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docs: write small guide for using pyosys
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7 changed files with 292 additions and 1 deletions
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@ -11,6 +11,10 @@ indent_style = space
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indent_size = 2
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trim_trailing_whitespace = false
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[*.rst]
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indent_style = space
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indent_size = 3
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[*.yml]
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indent_style = space
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indent_size = 2
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1
docs/.gitignore
vendored
1
docs/.gitignore
vendored
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@ -6,3 +6,4 @@
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/source/_images/**/*.svg
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/source/_images/**/*.dot
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/source/_images/code_examples
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/venv
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37
docs/source/code_examples/pyosys/pass.py
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37
docs/source/code_examples/pyosys/pass.py
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@ -0,0 +1,37 @@
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from pyosys import libyosys as ys
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class AllEnablePass(ys.Pass):
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def __init__(self):
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super().__init__(
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"all_enable",
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"makes all _DFF_P_ registers require an enable signal"
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)
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def execute(self, args, design):
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ys.log_header(design, "Adding enable signals\n")
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ys.log_push()
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top_module = design.top_module()
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if "\\enable" not in top_module.wires_:
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enable_line = top_module.addWire("\\enable")
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enable_line.port_input = True
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top_module.fixup_ports()
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for cell in top_module.cells_.values():
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if cell.type != "$_DFF_P_":
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continue
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cell.type = "$_DFFE_PP_"
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cell.setPort("\\E", ys.SigSpec(enable_line))
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ys.log_pop()
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p = AllEnablePass() # register the pass
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# using the pass
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design = ys.Design()
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ys.run_pass("read_verilog tests/simple/fiedler-cooley.v", design)
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ys.run_pass("hierarchy -check -auto-top", design)
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ys.run_pass("synth", design)
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ys.run_pass("all_enable", design)
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ys.run_pass("write_verilog out.v", design)
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ys.run_pass("synth_ice40 -json out.json", design)
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51
docs/source/code_examples/pyosys/simple_database.py
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51
docs/source/code_examples/pyosys/simple_database.py
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@ -0,0 +1,51 @@
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from pyosys import libyosys as ys
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# loading design
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design = ys.Design()
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ys.run_pass("read_verilog tests/simple/fiedler-cooley.v", design)
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ys.run_pass("hierarchy -check -auto-top", design)
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# top module inspection
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top_module = design.top_module()
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for id, wire in top_module.wires_.items():
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if not wire.port_input and not wire.port_output:
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continue
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description = "input" if wire.port_input else "output"
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description += " " + wire.name.str()
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if wire.width != 1:
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frm = wire.start_offset
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to = wire.start_offset + wire.width
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if wire.upto:
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to, frm = frm, to
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description += f" [{to}:{frm}]"
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print(description)
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# synth
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ys.run_pass("synth", design)
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# adding the enable line
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enable_line = top_module.addWire("\\enable")
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enable_line.port_input = True
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top_module.fixup_ports()
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# hooking the enable line to the internal dff cells
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for cell in top_module.cells_.values():
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if cell.type != "$_DFF_P_":
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continue
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cell.type = "$_DFFE_PP_"
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cell.setPort("\\E", ys.SigSpec(enable_line))
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# run check
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top_module.check()
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ys.run_pass("stat", design)
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# write outputs
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ys.run_pass("write_verilog out.v", design)
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ys.run_pass("synth_ice40 -json out.json", design)
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@ -17,3 +17,4 @@ ways Yosys can interact with designs for a deeper investigation.
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more_scripting/index
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bugpoint
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verilog
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pyosys
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197
docs/source/using_yosys/pyosys.rst
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197
docs/source/using_yosys/pyosys.rst
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@ -0,0 +1,197 @@
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Scripting with Pyosys
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=====================
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Pyosys is a limited subset of the Yosys C++ API (aka "libyosys") made available
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using the Python programming language.
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It offers access both to writing Yosys scripts like ``.ys`` and ``.tcl`` files
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with the amenities of the Python programming language (functions, flow control,
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etc), but also allows some access to internal data structures at the same time
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unlike those two platforms, allowing you to also implement complex functionality
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that is would otherwise not possible without writing custom passes using C++.
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Getting Pyosys
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--------------
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Pyosys supports Python 3.8.1 or higher. You can access Pyosys using one of two
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methods:
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1. Compiling Yosys with the Makefile flag ``ENABLE_PYOSYS=1``
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This adds the flag ``-y`` to the Yosys binary, which allows you to execute
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Python scripts using an interpreter embedded in Yosys itself:
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``yosys -y ./my_pyosys_script.py``
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2. Installing the Pyosys wheels
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On macOS and GNU/Linux (specifically, not musllinux,) you can install
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pre-built wheels of Yosys using ``pip`` as follows:
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``python3 -m pip install pyosys``
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Which then allows you to run your scripts as follows:
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``python3 ./my_pyosys_script.py``
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Scripting and Database Inspection
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---------------------------------
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To start with, you have to import libyosys as follows:
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.. code-block:: python
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from pyosys import libyosys
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As a reminder, Python allows you to alias imported modules and objects, so
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this import may be preferable for terseness:
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.. code-block:: python
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from pyosys import libyosys as ys
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Now, scripting is actually quite similar to ``.ys`` and ``.tcl`` script in that
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you can provide mostly text commands. Albeit, you can construct your scripts
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to use Python's amenities including flow controls, loops, and functions:
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.. code-block:: python
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do_flatten = True
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ys.run_pass("read_verilog tests/simple/fiedler-cooley.v")
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ys.run_pass("hierarchy -check -auto-top")
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if do_flatten:
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ys.run_pass("flatten")
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…but this does not provide anything that Tcl scripts do not provide you with.
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The real power of using Pyosys comes from the fact you can manually instantiate,
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manage, and interact with the design database.
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As an example, here is the same script with a manually instantiated design.
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.. literalinclude:: /code_examples/pyosys/simple_database.py
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:start-after: loading design
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:end-before: top module inspection
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:language: python
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What's new here is that you can manually inspect the design's database. This
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gives you access to huge chunk of the design database API as in declared in the
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``kernel/rtlil.h`` header.
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For example, here's how to list the input and output ports of the top module
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of your design:
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.. literalinclude:: /code_examples/pyosys/simple_database.py
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:start-after: top module inspection
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:end-before: # synth
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:language: python
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.. tip::
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C++ data structures in Yosys are bridged to Python such that they have a
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pretty similar API to Python objects, for example:
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- ``std::vector`` supports the same methods as iterables in Python.
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- ``std::set`` and hashlib ``pool`` support the same methods as ``set``\s in
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Python.
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- ``dict`` supports the same methods as ``dict``\s in Python, albeit it is
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unordered, and modifications may cause a complete reordering of the
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dictionary.
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For most operations, the Python equivalents are also supported as arguments
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where they will automatically be cast to the right type, so you do not have
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to manually instantiate the right underlying C++ object(s) yourself.
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Modifying the Database
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----------------------
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.. warning::
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Any modifications to the database may invalidate previous references held
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by Python, just as if you were writing C++. Pyosys does not currently attempt
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to keep deleted objects alive if a reference is held by Python.
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You are not restricted to inspecting the database either: you have the ability
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to modify it, and introduce new elements and/or changes to your design.
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As a demonstrative example, let's assume we want to add an enable line to all
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flip-flops in our fiedler-cooley design.
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First of all, we will run :yoscrypt:`synth` to convert all of the logic to Yosys's
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internal cell structure (see :ref:`sec:celllib_gates`):
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.. literalinclude:: /code_examples/pyosys/simple_database.py
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:start-after: # synth
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:end-before: adding the enable line
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:language: python
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Next, we need to add the new port. The method for this is ``Module::addWire``\.
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.. tip::
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IdString is Yosys's internal representation of strings used as identifiers
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within Verilog designs. They are efficient as only integers are stored and
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passed around, but they can be translated to and from normal strings at will.
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Pyosys will automatically cast Python strings to IdStrings for you, but the
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rules around IdStrings apply, namely that *broadly*:
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- Identifiers for internal cells must start with ``$``\.
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- All other identifiers must start with ``\``\.
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.. literalinclude:: /code_examples/pyosys/simple_database.py
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:start-after: adding the enable line
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:end-before: hooking the enable line
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:language: python
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Notice how we modified the wire then called a method to make Yosys re-process
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the ports.
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Next, we can iterate over all constituent cells, and if they are of the type
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``$_DFF_P_``, we do two things:
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1. Change their type to ``$_DFFE_PP_`` to enable hooking up an enable signal.
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2. Hooking up the enable signal.
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.. literalinclude:: /code_examples/pyosys/simple_database.py
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:start-after: hooking the enable line
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:end-before: run check
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:language: python
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To verify that you did everything correctly, it is prudent to call ``.check()``
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on the module you're manipulating as follows:
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.. literalinclude:: /code_examples/pyosys/simple_database.py
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:start-after: run check
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:end-before: write output
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:language: python
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And then finally, write your outputs. Here, I choose an intermediate Verilog
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file and :yoscrypt:`synth_ice40` to map it to the iCE40 architecture.
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.. literalinclude:: /code_examples/pyosys/simple_database.py
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:start-after: write output
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:language: python
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And voila, you will note that in the intermediate output, all ``always @``
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statements have an ``if (enable)``\.
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Encapsulating as Passes
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-----------------------
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Just like when writing C++, you can encapsulate behavior in terms of "passes",
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which are the commands you access using ``run_pass``\. This adds it to a global
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registry of commands that you can use using ``run_pass``.
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.. literalinclude:: /code_examples/pyosys/pass.py
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:language: python
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In general, abstract classes and virtual methods are not really supported by
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Pyosys due to their complexity, but there are two exceptions which are:
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- ``Pass`` in ``kernel/register.h``
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- ``Monitor`` in ``kernel/rtlil.h``
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@ -29,7 +29,7 @@ class CellStatsPass(ys.Pass):
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plt.xticks(range(len(cell_stats)), list(cell_stats.keys()))
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plt.show()
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def py_clear_flags(self):
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def clear_flags(self):
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ys.log("Clear Flags - CellStatsPass\n")
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p = CellStatsPass() # register
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