939 Manchester Baby

939 : Manchester Baby

Design render

History of the Manchester Baby

The Manchester Baby, also known as the Small-Scale Experimental Machine, is a historically significant computer for being the first to execute electronically-stored programs. It uses 32-bit words, can access 32 unique memory addresses and execute 7 different instructions. A quirk of its implementation is that it negates a value when it is being loaded, therefore using a subtractor instead of an adder.

Instruction Set

Number Mnemonic Operation
0 JMP Copy content of specified line into the program counter
1 JRP Add content of specified line to the program counter
2 LDN Negate and load content of specified line into the accumulator
3 STO Store the content of the accumulator to the specified memory address
4 SUB Subtract the content of the specified line from the accumulator
5 SUB As above
6 CMP If the accumulator is less than 0, increment program counter
7 STP Halt the Baby and light the stop lamp

Interfacing with the Baby

There are two methods to interface with the Baby:

  • via the Tiny Tapeout devkit
  • via an external module/microcontroller

I recommend using the devkit as that already has everything wired up for you.

Using the Devkit

You'll need to plug your devkit into your computer and clone the project repo (https://github.com/diy-ic/tt-manchester-baby).

Within the project repo, there are some micropython scripts which you can run on your devkit.

  • /test/etr contains a microcotb testbench which can be used to verify if everything is functional
  • /tools contains a runner script that allows you to load your own programs

If you're using the FPGA breakout board, you'll have to compile the bitstream yourself - see how at https://tinytapeout.com/guides/fpga-breakout/

For the next steps, see the "How to test" section.

Using an external microcontroller

I've written an example C++ program that can be run on a Pico to interface with the Baby: https://github.com/krisjdev/pico-baby-if/

Other microcontrollers can be used, but you would have to adjust the code slightly as it uses Pico SDK functions.

The Pico acts as the RAM module for the Baby, since there isn't one present on the tile for this project. It uses nearly every single GPIO pin in order to provide the Baby with data input, output and control lines to make it function. The pre-defined pins can be found in babyif/pindefs.h in the aforementioned GitHub repo.

Connectivity

Due to pin limitations, there was a need to serialise the I/O of the Baby in some form as there weren't enough to expose a 32-bit interface. Therefore, this design also contains two modules (effectively shift registers) which will either accept 4x 8-bit inputs and show them to the Baby as one 32-bit value (PTP_A) or allow you to shift out 160 bits as multiple 8-bit segments (PTP_B) in order to get information about RAM access or the state of the program counter, instruction register or accumulator. Please note that PTP_B is read only, so the program counter, instruction register or accumulator cannot be directly modified.

How to test

Using the Devkit

Navigate into either the /test/etr or /tools folder of the project repo and mount it remotely with mpremote mount .. This will make it so the contents of the folder appear on the microcontroller's virtual file system at /remote. You should have been dropped into a REPL, so now we can import and run some scripts.

If you mounted /test/etr, run import test; test.main(). You should see something like the following:

Manchester Baby: enabled project, beginning tests
runner: *** Running Test 1/3: test_ptp_wide ***
runner: *** Test 'test_ptp_wide' PASS ***
runner: No clocks in test
runner: *** Running Test 2/3: test_ptp_narrow ***
runner: *** Test 'test_ptp_narrow' PASS ***
runner: No clocks in test
runner: *** Running Test 3/3: run_test_prog ***
[...]

If you mounted /tools, run import execute; execute.main(). This will clear the console and render a live view of the memory contents.

Memory contents written to the terminal

When the stop lamp goes high, the Baby will stop executing and you can inspect the memory contents for your answer. For this sample program, the answer is 0xe0000000 at address 0x1c.

You can add additional programs by editing /tools/programs.py, and then updating the runner to use it inside /tools/execute.py.

Using an external microcontroller

If using the interface provided at https://github.com/krisjdev/pico-baby-if/, you will have to wire up the chip yourself - pay attention to the pre-defined pins as specified in babyif/pindefs.h. Once flashed, it will automatically begin executing a Turing Long Division program, found in program.c.

Note: I have only attempted this on my own FPGA without any of the Tiny Tapeout infrastructure in the way. The program needs to be adapted in order to select and enable the project.

Memory contents written to the terminal

You can disable the CRT-esque display by commenting out draw_crt(); at the very beginning of the while(true) loop.

Once the program finishes executing, a message will appear that the stop lamp has gone high.

Stop lamp has gone high

In the case of the given Turing Long Division program the answer should be 0xe0000000 at address 0x1c.

If you want to execute your own programs, simply modify the program array in program.c, compile and upload to the RP2040/Pico.

Compiling your own programs

You can find an example program and compiler at https://gitlab.com/charles.fox/comparch/-/tree/main/chapter07, or try using babyutils from https://github.com/andy-bower/babyutils.

External hardware

The official devkit is the best suited for this, although it's possible with a regular Rapsberry Pi Pico. Any microcontroller with >21 GPIO pins should do just fine with some work, but less pins can be used if you enable the serial mode.

IO

#InputOutputBidirectional
0data_in[0]data_out[0](in) PTP A control signal
1data_in[1]data_out[1](in) PTP B control signal
2data_in[2]data_out[2](in) PTP reset_n
3data_in[3]data_out[3](in) Force debug values on PTP A
4data_in[4]data_out[4](in) PTP serialise data
5data_in[5]data_out[5]
6data_in[6]data_out[6](out) Stop Lamp
7data_in[7]data_out[7](out) Baby RAM read/write signal

Chip location

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bgianfo) tt_um_sirajmuhammad_bpsk_mod (BPSK Baseband Modulator) tt_um_K_coder_9 (TENs device frequency controller) tt_um_wokwi_469758119198926849 (LL_6BitShiftRegister_ToggleEnabledFeedback) tt_um_Asaadkhex_6x6u (6x6 UART Bussbar Switch) tt_um_wokwi_469809198944364545 (tt8-8bit-cpu Copy) tt_um_wokwi_469710279607305217 (Tiny Tapeout Submission KL - SiliDize) tt_um_wokwi_469629799092815873 (2:1 Mux with differential outputs) tt_um_poundbrad_reciprocal_counter (Two-Channel Reciprocal Counter) tt_um_joonatanalanampa_cordic (CORDIC-1) tt_um_x4ntha_nova (Data General Nova 1200 CPU) tt_um_quick_bus (quick_bus) tt_um_wokwi_470058539448408065 (Nigel's Tiny Tapeout Project) tt_um_wokwi_470058244557293569 (Tiny Tapeout Kabisan) tt_um_wokwi_470058241869790209 (Abdi's desgin) tt_um_wokwi_470060107756808193 (Sukhraj Deol's Chip) tt_um_wokwi_470058578588614657 (The Chip of Master George Stead) tt_um_wokwi_470069286344622081 (Tiny Tapeout ISHA) tt_um_ucl_display (Flashing... lights) tt_um_wokwi_470058746279043073 (Arihant's first Wokwi design) tt_um_wokwi_470060103260512257 (Tiny Tapeout Jabriel Copy) tt_um_wokwi_470069460157662209 (haadi's tiny tapeout) tt_um_wokwi_470058418706939905 (Kitty) tt_um_wokwi_470058490118136833 (Iris) tt_um_wokwi_470060098828179457 (Temz_ tiny tapeout) tt_um_wokwi_470058023187099649 (Osman WOKWI project 1) tt_um_wokwi_470057988621827073 (Viraj Tiny Template Full Adder TEST) tt_um_wokwi_470069802034377729 (Tiny Tapeout Template Copy) tt_um_wokwi_470070136685362177 (full adder) tt_um_wokwi_470070449402211329 (Anastasia Copy (2)) tt_um_wokwi_470059864883484673 (Keyaan’s first Wokwi design) tt_um_wokwi_470071200164912129 (full adder tiny tapeout Copy) tt_um_wokwi_470060671178857473 (SBUSixth First Chip Design Mentored by Tiny Tapeout) tt_um_wokwi_470099562753182721 (Isaac Tiny Tapeout) tt_um_wokwi_470120538476737537 (efwz8voices) tt_um_lelo_gr01_analogicus (LELO-GR01) tt_um_lelo_gr04_analogicus (LELO-GR04) tt_um_lelo_gr02_analogicus (LELO-GR02) tt_um_pump_out (60 Hz RMS Pump-Out Controller) tt_um_urish_simon (Simon Says memory game) tt_um_lelo_gr03_analogicus (LELO-GR03) tt_um_wokwi_470299374901578753 (Shrimp) tt_um_vga_clock (VGA clock) tt_um_frequency_counter (Frequency counter) tt_um_z2a_rgb_mixer (RGB Mixer demo) tt_um_mattvenn_r2r_dac_3v3 (Analog 8 bit 3.3v R2R DAC) tt_um_rebeccargb_universal_decoder (Universal Binary to Segment Decoder) tt_um_rebeccargb_hardware_utf8 (Hardware UTF Encoder/Decoder) tt_um_rebeccargb_intercal_alu (INTERCAL ALU) tt_um_rebeccargb_vga_pride (VGA Pride) tt_um_ogggggish_ota_ldo (SSF Capless LDO) tt_um_hariri4534_audioplayback (audioplayback) tt_um_wokwi_470637150792846337 (Joni - 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