423 DSP MAC Engine

423 : DSP MAC Engine

Design render

How it works

The DSP MAC Engine is an 8-bit signed multiply-accumulate datapath.

Two signed 8-bit operands are loaded through the ui_in input bus using control signals on uio_in. When mac_en is asserted, the two operands are multiplied to produce a signed 16-bit product. The product is sign-extended to 24 bits and added to the internal 24-bit accumulator.

The accumulator can be cleared using clr_acc. Its 24-bit value can be read one byte at a time through uo_out using the rd_next control signal.

The input and control signals are:

  • ui_in[7:0]: 8-bit signed operand data bus
  • uio_in[0]: load_a — loads the first operand
  • uio_in[1]: load_b — loads the second operand
  • uio_in[2]: mac_en — performs the multiply-accumulate operation
  • uio_in[3]: clr_acc — clears the accumulator
  • uio_in[4]: rd_next — advances the accumulator byte being read
  • uio_in[7:5]: unused

The 24-bit accumulator is presented through uo_out[7:0] one byte at a time. This allows the complete accumulated result to be read using the 8-bit Tiny Tapeout output bus.

The design operates synchronously from the Tiny Tapeout clk input and uses an active-low reset through rst_n.

How to test

The design can be tested by applying a clock and reset, loading two signed 8-bit operands, and then enabling the MAC operation.

For example, to perform:

3 × 5 = 15

load 3 into operand A using load_a, load 5 into operand B using load_b, and assert mac_en for a clock cycle.

The resulting accumulator value can then be read through uo_out[7:0] using rd_next.

The supplied Cocotb testbench performs reset, loads A = 3 and B = 5, executes one multiply-accumulate operation, and verifies that the resulting value is 15.

The accumulator can also be cleared using clr_acc before starting a new calculation.

External hardware

No external hardware is required for simulation.

For a physical demonstration, the ui_in bus can be driven by an external digital controller or FPGA, while the uio_in control signals can be used to control operand loading, MAC execution, accumulator clearing, and result readout.

The 8-bit uo_out bus can be connected to a logic analyzer, FPGA, or other digital interface to observe the accumulator result.

IO

#InputOutputBidirectional
0operand data bus bit 0accumulator byte out 0load_a (strobe)
1operand data bus bit 1accumulator byte out 1load_b (strobe)
2operand data bus bit 2accumulator byte out 2mac_en (strobe)
3operand data bus bit 3accumulator byte out 3clr_acc (strobe)
4operand data bus bit 4accumulator byte out 4rd_next (strobe)
5operand data bus bit 5accumulator byte out 5
6operand data bus bit 6accumulator byte out 6
7operand data bus bit 7accumulator byte out 7

Chip location

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