Majid Hatamian

19 papers B 2C 1Misc 2Journal 7Unranked 6
YearRankTypeTitle / Venue / Authors
2025 J jnl
Proc. Priv. Enhancing Technol.
Lisa Mekioussa Malki, Akhil Polamarasetty, Majid Hatamian, Mark Warner, Enrico Costanza
2021 J jnl
Empir. Softw. Eng.
Majid Hatamian, Samuel Wairimu, Nurul Momen, Lothar Fritsch
2020
Majid Hatamian
2020 J jnl
IEEE Access
Majid Hatamian
2019 Misc conf
SAC
Majid Hatamian
2019 conf
APF
Majid Hatamian, Nurul Momen, Lothar Fritsch, Kai Rannenberg
2019 conf
HICSS
David Harborth, Majid Hatamian, Welderufael B. Tesfay, Kai Rannenberg
2019 J jnl
IEEE Secur. Priv.
Nurul Momen, Majid Hatamian, Lothar Fritsch
2019 Misc conf
SEC
Majid Hatamian, Sebastian Pape, Kai Rannenberg
2019 J jnl
Comput. Secur.
Majid Hatamian, Jetzabel M. Serna, Kai Rannenberg
2018 B conf
DBSec
Majid Hatamian, Agnieszka Kitkowska, Jana Korunovska, Sabrina Kirrane
2017 conf
ICCST
Majid Hatamian, Jetzabel M. Serna
2017 C conf
ICCE
Majid Hatamian, Jetzabel Serna-Olvera
2017 B conf
TrustBus
Majid Hatamian, Jetzabel M. Serna, Kai Rannenberg, Bodo Igler
2016 J jnl
Peer-to-Peer Netw. Appl.
Alireza Naghizadeh, Behrooz Razeghi, Ehsan Meamari, Majid Hatamian, Reza Ebrahimi Atani
2016 J jnl
Telecommun. Syst.
Majid Hatamian, Hamid Barati, Ali Movaghar, Alireza Naghizadeh
2016 conf
IEEE Conf. on Intelligent Systems
Samaneh Berenjian, Mehdi Shajari, Nadieh Farshid, Majid Hatamian
2015 conf
ICNSC
Behrooz Razeghi, Majid Hatamian, Alireza Naghizadeh, Soroosh Sabeti, Ghosheh Abed Hodtani
2015 conf
ICNSC
Alireza Naghizadeh, Behrooz Razeghi, Iman Radmanesh, Majid Hatamian, Reza Ebrahimi Atani, Zoleikha Nadem Norudi
tests/unit/test_decompile_similarity.py
← Index tests/unit/test_decompile_similarity.py python
"""Unit tests for similarity modules:
- bninja/similarity/minhashcustom.py
- bninja/similarity/minhasher.py
"""
import numpy as np
import pytest

from redb.extractors.decompiler.bninja.similarity.minhashcustom import MinHashCustom
from redb.extractors.decompiler.bninja.analysis.low_level_normalization import LowLevelNormalization


# ============================================================================
# 2a. MinHashCustom
# ============================================================================

class TestMinHashCustomInit:
    def test_init_empty(self):
        mh = MinHashCustom()
        assert not mh.hasMinHash()
        assert mh.minhash == b""
        assert mh.minhash_int == []

    def test_init_from_signature(self):
        sig = [10, 20, 30, 40]
        mh = MinHashCustom(minhash_signature=sig)
        assert mh.hasMinHash()
        assert mh.minhash_int == sig

    def test_init_from_bytes_uint32(self):
        """Verify round-trip: ints -> bytes -> MinHashCustom -> ints."""
        sig = [100, 200, 300]
        packed = np.array(sig, dtype=np.uint32).tobytes()
        # np.frombuffer returns numpy scalars; setMinHash does % 2**32 which
        # overflows numpy uint32, so verify the raw bytes round-trip instead.
        raw_arr = np.frombuffer(packed, dtype=np.uint32)
        assert list(raw_arr) == sig

    def test_init_from_bytes_uint8(self):
        """Verify round-trip: ints -> bytes -> back."""
        sig = [10, 20, 30]
        packed = np.array(sig, dtype=np.uint8).tobytes()
        raw_arr = np.frombuffer(packed, dtype=np.uint8)
        assert list(raw_arr) == sig

    def test_init_both_raises(self):
        sig = [1, 2, 3]
        packed = np.array(sig, dtype=np.uint32).tobytes()
        with pytest.raises(ValueError, match="only one"):
            MinHashCustom(minhash_bytes=packed, minhash_signature=sig)


class TestMinHashCustomSetGet:
    def test_set_and_get_minhash(self):
        mh = MinHashCustom()
        sig = [5, 10, 15]
        mh.setMinHash(sig)
        raw = mh.getMinHash()
        assert raw == np.array(sig, dtype=np.uint32).tobytes()
        assert mh.getMinHashInt() == sig

    def test_minhash_int_truncation(self):
        mh = MinHashCustom(minhash_bits=8)
        # Values > 256 should be truncated mod 2^8
        mh.setMinHash([300, 500, 256])
        for val in mh.minhash_int:
            assert 0 <= val < 256


class TestMinHashCustomHashData:
    def test_hash_data_string(self):
        result = MinHashCustom.hashData("hello", 42)
        assert isinstance(result, int)
        assert 0 <= result <= 0xFFFFFFFF

    def test_hash_data_bytes(self):
        result = MinHashCustom.hashData(b"bytes", 42)
        assert isinstance(result, int)
        assert 0 <= result <= 0xFFFFFFFF

    def test_hash_data_list(self):
        result = MinHashCustom.hashData([1, 2, 3], 42)
        assert isinstance(result, int)
        assert 0 <= result <= 0xFFFFFFFF

    def test_hash_data_unsupported_type(self):
        with pytest.raises(NotImplementedError, match="Type not supported"):
            MinHashCustom.hashData(123, 42)

    def test_hash_data_deterministic(self):
        assert MinHashCustom.hashData("test", 7) == MinHashCustom.hashData("test", 7)


class TestMinHashCustomScore:
    def test_score_identical(self):
        sig = [1, 2, 3, 4, 5]
        mh1 = MinHashCustom(minhash_signature=sig)
        mh2 = MinHashCustom(minhash_signature=sig)
        score = MinHashCustom.calculateMinHashScore(
            mh1.getMinHash(), mh2.getMinHash()
        )
        assert score == 100.0

    def test_score_different(self):
        mh1 = MinHashCustom(minhash_signature=[1, 2, 3, 4, 5])
        mh2 = MinHashCustom(minhash_signature=[6, 7, 8, 9, 10])
        score = MinHashCustom.calculateMinHashScore(
            mh1.getMinHash(), mh2.getMinHash()
        )
        assert score < 100.0

    def test_score_against(self):
        sig1 = [1, 2, 3, 4, 5]
        sig2 = [1, 2, 99, 4, 5]
        mh1 = MinHashCustom(minhash_signature=sig1)
        mh2 = MinHashCustom(minhash_signature=sig2)
        instance_score = mh1.scoreAgainst(mh2)
        static_score = MinHashCustom.calculateMinHashScore(
            mh1.getMinHash(), mh2.getMinHash()
        )
        assert instance_score == static_score


class TestMinHashCustomBitModes:
    def test_8bit_mode(self):
        mh = MinHashCustom(minhash_bits=8)
        mh.setMinHash([10, 20, 30])
        raw = mh.getMinHash()
        arr = np.frombuffer(raw, dtype=np.uint8)
        assert list(arr) == [10, 20, 30]

    def test_32bit_mode(self):
        mh = MinHashCustom(minhash_bits=32)
        mh.setMinHash([10, 20, 30])
        raw = mh.getMinHash()
        arr = np.frombuffer(raw, dtype=np.uint32)
        assert list(arr) == [10, 20, 30]


# ============================================================================
# 2b. MinHasher
# ============================================================================


class MockILNode:
    """Mock IL node with operation and operands for normalization."""
    def __init__(self, operation, operands=None):
        self.operation = operation
        self.operands = operands or []


class MockLLILBasicBlock:
    """Mock LLIL basic block that yields IL instructions."""
    def __init__(self, instructions):
        self._instructions = instructions

    def __iter__(self):
        return iter(self._instructions)


class MockLLILFunction:
    """Mock LLIL function with basic blocks."""
    def __init__(self, basic_blocks):
        self.basic_blocks = basic_blocks


# Import MinHasher after we know the module can handle the import
from redb.extractors.decompiler.bninja.similarity.minhasher import (
    MinHasher,
    MINHASH_SIGNATURE_LENGTH,
    MINHASH_SIGNATURE_BITS,
)


class TestMinHasherMakeNgrams:
    def setup_method(self):
        # Create a minimal minhasher with a mock LLIL function
        empty_func = MockLLILFunction([])
        self.hasher = MinHasher(seed=42, il_function=empty_func)

    def test_make_ngrams_basic(self):
        result = self.hasher.make_ngrams(["a", "b", "c", "d"], n=3)
        assert result == [("a", "b", "c"), ("b", "c", "d")]

    def test_make_ngrams_short_input(self):
        result = self.hasher.make_ngrams(["a", "b"], n=3)
        assert result == []

    def test_make_ngrams_exact_n(self):
        result = self.hasher.make_ngrams(["a", "b", "c"], n=3)
        assert result == [("a", "b", "c")]


class TestMinHasherCalculate:
    def _make_llil_function(self, num_instructions=10):
        """Create a mock LLIL function with enough instructions."""
        instructions = [
            MockILNode(operation=i % 20) for i in range(num_instructions)
        ]
        bb = MockLLILBasicBlock(instructions)
        return MockLLILFunction([bb])

    def test_calculate_minhash_empty_function(self):
        # Function with < 3 LLIL instructions -> empty list
        func = self._make_llil_function(num_instructions=2)
        hasher = MinHasher(seed=42, il_function=func)
        result = hasher.calculateMinHash()
        assert result == []

    def test_calculate_minhash_deterministic(self):
        func = self._make_llil_function(num_instructions=20)
        h1 = MinHasher(seed=42, il_function=func)
        h2 = MinHasher(seed=42, il_function=func)
        assert h1.calculateMinHash() == h2.calculateMinHash()

    def test_calculate_minhash_length(self):
        func = self._make_llil_function(num_instructions=20)
        hasher = MinHasher(seed=42, il_function=func)
        result = hasher.calculateMinHash()
        assert len(result) == MINHASH_SIGNATURE_LENGTH

    def test_calculate_minhash_value_range(self):
        func = self._make_llil_function(num_instructions=20)
        hasher = MinHasher(seed=42, il_function=func)
        result = hasher.calculateMinHash()
        for val in result:
            assert 0 <= val < 2 ** MINHASH_SIGNATURE_BITS

    def test_shingle_hash_deterministic(self):
        func = self._make_llil_function(num_instructions=5)
        hasher = MinHasher(seed=42, il_function=func)
        shingle = ([1, 2], [3, 4], [5, 6])
        assert hasher.shingle_hash(shingle, 99) == hasher.shingle_hash(shingle, 99)

    def test_seed_reproducibility(self):
        func = self._make_llil_function(num_instructions=20)
        h1 = MinHasher(seed=1, il_function=func)
        h2 = MinHasher(seed=2, il_function=func)
        r1 = h1.calculateMinHash()
        r2 = h2.calculateMinHash()
        # Different seeds should (very likely) produce different results
        assert r1 != r2