Ibrahim Ghafir

41 papers Misc 1Journal 17Unranked 22
YearRankTypeTitle / Venue / Authors
2025 conf
SSD
Zahra J. Muhsin, Rami Qahwaji, Ibrahim Ghafir, Muawyah Al Bdour, Saif AlRyalat, Mo'ath AlShawabkeh, Majid A. Al-Taee
2025 J jnl
J. Netw. Comput. Appl.
Moemedi Lefoane, Ibrahim Ghafir, Sohag Kabir, Irfan-Ullah Awan
2025 conf
SSD
Zahra J. Muhsin, Rami Qahwaji, Ibrahim Ghafir, Muawyah Al Bdour, Saif AlRyalat, Mo'ath AlShawabkeh, Majid A. Al-Taee
2025 J jnl
IEEE Access
Moemedi Lefoane, Ibrahim Ghafir, Sohag Kabir, Irfan-Ullah Awan, Khalil M. El Hindi, Anand Mahendran
2025 J jnl
IEEE Open J. Comput. Soc.
Alhassan Abdulhamid, Sohag Kabir, Ibrahim Ghafir, Ci Lei, Khalil M. El Hindi, Mohammad Hammoudeh
2025 J jnl
Int. J. Syst. Assur. Eng. Manag.
Alhassan Abdulhamid, Sohag Kabir, Ibrahim Ghafir, Ci Lei
2025 J jnl
Comput. Biol. Medicine
Zahra J. Muhsin, Rami Qahwaji, Ibrahim Ghafir, Mo'ath AlShawabkeh, Muawyah Al Bdour, Saif AlRyalat, Majid A. Al-Taee
2024 J jnl
Evol. Intell.
Bhasker Bapuram, Murali Subramanian, Anand Mahendran, Ibrahim Ghafir, Vijayan Ellappan, Mohammed Hamada
2024 J jnl
IEEE Open J. Commun. Soc.
Moemedi Lefoane, Ibrahim Ghafir, Sohag Kabir, Irfan-Ullah Awan, Khalil M. El Hindi, Anand Mahendran
2024 conf
ACIT
Moemedi Lefoane, Ibrahim Ghafir, Sohag Kabir, Irfan-Ullah Awan
2024 conf
ACIT
Alhassan Abdulhamid, Sohag Kabir, Ibrahim Ghafir, Ci Lei
2024 conf
ACIT
Moemedi Lefoane, Ibrahim Ghafir, Sohag Kabir, Irfan-Ullah Awan
2024 conf
ICT
Zahra J. Muhsin, Rami Qahwaji, Ibrahim Ghafir, Muawyah Al Bdour, Saif AlRyalat, Mo'ath AlShawabkeh, Majid A. Al-Taee
2023 conf
ACIT
Moemedi Lefoane, Ibrahim Ghafir, Sohag Kabir, Irfan-Ullah Awan
2023 conf
ICFNDS
Ayorinde Henry Omopintemi, Ibrahim Ghafir, Shadi Eltanani, Sohag Kabir, Moemedi Lefoane
2023 conf
ICFNDS
Moemedi Lefoane, Ibrahim Ghafir, Sohag Kabir, Irfan-Ullah Awan
2023 J jnl
IEEE Trans. Ind. Informatics
Moemedi Lefoane, Ibrahim Ghafir, Sohag Kabir, Irfan-Ullah Awan
2022 conf
SmartNets
Moemedi Lefoane, Ibrahim Ghafir, Sohag Kabir, Irfan-Ullah Awan
2021 conf
INFOCOM Workshops
Shadi Eltanani, Ibrahim Ghafir
2021 J jnl
Int. J. Netw. Manag.
Diab M. Diab, Basil AsSadhan, Hamad Binsalleeh, Sangarapillai Lambotharan, Konstantinos G. Kyriakopoulos, Ibrahim Ghafir
2021 conf
ICFNDS
Moemedi Lefoane, Ibrahim Ghafir, Sohag Kabir, Irfan-Ullah Awan
2020 conf
IIT
Shadi Eltanani, Ibrahim Ghafir
2019 Misc conf
ICIN
Francisco J. Aparicio-Navarro, Timothy A. Chadza, Konstantinos G. Kyriakopoulos, Ibrahim Ghafir, Sangarapillai Lambotharan, Basil AsSadhan
2019 conf
CSE/EUC
Diab M. Diab, Basil AsSadhan, Hamad Binsalleeh, Sangarapillai Lambotharan, Konstantinos G. Kyriakopoulos, Ibrahim Ghafir
2019 conf
WCSP
Yuan Zhang, Qinghai Yang, Sangarapillai Lambotharan, Konstantinos G. Kyriakopoulos, Ibrahim Ghafir, Basil AsSadhan
2019 conf
ICFNDS
Mohammad Hammoudeh, Ibrahim Ghafir, Ahcène Bounceur, Thomas Rawlinson
2019 J jnl
IEEE Access
Ibrahim Ghafir, Konstantinos G. Kyriakopoulos, Sangarapillai Lambotharan, Francisco J. Aparicio-Navarro, Basil AsSadhan, Hamad Binsalleeh, Diab M. Diab
2019 J jnl
Sensors
Noshina Tariq, Muhammad Asim, Feras N. Al-Obeidat, Muhammad Zubair Farooqi, Thar Baker, Mohammad Hammoudeh, Ibrahim Ghafir
2018 J jnl
IEEE Access
Ibrahim Ghafir, Konstantinos G. Kyriakopoulos, Francisco J. Aparicio-Navarro, Sangarapillai Lambotharan, Basil AsSadhan, Hamad Binsalleeh
2018 J jnl
IEEE Access
Ibrahim Ghafir, Vaclav Prenosil, Mohammad Hammoudeh, Thar Baker, Sohail Jabbar, Shehzad Khalid, Sardar F. Jaf
2018 J jnl
PeerJ Prepr.
Ibrahim Ghafir, Mohammad Hammoudeh, Vaclav Prenosil
2018 J jnl
Future Gener. Comput. Syst.
Ibrahim Ghafir, Mohammad Hammoudeh, Vaclav Prenosil, Liangxiu Han, Robert Hegarty, Khaled M. Rabie, Francisco J. Aparicio-Navarro
2018 conf
ICFNDS
Ibrahim Ghafir, Vaclav Prenosil, Mohammad Hammoudeh, Francisco J. Aparicio-Navarro, Khaled M. Rabie, Ahmad Jabban
2018 conf
MILCOM
Francisco J. Aparicio-Navarro, Konstantinos G. Kyriakopoulos, Ibrahim Ghafir, Sangarapillai Lambotharan, Jonathon A. Chambers
2018 J jnl
J. Supercomput.
Ibrahim Ghafir, Jibran Saleem, Mohammad Hammoudeh, Hanan Faour, Vaclav Prenosil, Sardar F. Jaf, Sohail Jabbar, Thar Baker
2017
Ibrahim Ghafir
2017 conf
ICFNDS
Umar Raza, James Lomax, Ibrahim Ghafir, Rupak Kharel, Ben Whiteside
2017 J jnl
PeerJ Prepr.
Ibrahim Ghafir, Mohammad Hammoudeh, Vaclav Prenosil
2017 conf
ICFNDS
Ibrahim Ghafir, Vaclav Prenosil, Mohammad Hammoudeh, Liangxiu Han, Umar Raza
2016 conf
FiCloud Workshops
Ibrahim Ghafir, Vaclav Prenosil, Jakub Svoboda, Mohammad Hammoudeh
2016 conf
FiCloud
Ibrahim Ghafir, Vaclav Prenosil, Ahmad Alhejailan, Mohammad Hammoudeh
redb/extractors/decompiler/bninja/analysis/cfg-old.py
← Index redb/extractors/decompiler/bninja/analysis/cfg-old.py python
from collections import deque
from enum import Enum

from binaryninja.enums import (
    BranchType,
    InstructionTextTokenType,
)

# Support both package and standalone imports
try:
    from ..utils.hashes import calculate_md5, calculate_sha256
except ImportError:
    # Fallback to absolute imports (for multiprocessing spawned processes)
    from redb.extractors.decompiler.bninja.utils.hashes import calculate_md5, calculate_sha256


class CFGAnalysis:
    def __init__(self, function):
        self.function = function

    def determine_block_type(self, block) -> str:
        """Determine the type of a basic block."""
        # Check if it's a thunk function (usually just a jump or call)
        if len(block.disassembly_text) <= 2 and any(
            "jmp" in line.tokens[0].text.lower() for line in block.disassembly_text
        ):
            return "THUNK"

        # Check if it contains only data (no valid instructions)
        if all(not line.tokens for line in block.disassembly_text):
            return "DATA"

        # Default to code
        return "CODE"

    def extract_cyclomatic_complexity(self):
        """
        Cyclomatic complexity (McCabe’s metric) measures the number of linearly independent paths
        through a function’s control flow graph (CFG).
        The standard formula is:

            M = E - N + 2

        where:
            - E = number of edges in the CFG
            - N = number of nodes (basic blocks)
            - 2 accounts for the entry and exit nodes of a single connected graph
        """
        if self.function is None:
            return 0

        # number of basic blocks
        num_blocks = len(self.function.basic_blocks)
        # number of edges in the graph
        num_edges = sum(
            len(basic_block.outgoing_edges)
            for basic_block in self.function.basic_blocks
        )
        return num_edges - num_blocks + 2

    def extract_function_cfg(self):
        """Extract information about a function CFG and return it as a dictionary."""

        function = self.function
        function_data = {
            "function_address": self.function.start,
            "blocks": [],
            "measures": {
                "cyclomatic_complexity": self.extract_cyclomatic_complexity(),
            },
        }

        if self.function is None:
            return function_data

        # Get the map of the depth associated to every block
        depths = self.get_map_depth()

        # Get the map of the positions associated to every block
        id_maps = self.get_block_id_map()

        # Extract block data with graph structure information
        for block in function.basic_blocks:
            # dominators per every block translated
            dominators = sorted(self.extract_dominators(block, id_maps))

            # post dominators
            post_dominators = sorted(self.extract_post_dominators(block, id_maps))

            # Build block instructions string
            block_instructions = "\n".join(str(line) for line in block.disassembly_text)

            # Determine block type
            block_type = self.determine_block_type(block)

            # Extract successors directly from basic block
            successor_blocks = [edge.target.start for edge in block.outgoing_edges]
            # We ensure a canonical order and we sort the edges
            successor_blocks.sort()

            # Extract predecessors directly from basic block
            predecessor_blocks = [edge.source.start for edge in block.incoming_edges]
            # We ensure a canonical order and we sort the edges
            predecessor_blocks.sort()

            # Determine branch type from outgoing edges
            branch_type = self.determine_branch_type(block)

            instructions_count = len(block.disassembly_text)

            # Create block record
            block_json = {
                "function_address": self.function.start,
                "block_start_address": block.start,
                "block_end_address": block.end,
                "block_size": block.end - block.start,
                "instructions_count": instructions_count,
                "block_instructions_hash": calculate_sha256(block_instructions),
                "predecessor_blocks": predecessor_blocks,
                "successor_blocks": successor_blocks,
                "depth": depths[block.start],
                "position": id_maps[block.start],
                "branch_type": branch_type,
                "block_type": block_type,
                "flags": self.extract_block_flags(block),
                "dominators": dominators,
                "post_dominators": post_dominators,
            }
            function_data["blocks"].append(block_json)

        return function_data

    def extract_dominators(self, bb, id_maps):
        """Extract the dominators normalized"""
        dom_idx = [id_maps[d.start] for d in bb.dominators]
        return dom_idx

    def extract_post_dominators(self, bb, id_maps):
        """Extract the post-dominators normalized"""
        post_dom_idx = [id_maps[d.start] for d in bb.post_dominators]
        return post_dom_idx

    def determine_branch_type(self, block):
        """
        Determine the type of branch at the end of a basic block.
        This combines edge type information with instruction analysis.
        """
        # If no outgoing edges, it might be a return or terminal block
        if not block.outgoing_edges:
            # Check if the last instruction is a return
            for line in reversed(list(block.disassembly_text)):
                if line.tokens and any(
                    token.text.lower() in ["ret", "retn"] for token in line.tokens
                ):
                    return "RETURN"
            return "UNKNOWN"

        # Collect branch types from all outgoing edges
        branch_types = []
        for edge in block.outgoing_edges:
            edge_type = edge.type
            # Map edge type to our branch type enum
            if isinstance(edge_type, str):
                if edge_type == "IndirectCall":
                    branch_types.append("CALL")
                else:
                    branch_types.append("UNKNOWN")
            else:
                # Use our mapping for integer/enum values
                type_mapping = {
                    BranchType.UnconditionalBranch: "DIRECT",
                    BranchType.FalseBranch: "CONDITIONAL",
                    BranchType.TrueBranch: "CONDITIONAL",
                    BranchType.CallDestination: "CALL",
                    BranchType.FunctionReturn: "RETURN",
                    BranchType.SystemCall: "CALL",
                    BranchType.IndirectBranch: "INDIRECT",
                    BranchType.ExceptionBranch: "UNKNOWN",
                    BranchType.UnresolvedBranch: "UNKNOWN",
                    BranchType.UserDefinedBranch: "UNKNOWN",
                }
                branch_types.append(type_mapping.get(edge_type, "UNKNOWN"))

        # Determine overall branch type (prioritize CALL > RETURN > CONDITIONAL > DIRECT)
        if "CALL" in branch_types:
            return "CALL"
        elif "RETURN" in branch_types:
            return "RETURN"
        elif "CONDITIONAL" in branch_types:
            return "CONDITIONAL"
        elif "DIRECT" in branch_types:
            return "DIRECT"
        elif len(block.outgoing_edges) == 1:
            return "FALLTHROUGH"

        # If edge analysis was inconclusive, fall back to instruction analysis
        last_instr = None
        for line in reversed(list(block.disassembly_text)):
            if line.tokens:
                last_instr = line
                break

        if last_instr:
            mnemonic = None
            for token in last_instr.tokens:
                if token.type == InstructionTextTokenType.InstructionToken:
                    mnemonic = token.text.lower()
                    break

            if mnemonic:
                if mnemonic == "call":
                    return "CALL"
                elif mnemonic == "jmp":
                    return "DIRECT"
                elif mnemonic.startswith("j") and mnemonic != "jmp":
                    return "CONDITIONAL"
                elif mnemonic in ["ret", "retn"]:
                    return "RETURN"

        return "UNKNOWN"

    def get_map_depth(self):
        """
        Run a BFS on the basic blocks of the function to assign a depth to every block
        """

        depths = {}
        entry = self.function.get_basic_block_at(self.function.start)

        ### Simple BFS
        q = deque()
        q.append(entry)
        depths[entry.start] = 0

        while q:
            b = q.popleft()
            b_depth = depths[b.start]
            for edge in b.outgoing_edges:
                tgt = edge.target

                if tgt is None:
                    continue

                if tgt.start not in depths:
                    depths[tgt.start] = b_depth + 1
                    q.append(tgt)

        return depths

    def get_block_id_map(self):
        """
        Assign a unique, sequential ID to each basic block of the function using a BFS starting from the entry block.
        """

        id_map = {}
        entry = self.function.get_basic_block_at(self.function.start)

        q = deque()
        q.append(entry)

        current_id = 0
        id_map[entry.start] = current_id

        while q:
            b = q.popleft()
            for edge in b.outgoing_edges:
                tgt = edge.target

                if tgt is None:
                    continue

                if tgt.start not in id_map:
                    current_id += 1
                    id_map[tgt.start] = current_id
                    q.append(tgt)

        return id_map

    def extract_block_flags(self, block):
        """
        Get the flags for every basic block. Currently, we implemented these heuristics:
            - if a basic block is the entry node for a function
            - if a basic block is the exit block for a function
            - if a basic block is part of a natural loop
        """
        flags = []

        if block.start == self.function.start:
            flags.append(BlockFlags.EntryBlock.value)

        if any(edge.type == BranchType.FunctionReturn for edge in block.outgoing_edges):
            flags.append(BlockFlags.ExitBlock.value)

        # if this block is in its dominance frontier, then it's part of a natural loop
        if block in block.dominance_frontier:
            flags.append(BlockFlags.LoopBlock.value)

        return flags


class BlockFlags(Enum):
    # generally, the basic block identifying the entry point of the function
    EntryBlock = "EntryBlock"
    # any basic blocks that makes the control flow exiting from the current function
    ExitBlock = "ExitBlock"
    # any block is in a natural loop if it is in its own dominance frontier
    LoopBlock = "LoopBlock"


class BlockType(Enum):
    THUNK = "THUNK"
    DATA = "DATA"
    PADDING = "PADDING"
    CODE = "CODE"