714 3-Bit ALU

714 : 3-Bit ALU

Design render
  • Author: Garima Malhotra
  • Description: This circuit implements a 3-Bit Arithmetic Logic Unit (ALU) capable of performing arithmetic and logical operations on two 3-bit binary numbers.
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  • Clock: 0 Hz

3-Bit ALU

1. Overview

This circuit implements a 3-Bit Arithmetic Logic Unit (ALU) capable of performing arithmetic and logical operations on two 3-bit binary numbers.

The ALU supports:

  • Addition
  • Subtraction
  • Bitwise OR
  • Bitwise AND

The result is displayed on a 7-segment display in hexadecimal.

Inputs and Outputs

The input pins are configured as follows:

Pin Signal Description
IN0 a[2] MSB of input a
IN1 a[1] Middle bit of input a
IN2 a[0] LSB of input a
IN3 b[2] MSB of input b
IN4 b[1] Middle bit of input b
IN5 b[0] LSB of input b
IN6 s[1] MSB of select input s
IN7 s[0] LSB of select input s

Where:

  • a[2:0] and b[2:0] are the two 3-bit binary operands.
  • s[1:0] is the select input used to choose the ALU operation.
Output Display

The ALU output is displayed on a 7-segment display in hexadecimal.

For subtraction operations that produce a negative result:

  • The decimal point (DP) on the 7-segment display is used as a negative sign indicator
  • DP = 1 indicates the displayed value is negative
  • DP = 0 indicates the displayed value is positive

Example:

a = 001₂ (1)
b = 011₂ (3)
s = 01 (subtract)

1 - 3 = -2

The display will show 2 with the decimal point illuminated to indicate the result is -2

Minus Two on the 7 Segment Display


2. ALU Operations

The select line can be configured to perform the following operations -

Select Value Operation
00 a[2:0] + b[2:0]
01 a[2:0] - b[2:0]
10 a[2:0] OR b[2:0]
11 a[2:0] AND b[2:0]

s[1] essentially selects the type of operation

  • s[1] = 0 → Arithmetic operations
  • s[1] = 1 → Logic operations

3. Architecture

The ALU is divided into two main sections:

  1. Arithmetic Unit

    • Performs addition and subtraction
    • Implemented using a ripple-carry adder
    • Subtraction is achieved using 2’s complement arithmetic
  2. Logic Unit

    • Performs bitwise AND and OR operations

A multiplexer selects the appropriate output based on the select input s[1:0].

The following is a system diagram of the ALU -

ALU Diagram

4. Arithmetic Operation

4.1 Arithmetic Unit Interface

The arithmetic unit takes the operands and select lines as inputs and produces both a 4-bit absolute value and a sign indicator for display purposes.

Inputs and Outputs
Signal Direction Description
a[2:0] Input First 3-bit operand
b[2:0] Input Second 3-bit operand
s[0] Input Operation select line (addition/subtraction control)
abs[3:0] Output 4-bit absolute value of the arithmetic result
sign_bit Output Indicate sign of result from arithmetic (used to drive 7-segment DP)

4.2 Arithmetic Unit Design

The arithmetic section of the ALU is implemented using a 4-bit ripple carry adder with additional logic to support 2’s complement arithmetic. This stage is followed by an absolute value circuit.

4.2.1 Ripple Carry Adder Structure

The arithmetic unit uses a 4-bit ripple carry adder composed of:

  • Three full-adder stages
  • One final half-adder stage (without the carry out)
Stage Breakdown
Stage Type Purpose
Bit 0 Full Adder LSB computation
Bit 1 Full Adder Intermediate computation
Bit 2 Full Adder MSB of 3-bit operands
Bit 3 Half Adder / XOR Stage Sign or overflow extension

The final stage does not propagate a carry-out and is implemented using only an XOR operation. It represents the negative sign for 2's complement, or an overflow in addition.

The subtraction option produces a range of outputs [-7, 7], thus never using the 4th bit. This limited range occurs because this particular ALU doesn't support 2 negative numbers; the first operand 'a' can only be a positive value. Hence this 4th bit is used as the sign bit in 2's complement format, which is later useful in evaluating the absolute value.

However, the addition option produces a range of outputs [0, 14] which overflows into the 4th bit.

Hence MSB = 1 strictly means either

  • an overflow in addition or
  • a sign bit in subtraction.

Determining whether the MSB = 1 is due to overflow or is sign bit is based on the value of s[0]: whether the user's intent was subtraction or addition.

4.2.2 2's Complement Arithmetic Implementation

2’s Complement allows the same binary adder circuit to perform both addition and subtraction by representing negative numbers in 2’s complement form.

In a 2’s complement number:

  • The most significant bit (MSB) acts as the sign bit
    • 0 indicates a positive number
    • 1 indicates a negative number
  • Positive numbers are represented normally (unchanged binary form)
  • Negative numbers are represented using the 2’s complement method

To convert a binary number into its 2’s complement representation:

  1. Invert all the bits (change 0s to 1s and 1s to 0s)
  2. Add 1 to the result

This approach simplifies digital circuit design because subtraction can be performed using the same hardware as addition.

Flipping the bits

The operand b[2:0] and not (b[2:0]) are passed through a bank of multiplexers controlled by the select line s[0].

The behavior is:

s[0] Operation Value Passed to Adder
0 Addition b
1 Subtraction ~b

Therefore:

  • During addition, the adder receives b
  • During subtraction, all bits of b are inverted before entering the adder

This implements the first step of 2’s complement subtraction.

Carry-In Control

The select line s[0] is also connected to the carry-in of the ripple carry adder.

Therefore:

s[0] Carry-In
0 0
1 1

Additionally, the MSB (4th bit) is set as s[0] XOR carry_in, indicating a negative sign.

So when subtraction is selected:

  1. The bits of b are inverted
  2. A 1 is added through the carry-in input
  3. The MSB is set to 1
4.2.3 Absolute Value Circuit

To convert the 2's complement representation into absolute value, we first evaluate whether the value from the adder is a negative or positive value.

  • The condition where MSB = 1 and subtraction was user intent (s[0]=1; s[1] is common) => negative number. In this case, we need to perform 2’s complement operation of flipping the bits and adding one to get absolute value.
  • In other cases, the output from the adder is a positive number, which doesn't need to be further operated upon.

A cascade of half adders is used to add 1 to the inverted bits.

Below is the circuit diagram for the Absolute Value Circuit.

Absolute value circuit


5. Binary to 7 Segment Encoder

The following was the truthe table from binary to displaying it's equivalent hex value in the seven segment display.

Binary Hex ABCDEFG (7SEG)
0000 0 1111110
0001 1 0110000
0010 2 1101101
0011 3 1111001
0100 4 0110011
0101 5 1011011
0110 6 1011111
0111 7 1110000
1000 8 1111111
1001 9 1111011
1010 A 1110111
1011 B 0011111
1100 C 1011110
1101 D 0111101
1110 E 1001111

F is not included as it is an unreachable value.

The binary expression for each segment of the display is reduced using karnaugh map and is implemented as a sum-of-products (minterms) in the ALU.

How to test

User can test by setting values of operands a[2:0], b[2:0] and selecting the desired operation using the select lines s[1:0]. The circuit starts in an unknown state, so the seven segment display dispalys a random sequence on startup. It takes 2 clock cycles/ button presses for triggering clock for the input to propagate through to the output.

Example

If:

a = 101₂ (5)
b = 111₂ (7)

Then:

Select Operation Result (Binary) Result (Hex)
00 5 + 7 1100₂ C₁₆
01 5 - 7 1110₂ 2₁₆ and Decimal Point (indicating negative sign)
10 101 OR 111 111₂ 7₁₆
11 101 AND 111 101₂ 5₁₆

After setting the input switches, trigger the clock twice to see the results on the seven segment display.


External hardware

Seven Segment Display

IO

#InputOutputBidirectional
0a[2]7Seg_A
1a[1]7Seg_B
2a[0]7Seg_C
3b[2]7Seg_D
4b[1]7Seg_E
5b[0]7Seg_F
6s[1]7Seg_G
7s[0]7Seg_DP

Chip location

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A probabilistic computing chip) tt_um_rebelmike_asic_odyssey (2026: An ASIC Odyssey) tt_um_huyatieo_tinyqv_speck (Speck-V SoC) tt_um_mosbius (mini mosbius) tt_um_remedy_cpu (FFD16 cpu 16-bit) tt_um_vga_ocarina (Ocarina on VGA) tt_um_TinyGPU_v3 (Tiniest GPU V3) tt_um_santhosh_ring_osc (Ring Oscillator PVT Sensor & TRNG) tt_um_santhosh_xbar_ctrl (Memristive Crossbar Peripheral Controller) tt_um_santhosh_stdp_ctrl (Digital STDP Learning Controller) tt_um_santhosh_stoch_neuron (LFSR-Based Stochastic Neuron) tt_um_anweiteck_ldo (1V-LDO) tt_um_sriaxi4lite_top (Axi4_Lite) tt_um_bch_code_15_7_2 (Bose-Chaudhuri-Hocquenghem Code) tt_um_mastensg_ttsky26a_demo (Luz) tt_um_pakesson_vga_rocket (VGA Rocket) tt_um_adpll (ADPLL - All-Digital Phase-Locked Loop) tt_um_Bingyao_FCOTA (Self biased Single Ended Folded Cascoded OTA) tt_um_spacewar_top (Spacewar) tt_um_microlane_demo (microlane demo project) tt_um_NE567Mixer28 (ECG Front End) tt_um_wakita_mux8onehot_cap (Mux8onehot Pulldown Mosfet) tt_um_johshoff_metaballs (Metaballs v2) tt_um_tomvdsch_cyclonerunner (CycloneRunner) tt_um_lowprocess_wildcamping (PicoMIPS CPU) tt_um_canvas (Tiny Canvas) tt_um_snrlxd1068_MACs (Linear and Logarithmic MACs) tt_um_pakesson_simon64_128 (SIMON64/128) tt_um_AmitChen1415 (Tiny Blackjack) tt_um_ole_moller_double_dabble_SV (double_dabble_SV) tt_um_toivoh_demo_1tile (Single tile demo [TTSKY26a demo competition]) tt_um_shiho_space_invaders (Tiny Space Invaders) tt_um_analog_RO (Analog RO) tt_um_electron65_vga (VGA Clock Demo) tt_um_wokwi_457571266840151041 (3-Bit ALU) tt_um_katomata (Katomata - 1D Cellular Automata) tt_um_shimomi_analog (analog circuit) tt_um_toivoh_demo_4tile (Four tile demo [TTSKY26a demo competition]) tt_um_IEEE_open_silicon_FOSSEE (Ring oscillator VCO and Differential Amplifier) tt_um_lm_chip_top (Project Long Man: A Delay-Insensitive Interconnect) tt_um_AlephNaNsea_space_time_waves_and_filaments (Space-Time Waves and Filaments) tt_um_spacelizard_apu (Spacelizard APU) tt_um_wokwi_457569490272926721 (Letter S) tt_um_mau_top_4b (SIMD2 Math Accelerator Unit) tt_um_maze (Maze) tt_um_demoscenettsky (Algorithmic Pattern Generator) tt_um_wokwi_457572141968369665 (Arran's tinytapeout project) tt_um_maxluppe_ttsky26a_analog (Standard Digital Logic Cells Analog Comparator) tt_um_grammartile (GrammarTile) tt_um_bubble_sort (IEEE Bubble Sort Engine) tt_um_ahmed_nematallah_12_bit_adc (12-bit ADC) tt_um_bad_ode_plotter_vga (Bad VGA ODE Plotter) tt_um_wokwi_463706339714973697 (Demo 4-bit ALU 74181 variant) tt_um_wokwi_457569853853115393 (Jasper Tiny Tape Out Workshop) tt_um_wokwi_457560507752701953 (Osian Tiny Tapeout) tt_um_wokwi_457571501325987841 (Rola_Tiny Tapeout Template Workshop4Mar26) tt_um_wokwi_457571903121572865 (TT-wokwi-template) tt_um_wokwi_463380823859050497 (My_Name_on_7_Seg_display) tt_um_wokwi_457569584731832321 (Tiny Tapeout 9 Template Copy) tt_um_wokwi_457571826952995841 (Tiny Tapeout Novomorphic Design 1) tt_um_wokwi_457571349142937601 (Tiny Tapeout Secret First Letter Code) tt_um_wokwi_457571261877235713 (Tiny Tapeout Test) tt_um_wokwi_457582867322921985 (Tiny Tapeout Test GDS) tt_um_wokwi_457571135132600321 (Tiny Tapeout Test Gates) tt_um_wokwi_457571331577181185 (Tinytapeout_IA) tt_um_wokwi_457576779101727745 (tiny tapeout test gates) tt_um_wokwi_457571577702202369 (tj wowki) tt_um_wokwi_457572953060951041 (wokwi) tt_um_pettit_galton (Tiny Galton) tt_um_fountaincoder_top_abc (ABC Temporal Coincidence Detector) tt_um_prime_quine (Prime Quine) tt_um_ghtag_trinity_gf16 (Trinity GF16 Dot Product Accelerator) tt_um_LFSR (Configurable Galois LFSR) tt_um_Acrazt05_titan_proccesing_unit (Titan Proccesing Unit (TPU)) tt_um_essen (Digital) tt_um_alu_bns (6-bit Multi-Functional ALU) tt_um_gerardvt_spade_poc (Interactive XOR Plasma (Spade HDL)) tt_um_gerardvt_clash_poc (Interactive Triangle-Wave Plasma (Clash HDL)) tt_um_jackthoene_frogger (Frogger) tt_um_wokwi_463698873100105729 (IEEE Open Silicon 2026: UTB Logic Trivia Challenge: 8-bit Digital Lock) tt_um_wokwi_463666635153364993 (IEEE - Hex Counter and Logic Gate Validator) tt_um_ChristmasTree_MaligayangPasko (ChristmasTree_MaligayangPasko) tt_um_wokwi_463711763041599489 (IEEE Open Silicon 2026: UTB UART Transmitter basic) tt_um_tinytensorcore (TinyTensorCore) tt_um_uwasic_crypto (UWASIC Crypto) tt_um_topadi (time) tt_um_siliconimist (Siliconimist Demoscene) tt_um_neutern_0 (tt_um_neutern_0) tt_um_htfab_hsxo (HSXO) tt_um_madech_8bit_processor_vga (8-Bit Processor with VGA) tt_um_vga_clock (VGA clock) tt_um_usu_AXIS_MVMul (AXI-Stream Matrix Vector Multiplier) tt_um_weird_numbers (Weird Numbers) tt_um_bovi_cable_tester (Cable Tester) tt_um_libokuohai_asap_cpu_v2 (ASAP CPU v2) tt_um_LinusSkucas_pio (Tiny PIO) tt_um_thomas_ep_sensor (EP Sensor v7 (symmetric in-place thicken, Zhao-compliant)) tt_um_rakhanaufm_truerandom (Current-Starved Ring Oscillator Based True Random Number Generator) tt_um_parakeet (parakeet) tt_um_mcml_vco (MCML experiments) tt_um_tpu ( Tensor Processing Unit) tt_um_strasti (8-Bit ALU) tt_um_zed_analog (Analog design) tt_um_axi4lite_top (Axi4_Lite) tt_um_c4m_spsram_direct (TTSKY-SPSRAM-direct) tt_um_Onchip_Folded_Cascode_N_with_Bias (Folded Cascode N Type with Bias from Onchip Research Group) tt_um_htfab_hybrid (Telephone hybrid) tt_um_ilamparuthi_cfar (CFAR Radar Detector) tt_um_pakesson_glitcher (Glitcher) tt_um_advaittej_stopwatch (V-SPACE Demo: Command & Control Chronograph) tt_um_william_pll (Smartcard PLL Clock Generator) tt_um_Melody_Generator_JLANordhal (Melody Generator based on Markov Chains) tt_um_d_monteiro (Neuromorphic Processor (SNN)) tt_um_jacob_kebaso_4bit_cpu (Nibble - 4-bit CPU) tt_um_signal_detector (Signal_Detection_Processor) tt_um_catalinlazar_tinycore8 (TinyCore8) tt_um_chidam_secengine (Tiny Secure Telemetry Engine) tt_um_urish_usb_cdc (USB CDC (Serial) Device) tt_um_josenbm (9-Channel Frequency Counter with I2C + SPI DAC & ADC) tt_um_shalindra_vga_rings (Variable Speed and Colour Select VGA Rings) tt_um_dinukuk_MYVGA_GLIDER (DKTT01 - VGA Glider) tt_um_fibonacci_JoaoBortolace (Fibonacci Counter) tt_um_wokwi_461639934990157825 (4 bit unlock (IEEE)) tt_um_ctw_ldo (LDO Regulator Skywater 130nm)