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60+ Related Project Topics · Verilog · FPGA · Cadence · Bangalore 2026

IoT Data Acquisition System on FPGA

RTL · Testbench · Synthesis · FPGA / Cadence · Timing & Power — Final-year and mini-project topics with tools, boards and verification flow. Sources, reports, PPT and viva support from Bangalore.

64+
Related Topics
8+
Focus Areas
4.9★
573 Ratings
ADCBufferUART/SPIPacketFPGARateDocsCapstone

IoT Data Acquisition System on FPGA — Tools, Boards & Topics

Multi-channel data acquisition, buffering and UART/SPI export for IoT on FPGA.

Typical stack includes Verilog/SystemVerilog, ModelSim/Questa, Xilinx Vivado or Cadence Virtuoso, and educational FPGA boards. Packages include sources, testbenches, reports, PPT and viva support.

Tools & Hardware

VerilogVivadoModelSimADC

Abstract

This project presents a practical study of IoT Data Acquisition System on FPGA, with emphasis on the architecture, RTL/logic behaviour, verification flow and implementation considerations. The design is organized into clear functional blocks so that the input conditions, internal processing and output response can be observed and validated systematically. The project is suitable for VLSI, FPGA and digital-design laboratory work where a reproducible simulation and implementation flow is required.

The proposed workflow starts from functional specifications and block-level design, followed by HDL modelling, testbench development and functional simulation. For this topic, AMD Vivado is used as the primary design or analysis environment, while ModelSim / QuestaSim can be used for waveform-oriented verification where applicable. Important parameters such as latency, throughput, resource usage, timing behaviour, switching activity or signal integrity are examined according to the nature of the design.

After simulation, the design can be synthesized and mapped to a Xilinx Zynq-7000 FPGA for practical demonstration when the selected architecture is FPGA-compatible. The implementation stage can include pin assignment, clock constraints, synthesis reports, implementation reports and on-board I/O validation. This creates a useful connection between the theoretical design, simulation waveforms and real programmable-hardware behaviour.

The expected project outputs include the HDL source files, testbench, simulation results, synthesis/implementation observations and project documentation. The methodology can be extended with optimization experiments, parameter sweeps, timing analysis, power-oriented improvements or additional verification scenarios. These results provide a clear basis for technical evaluation, demonstration and viva discussion of IoT Data Acquisition System on FPGA.

AMD Vivado simulation waveform screen for IoT Data Acquisition System on FPGA
AMD Vivado simulation / waveform screen — illustrative output for IoT Data Acquisition System on FPGA

Tools Used

Recommended project tools:

  • AMD Vivado
  • ModelSim / QuestaSim

Hardware Details — Suitable FPGA Boards

Recommended FPGA implementation platform:

  • Xilinx Zynq-7000 FPGA — selected for the project’s FPGA demonstration and implementation stage.

Why Choose Us?

Bangalore guidance for VLSI / FPGA / digital design students.

RTL & Testbench

Clean modules, self-checking testbenches and waveform documentation.

FPGA / Cadence

Board demos, constraints, or schematic/layout flows as applicable.

Timing & Power

Synthesis reports, critical path notes and low-power guidelines.

Report & Viva

University-format documentation, PPT and expected viva questions.

FAQ

Xilinx/AMD Vivado, Intel Quartus, ModelSim/Questa, Cadence Virtuoso where relevant; boards Basys3, Nexys A7, DE10-Lite and similar educational FPGAs.
Yes — RTL/sources, testbench, synthesis notes, report, PPT and viva Q&A.