Hamza Umit Sokun

29 papers A* 1B 7Journal 16Unranked 5
YearRankTypeTitle / Venue / Authors
2025 J jnl
IEEE Access
Hossein Shafieirad, Raviraj S. Adve, Akram Bin Sediq, Hamza Umit Sokun
2025 A* conf
INFOCOM
Wen Xu, Ben Liang, Gary Boudreau, Hamza Umit Sokun
2025 J jnl
ACM Trans. Model. Perform. Evaluation Comput. Syst.
Wen Xu, Ben Liang, Gary Boudreau, Hamza Umit Sokun
2025 J jnl
Trans. Mach. Learn. Res.
Stephan Rabanser, Anvith Thudi, Kimia Hamidieh, Adam Dziedzic, Israfil Bahceci, Akram Bin Sediq, Hamza Umit Sokun, Nicolas Papernot
2024 B conf
ICPP
Wen Xu, Juncheng Wang, Ben Liang, Gary Boudreau, Hamza Umit Sokun
2024 B conf
PIMRC
Congyu Fang, Akram Bin Sediq, Hamza Umit Sokun, Israfil Bahceci, A Ahmed Ibrahim, Nicolas Papernot
2023 J jnl
CoRR
Omar Maraqa, Saad Al-Ahmadi, Aditya S. Rajasekaran, Hamza Umit Sokun, Halim Yanikomeroglu, Sadiq M. Sait
2023 J jnl
IEEE Trans. Commun.
Omar Maraqa, Saad Al-Ahmadi, Aditya S. Rajasekaran, Hamza Umit Sokun, Halim Yanikomeroglu, Sadiq M. Sait
2023 B conf
PIMRC
Wen Xu, Ben Liang, Gary Boudreau, Hamza Umit Sokun
2022 conf
FNWF
Aditya S. Rajasekaran, Hamza Umit Sokun, Omar Maraqa, Halim Yanikomeroglu, Saad Al-Ahmadi
2022 J jnl
CoRR
Aditya S. Rajasekaran, Hamza Umit Sokun, Omar Maraqa, Halim Yanikomeroglu, Saad Al-Ahmadi
2021 B conf
PIMRC
Omar Maraqa, Aditya S. Rajasekaran, Hamza Umit Sokun, Saad Al-Ahmadi, Halim Yanikomeroglu, Sadiq M. Sait
2021 J jnl
CoRR
Omar Maraqa, Aditya S. Rajasekaran, Hamza Umit Sokun, Saad Al-Ahmadi, Halim Yanikomeroglu, Sadiq M. Sait
2020 J jnl
IEEE Access
Aditya S. Rajasekaran, Omar Maraqa, Hamza Umit Sokun, Halim Yanikomeroglu, Saad Al-Ahmadi
2020 J jnl
CoRR
Aditya S. Rajasekaran, Omar Maraqa, Hamza Umit Sokun, Halim Yanikomeroglu, Saad Al-Ahmadi
2019 J jnl
IEEE Trans. Veh. Technol.
Eylem Erdogan, Ali Afana, Hamza Umit Sokun, Salama Ikki, Lutfiye Durak-Ata, Halim Yanikomeroglu
2019 J jnl
IEEE Access
Mehmet Cagri Ilter, Hamza Umit Sokun, Halim Yanikomeroglu, Risto Wichman, Jyri Hämäläinen
2018 B conf
WCNC
Hamza Umit Sokun, Ebrahim Bedeer, Ramy H. Gohary, Halim Yanikomeroglu
2017 J jnl
IEEE Trans. Wirel. Commun.
Hamza Umit Sokun, Ramy H. Gohary, Halim Yanikomeroglu
2017 J jnl
IEEE Trans. Veh. Technol.
Hamza Umit Sokun, Mehmet Cagri Ilter, Salama Ikki, Halim Yanikomeroglu
2017 B conf
PIMRC
Amr El-Keyi, Hamza Umit Sokun, Tu Ngoc Nguyen, Qiubo Ye, Haiying Julie Zhu, Halim Yanikomeroglu
2017 J jnl
IEEE Trans. Veh. Technol.
Hamza Umit Sokun, Halim Yanikomeroglu
2017 J jnl
IEEE Access
Hamza Umit Sokun, Ebrahim Bedeer, Ramy H. Gohary, Halim Yanikomeroglu
2016 conf
VTC Fall
Rainer Schoenen, Hamza Umit Sokun, Halim Yanikomeroglu
2015 B conf
GLOBECOM
Hamza Umit Sokun, Mehmet Cagri Ilter, Salama Ikki, Halim Yanikomeroglu
2015 J jnl
IEEE Commun. Lett.
Hamza Umit Sokun, Akram Bin Sediq, Salama Ikki, Halim Yanikomeroglu
2015 conf
VTC Fall
Hamza Umit Sokun, Ramy H. Gohary, Halim Yanikomeroglu
2014 conf
ICC
Hamza Umit Sokun, Akram Bin Sediq, Salama Ikki, Halim Yanikomeroglu
2012 conf
SIU
Bahattin Karakaya, Hamza Umit Sokun, Murat Uysal, Mazen Omar Hasna
docs/CODE_ANALYSIS_APPROACH.md
← Index docs/CODE_ANALYSIS_APPROACH.md markdown
# Code Analysis Approach

This document explains the code analysis methodologies used in the REDB malware analysis framework.

## Disassembly Normalization

The framework implements a sophisticated three-level normalization strategy for disassembled code that provides different levels of abstraction for similarity detection and feature extraction.

### Overall Normalization Strategy

The framework implements a **hierarchical abstraction approach** where each instruction is normalized at three different levels simultaneously:

1. **Level 0 (fully_normalized)**: Maximum abstraction - reduces operands to broad categories
2. **Level 1 (api_normalized)**: Medium abstraction - preserves semantic meaning while normalizing details  
3. **Level 2 (category_normalized)**: Minimum abstraction - maintains architectural specificity

This multi-level approach allows analysts to perform similarity analysis at different granularities depending on their specific detection goals.

### Implementation Architecture

The normalization process follows this workflow:

1. **Token Parsing**: Each instruction is parsed from Binary Ninja's instruction tokens to extract the mnemonic and operands
2. **Multi-Level Processing**: Each operand is processed through all three normalization functions
3. **Instruction Reconstruction**: Normalized instructions are rebuilt with the mnemonic plus normalized operands
4. **Control Flow Tagging**: Control flow instructions get a `<TARGET>` suffix for easier pattern matching

### Level 0: Fully Normalized (Maximum Abstraction)

**Purpose**: Creates the most abstract representation for broad pattern detection across different malware families.

**Transformations**:
- **Registers**: All registers normalized to semantic categories via `normalize_register()`:
  - General purpose registers (EAX, EBX, R8, etc.) → `GPR`
  - Stack/Base pointers (ESP, EBP, RSP) → `PTR` 
  - SIMD registers (XMM0, XMM1) → `XMM`
  - FPU registers (ST0, ST1) → `FPU`
- **Memory Operations**: All memory references → `MEM`
- **Constants**: All immediate values → `CONST`  
- **Data References**: All symbols/data references → `DATA_REF`

**Example**:
```
mov eax, [ebp+8]     → MOV GPR MEM
call CreateFileW     → CALL DATA_REF <TARGET>
add ecx, 0x10        → ADD GPR CONST
```

### Level 1: API Normalized (Medium Abstraction)

**Purpose**: Preserves semantic distinctions while normalizing architectural details. Focuses on behavioral patterns and API usage.

**Transformations**:
- **Registers**: Categorized by functional role:
  - Data registers → `GPR_DATA`
  - Index registers (ESI, EDI) → `GPR_INDEX`  
  - Stack registers (ESP, EBP) → `GPR_STACK`
  - SIMD registers → `XMM_REG`
- **Memory Operations**: Classified by access pattern:
  - Stack access → `MEM_STACK`
  - String operations → `MEM_STRING` 
  - General access → `MEM_GENERAL`
- **Constants**: Categorized by range:
  - Small constants (-16 to 16) → `CONST_{value}`
  - Large constants → `CONST_LARGE`
- **API Calls**: Resolved to specific API names:
  - `CreateFileW` → `API_CreateFileW`
  - Other symbols → `DATA_SYM`

**Example**:
```
mov eax, [ebp+8]     → MOV GPR_DATA MEM_STACK
call CreateFileW     → CALL API_CreateFileW <TARGET>
add ecx, 0x10        → ADD GPR_DATA CONST_LARGE
```

### Level 2: Category Normalized (Minimum Abstraction)

**Purpose**: Maintains architectural specificity while normalizing specific values. Best for detecting variants with similar implementation details.

**Transformations**:
- **Registers**: Architecture-specific categories:
  - 64-bit registers → `REG_64`, with special cases for `REG_64_SP`, `REG_64_BP`
  - 32-bit registers → `REG_32`
  - 16/8-bit registers → `REG_16_8`
- **Memory Operations**: Detailed addressing mode classification:
  - Complex addressing → `MEM_SCALED_INDEX`
  - Base + offset → `MEM_BASE_OFFSET`
  - Direct addressing → `MEM_DIRECT`
- **Constants**: Type-specific classification:
  - Hexadecimal → `CONST_HEX`
  - Decimal → `CONST_DEC`
- **API Calls**: Categorized by functional group:
  - File operations → `API_FILE_OP`
  - Memory operations → `API_MEMORY_OP`
  - Network operations → `API_NETWORK_OP`

**Example**:
```
mov eax, [ebp+8]     → MOV REG_32 MEM_BASE_OFFSET
call CreateFileW     → CALL API_FILE_OP <TARGET>
add ecx, 0x10        → ADD REG_32 CONST_HEX
```

### Key Features and Benefits

#### 1. Multi-Granularity Similarity Detection
- **Level 0**: Detects broad behavioral patterns across malware families
- **Level 1**: Identifies API usage patterns and semantic similarities
- **Level 2**: Finds variants with similar implementation approaches

#### 2. Robust Pattern Matching
- Control flow instructions tagged with `<TARGET>` for easier CFG analysis
- Handles edge cases with fallback mechanisms
- Consistent uppercase normalization prevents case sensitivity issues

#### 3. API-Aware Analysis
The framework includes sophisticated API recognition through the `ApiCategory` enum and resolution methods:
- **File Operations**: CreateFile, ReadFile, WriteFile, etc.
- **Memory Operations**: VirtualAlloc, HeapAlloc, VirtualProtect, etc.  
- **Registry Operations**: RegOpenKey, RegSetValue, etc.
- **Network Operations**: WSASocket, send, recv, etc.
- **Process Operations**: CreateProcess, OpenProcess, etc.

#### 4. Scalable Feature Extraction
Each level produces different hash values for the same function:
- `fully_normalized_disassembly_hash`
- `api_normalized_disassembly_hash`  
- `category_normalized_disassembly_hash`

This enables efficient similarity searches at different abstraction levels in the ClickHouse database.

### Practical Applications for Malware Analysis

#### Threat Hunting Scenarios:

1. **Family Detection** (Level 0): Find samples using similar algorithmic approaches regardless of specific implementation
2. **Variant Analysis** (Level 1): Identify samples with similar API usage patterns and behavioral semantics
3. **Code Reuse Detection** (Level 2): Discover samples sharing specific implementation techniques or code fragments

#### Similarity Metrics Integration:
- Each normalization level can be used with different fuzzy hashing algorithms (ssdeep, TLSH, etc.)
- Level 0 works well with structural similarity metrics
- Level 1 optimal for behavioral similarity analysis  
- Level 2 suitable for implementation-specific pattern matching

This three-tiered approach provides malware analysts with flexible tools for detecting similarities across the threat landscape while maintaining the precision needed for detailed variant analysis.



---

*More code analysis approaches will be documented in additional sections as they are implemented.*