",
            }
            mock_disasm.return_value = {
                "disassembled_function_hash": "DISASM_HASH",
                "disassembled_function_no_addresses": "asm",
            }

            # Manually feed one function
            mock_func = MagicMock()
            mock_func.symbol.type = SymbolType.FunctionSymbol
            mock_func.is_thunk = False
            mock_func.basic_blocks = [MagicMock(), MagicMock()]
            d.bv.functions = [mock_func]

            results = d.analyze_binary()
            if results and results["decompiled"]:
                hlil_r = results["decompiled"][0]
                disasm_r = results["disassembled"][0]
                assert hlil_r["disassembled_function_hash"] == "DISASM_HASH"
                assert disasm_r["decompiled_function_hash"] == "HLIL_HASH"

    def test_analyze_binary_links_llil_disasm(self):
        """Bi-directional linkage between LLIL and disassembly."""
        d = self._make_decompiler()
        d.bv = MagicMock()

        with patch.object(d, "extract_hlil", return_value=None), \
             patch.object(d, "extract_disasm") as mock_disasm, \
             patch.object(d, "extract_cfg", return_value=None), \
             patch.object(d, "extract_lowlevel") as mock_llil:

            mock_disasm.return_value = {
                "disassembled_function_hash": "DISASM_HASH",
                "disassembled_function_no_addresses": "asm",
            }
            mock_llil.return_value = {
                "sha256_llil": "LLIL_HASH",
                "tlsh_llil": "tlsh_val",
            }

            mock_func = MagicMock()
            mock_func.symbol.type = SymbolType.FunctionSymbol
            mock_func.is_thunk = False
            mock_func.basic_blocks = [MagicMock(), MagicMock()]
            d.bv.functions = [mock_func]

            results = d.analyze_binary()
            if results and results["llil"]:
                llil_r = results["llil"][0]
                assert llil_r["disassembled_function_hash"] == "DISASM_HASH"

    def test_analyze_binary_links_cfg_disasm(self):
        """CFG gets disassembled_function_hash."""
        d = self._make_decompiler()
        d.bv = MagicMock()

        with patch.object(d, "extract_hlil", return_value=None), \
             patch.object(d, "extract_disasm") as mock_disasm, \
             patch.object(d, "extract_cfg") as mock_cfg, \
             patch.object(d, "extract_lowlevel", return_value=None):

            mock_disasm.return_value = {
                "disassembled_function_hash": "DISASM_HASH",
                "disassembled_function_no_addresses": "asm",
            }
            mock_cfg.return_value = {
                "function_address": 0x1000,
                "cyclomatic_complexity": 3,
            }

            mock_func = MagicMock()
            mock_func.symbol.type = SymbolType.FunctionSymbol
            mock_func.is_thunk = False
            mock_func.basic_blocks = [MagicMock(), MagicMock()]
            d.bv.functions = [mock_func]

            results = d.analyze_binary()
            if results and results["cfg"]:
                cfg_r = results["cfg"][0]
                assert cfg_r["disassembled_function_hash"] == "DISASM_HASH"

    def test_analyze_binary_sets_cyclomatic(self):
        """cyclomatic_complexity set on disasm from CFG."""
        d = self._make_decompiler()
        d.bv = MagicMock()

        with patch.object(d, "extract_hlil", return_value=None), \
             patch.object(d, "extract_disasm") as mock_disasm, \
             patch.object(d, "extract_cfg") as mock_cfg, \
             patch.object(d, "extract_lowlevel", return_value=None):

            mock_disasm.return_value = {
                "disassembled_function_hash": "HASH",
                "disassembled_function_no_addresses": "asm",
            }
            mock_cfg.return_value = {
                "function_address": 0x1000,
                "cyclomatic_complexity": 7,
            }

            mock_func = MagicMock()
            mock_func.symbol.type = SymbolType.FunctionSymbol
            mock_func.is_thunk = False
            mock_func.basic_blocks = [MagicMock(), MagicMock()]
            d.bv.functions = [mock_func]

            results = d.analyze_binary()
            if results and results["disassembled"]:
                disasm_r = results["disassembled"][0]
                assert disasm_r.get("cyclomatic_complexity") == 7


class TestApplyGoReSym:
    def _make_decompiler(self):
        with patch.object(BinaryNinjaDecompiler, "__init__", lambda self, *a, **kw: None):
            d = BinaryNinjaDecompiler.__new__(BinaryNinjaDecompiler)
            d.log = MagicMock()
            d.errors = []
            d.bv = MagicMock()
            return d

    def test_apply_goresym_user_functions(self):
        d = self._make_decompiler()
        d.goresym = "/tmp/goresym.json"
        data = {
            "UserFunctions": [{"Start": 0x1000, "FullName": "main.main"}],
        }
        with patch("builtins.open", mock_open(read_data=json.dumps(data))):
            d._BinaryNinjaDecompiler__apply_goresym()
            d.bv.define_user_symbol.assert_called()

    def test_apply_goresym_std_functions(self):
        d = self._make_decompiler()
        d.goresym = "/tmp/goresym.json"
        data = {
            "StdFunctions": [{"Start": 0x2000, "FullName": "runtime.main"}],
        }
        with patch("builtins.open", mock_open(read_data=json.dumps(data))):
            d._BinaryNinjaDecompiler__apply_goresym()
            d.bv.define_user_symbol.assert_called()

    def test_apply_goresym_invalid_json(self):
        d = self._make_decompiler()
        d.goresym = "/tmp/goresym.json"
        with patch("builtins.open", mock_open(read_data="not json {")):
            d._BinaryNinjaDecompiler__apply_goresym()
            # Should log error but not crash
            d.log.log_error if hasattr(d.log, 'log_error') else None
            # Just verify no exception raised