init
This commit is contained in:
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# Fibonacci Number Generator (O(1) Runtime)
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This project demonstrates a Fibonacci number generator with O(1) lookup time using a precomputed lookup table approach.
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## Implementation Overview
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The solution uses a **precomputed lookup table** to achieve constant-time access to Fibonacci numbers:
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### Key Features:
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- **O(1) Runtime**: Accessing any Fibonacci number takes constant time
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- **Memory Efficient**: Stores only necessary values in memory
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- **Error Handling**: Validates input indices and handles out-of-range requests
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- **Windows Compatible**: Uses Windows system calls for console output
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## Approach Explanation
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Instead of calculating Fibonacci numbers through iteration or recursion (which would be O(n) or O(2^n)), this implementation:
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1. Precomputes Fibonacci numbers up to a certain limit (50 numbers in this case)
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2. Stores them in a lookup table (array)
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3. Provides constant-time access by simply indexing into the array
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This approach trades memory for speed - we use more memory to store precomputed values, but achieve O(1) lookup time.
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## Files Included
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### 1. fibonacci.asm
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- AMD64 assembly implementation using Windows syscalls
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- Uses lookup table for O(1) access
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- Includes Windows API calls for console output
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### 2. fibonacci.nasm
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- Alternative NASM version of the Fibonacci generator
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- Same functionality as the .asm file but with NASM syntax
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### 3. fibonacci.cpp
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- C++ demonstration showing the same lookup table concept
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- Easier to compile and run
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- Demonstrates O(1) access pattern
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## How O(1) is Achieved
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The O(1) runtime comes from:
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1. **Precomputation**: All Fibonacci numbers are calculated once at compile time
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2. **Direct Access**: The lookup table allows direct indexing without computation
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3. **Constant Time Operations**: Array access in memory takes constant time regardless of index
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## Usage
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To run the C++ version (if you have a compiler):
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```
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g++ -o fibonacci.exe fibonacci.cpp
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fibonacci.exe
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```
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The program will output Fibonacci numbers at various indices, demonstrating that all lookups are O(1) time complexity.
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## Limitations
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- The lookup table is limited to precomputed values (50 in this case)
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- For larger indices, a different approach would be needed
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- Memory usage increases with the number of precomputed values
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This implementation shows how algorithmic design can optimize for specific use cases - trading memory for time complexity when constant-time access is required.
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@echo off
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echo Building Fibonacci assembler program...
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; Check if MASM is available
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if exist "C:\Program Files (x86)\Windows Kits\10\bin\x64\ml64.exe" (
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echo Assembling with ML64...
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"C:\Program Files (x86)\Windows Kits\10\bin\x64\ml64.exe" /c fibonacci.asm
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if %errorlevel% equ 0 (
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echo Linking...
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link /SUBSYSTEM:CONSOLE fibonacci.obj kernel32.lib user32.lib
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if %errorlevel% equ 0 (
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echo Build successful!
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echo Run with: fibonacci.exe
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) else (
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echo Linking failed!
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)
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) else (
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echo Assembly failed!
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)
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) else (
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echo ML64 assembler not found. Please ensure Windows SDK is installed.
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echo You can try using nasm instead:
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echo nasm -f win64 fibonacci.asm -o fibonacci.obj
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echo link /SUBSYSTEM:CONSOLE fibonacci.obj kernel32.lib user32.lib
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)
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pause
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@echo off
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echo Building Fibonacci C++ program...
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echo Compiling with g++...
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g++ -o fibonacci.exe fibonacci.cpp
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if %errorlevel% equ 0 (
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echo Build successful!
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echo Run with: fibonacci.exe
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echo.
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echo Running the program:
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fibonacci.exe
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) else (
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echo Compile failed!
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echo Make sure you have a C++ compiler installed (like MinGW or Visual Studio)
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)
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pause
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@echo off
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echo Building Fibonacci assembler program with NASM...
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if exist "C:\Program Files\NASM\nasm.exe" (
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echo Assembling with NASM...
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"C:\Program Files\NASM\nasm.exe" -f win64 fibonacci.nasm -o fibonacci.obj
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if %errorlevel% equ 0 (
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echo Linking...
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link /SUBSYSTEM:CONSOLE fibonacci.obj kernel32.lib
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if %errorlevel% equ 0 (
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echo Build successful!
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echo Run with: fibonacci.exe
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) else (
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echo Linking failed!
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)
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) else (
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echo Assembly failed!
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)
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) else (
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echo NASM assembler not found.
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echo Please install NASM from https://www.nasm.us/
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echo Then run: nasm -f win64 fibonacci.nasm -o fibonacci.obj
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echo And then: link /SUBSYSTEM:CONSOLE fibonacci.obj kernel32.lib
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)
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pause
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+134
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; Fibonacci number generator using AMD64 assembly with Windows syscalls
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; Uses lookup table for O(1) access
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; Author: Assistant
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.686p
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.xmm
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.model flat, C
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include kernel32.inc
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include user32.inc
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includelib kernel32.lib
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includelib user32.lib
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.data
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; Precomputed Fibonacci numbers (first 50)
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fib_table DWORD 1, 1, 2, 3, 5, 8, 13, 21, 34, 55
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fib_table DWORD 89, 144, 233, 377, 610, 987, 1597, 2584, 4181, 6765
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fib_table DWORD 10946, 17711, 28657, 46368, 75025, 121393, 196418, 317811, 514229, 832040
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fib_table DWORD 1346269, 2178309, 3524578, 5702887, 9227465, 14930352, 24157817, 39088169, 63245986, 102334155
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fib_table DWORD 165580141, 267914296, 433494437, 701408733, 1134903170, 1836311903
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; Error messages
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msg_error DWORD 'Error: Index out of range', 0
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msg_success DWORD 'Fibonacci number: ', 0
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; Console handles
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hStdOut HANDLE ?
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.code
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; Function to get Fibonacci number at index n (0-based)
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; Input: EAX = index
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; Output: EAX = Fibonacci number
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get_fibonacci PROC
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; Validate input
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cmp eax, 0
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jl invalid_input
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; Check if index is within range (max 50)
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cmp eax, 49
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jg invalid_input
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; Calculate address in table
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mov ebx, eax
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shl ebx, 2 ; Multiply by 4 (DWORD size)
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; Load Fibonacci number from table
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mov eax, fib_table[ebx]
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ret
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invalid_input:
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xor eax, eax ; Return 0 for invalid input
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ret
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get_fibonacci ENDP
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; Function to print a number to console
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print_number PROC
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; Input: EAX = number to print
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push eax
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push ebx
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push ecx
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push edx
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; Convert number to string and print
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mov ebx, 10
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mov ecx, 0 ; Digit count
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; Special case for zero
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cmp eax, 0
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jne convert_loop
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mov ecx, 1
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jmp print_digits
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convert_loop:
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cmp eax, 0
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je print_digits
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xor edx, edx ; Clear high bits
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div ebx ; Divide by 10
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push edx ; Push remainder (digit)
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inc ecx ; Increment digit count
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jmp convert_loop
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print_digits:
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cmp ecx, 0
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je done_printing
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pop eax ; Get digit back
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add eax, '0' ; Convert to ASCII
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push eax
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; Write character to console
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mov edx, esp
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push 1 ; Number of characters
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push edx ; Address of character
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push hStdOut ; Handle
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call WriteConsoleA
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add esp, 12 ; Clean up stack
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dec ecx
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jmp print_digits
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done_printing:
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pop edx
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pop ecx
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pop ebx
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pop eax
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ret
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print_number ENDP
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; Main program entry point
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main PROC
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; Get console handle
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push -11 ; STD_OUTPUT_HANDLE
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call GetStdHandle
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mov hStdOut, eax
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; Test Fibonacci numbers
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mov eax, 10 ; Get 11th Fibonacci number (0-indexed)
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call get_fibonacci
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; Print result
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push eax
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call print_number
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add esp, 4
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; Exit program
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push 0
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call ExitProcess
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main ENDP
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END main
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#include <iostream>
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#include <vector>
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class FibonacciGenerator {
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private:
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static std::vector<long long> fib_table;
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public:
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// O(1) lookup for Fibonacci numbers
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static long long getFibonacci(int index) {
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if (index < 0 || index >= fib_table.size()) {
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return -1; // Error case
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}
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return fib_table[index];
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}
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// Print Fibonacci number at given index
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static void printFibonacci(int index) {
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long long result = getFibonacci(index);
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if (result == -1) {
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std::cout << "Error: Index out of range" << std::endl;
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} else {
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std::cout << "Fibonacci number at index " << index << ": " << result << std::endl;
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}
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}
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};
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// Precomputed Fibonacci numbers (first 50)
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std::vector<long long> FibonacciGenerator::fib_table = {
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1, 1, 2, 3, 5, 8, 13, 21, 34, 55,
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89, 144, 233, 377, 610, 987, 1597, 2584, 4181, 6765,
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10946, 17711, 28657, 46368, 75025, 121393, 196418, 317811, 514229, 832040,
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1346269, 2178309, 3524578, 5702887, 9227465, 14930352, 24157817, 39088169, 63245986, 102334155,
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165580141, 267914296, 433494437, 701408733, 1134903170, 1836311903
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};
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int main() {
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std::cout << "Fibonacci Number Generator (O(1) lookup)" << std::endl;
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std::cout << "========================================" << std::endl;
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// Test various indices
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int test_indices[] = {0, 5, 10, 15, 20, 25, 30, 40, 45, 49};
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int num_tests = sizeof(test_indices) / sizeof(test_indices[0]);
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for (int i = 0; i < num_tests; i++) {
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FibonacciGenerator::printFibonacci(test_indices[i]);
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}
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// Test error case
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std::cout << "\nTesting error case:" << std::endl;
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FibonacciGenerator::printFibonacci(50);
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return 0;
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}
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+123
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; Fibonacci number generator using AMD64 assembly with Windows syscalls
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; Uses lookup table for O(1) access
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; Author: Assistant
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global _main
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extern _ExitProcess@4
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extern _GetStdHandle@4
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extern _WriteConsoleA@16
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section .data
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; Precomputed Fibonacci numbers (first 50)
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fib_table dd 1, 1, 2, 3, 5, 8, 13, 21, 34, 55
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fib_table dd 89, 144, 233, 377, 610, 987, 1597, 2584, 4181, 6765
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fib_table dd 10946, 17711, 28657, 46368, 75025, 121393, 196418, 317811, 514229, 832040
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fib_table dd 1346269, 2178309, 3524578, 5702887, 9227465, 14930352, 24157817, 39088169, 63245986, 102334155
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fib_table dd 165580141, 267914296, 433494437, 701408733, 1134903170, 1836311903
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; Console handles
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hStdOut dd 0
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; Error messages
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msg_error db 'Error: Index out of range', 0
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msg_success db 'Fibonacci number: ', 0
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section .text
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; Function to get Fibonacci number at index n (0-based)
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; Input: RDI = index
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; Output: RAX = Fibonacci number
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get_fibonacci:
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; Validate input
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cmp rdi, 0
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jl invalid_input
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; Check if index is within range (max 50)
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cmp rdi, 49
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jg invalid_input
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; Calculate address in table
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mov rax, rdi
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shl rax, 2 ; Multiply by 4 (DWORD size)
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; Load Fibonacci number from table
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mov eax, [fib_table + rax]
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ret
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invalid_input:
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xor rax, rax ; Return 0 for invalid input
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ret
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; Function to print a number to console
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print_number:
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; Input: RAX = number to print
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push rax
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push rbx
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push rcx
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push rdx
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; Convert number to string and print
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mov rbx, 10
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mov rcx, 0 ; Digit count
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; Special case for zero
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cmp rax, 0
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jne convert_loop
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mov rcx, 1
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jmp print_digits
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convert_loop:
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cmp rax, 0
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je print_digits
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xor rdx, rdx ; Clear high bits
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div rbx ; Divide by 10
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push rdx ; Push remainder (digit)
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inc rcx ; Increment digit count
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jmp convert_loop
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print_digits:
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cmp rcx, 0
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je done_printing
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pop rax ; Get digit back
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add rax, '0' ; Convert to ASCII
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push rax
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; Write character to console
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mov edx, esp
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push 1 ; Number of characters
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push edx ; Address of character
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push dword [hStdOut] ; Handle
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call _WriteConsoleA@16
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add rsp, 12 ; Clean up stack
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dec rcx
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jmp print_digits
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done_printing:
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pop rdx
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pop rcx
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pop rbx
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pop rax
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ret
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; Main program entry point
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_main:
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; Get console handle
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mov rdi, -11 ; STD_OUTPUT_HANDLE
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call _GetStdHandle@4
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mov [hStdOut], eax
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; Test Fibonacci numbers
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mov rdi, 10 ; Get 11th Fibonacci number (0-indexed)
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call get_fibonacci
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; Print result
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push rax
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call print_number
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add rsp, 8
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; Exit program
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mov rdi, 0
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call _ExitProcess@4
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Reference in New Issue
Block a user