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| -rw-r--r-- | README.md | 11512 | logstatsplainblame |
| -rw-r--r-- | TODO | 3497 | logstatsplainblame |
| d--------- | docs | 341 | logstatsplain |
| d--------- | experiments | 529 | logstatsplain |
| -rw-r--r-- | ida-codemode-mcp.patch | 256600 | logstatsplainblame |
| -rwxr-xr-x | ida-tui | 830 | logstatsplainblame |
| d--------- | idatui | 942 | logstatsplain |
| -rw-r--r-- | logo-trans.png | 1740746 | logstatsplainblame |
| -rw-r--r-- | logo.ans | 40439 | logstatsplainblame |
| -rw-r--r-- | logo.png | 818833 | logstatsplainblame |
| d--------- | plan | 34 | logstatsplain |
| -rw-r--r-- | pyproject.toml | 794 | logstatsplainblame |
| -rw-r--r-- | rehearsed-engineer.md | 452 | logstatsplainblame |
| d--------- | tests | 821 | logstatsplain |
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ida-tui
A minimal, keyboard-first (mouse-capable) TUI frontend for IDA Pro, built with Textual and using ida-codemode-mcp as a Python library.
ida-tui attaches to databases through ida_codemode.client.DatabaseHandle. A
matching database already open in the IDA GUI is reused; otherwise Code Mode
reuses or starts a shared managed idalib worker. The TUI owns only a client lease,
never the GUI or worker process.
⚠️ Status: not ready for public consumption
This is a personal, actively-hacked-on project. It is not packaged, polished, or supported for general use. Expect sharp edges:
- Hardcoded paths and assumptions (e.g. a venv at
~/ida-venv, a specific IDA/idalib layout). - No stable API, no versioning promises, no changelog — things move and break.
- Requires a working IDA Pro + idalib install, which you must license and set up yourself.
- Known open bugs (see the backlog below), including no handling of PLT/import stubs.
- Basically undocumented beyond this file and
docs/.
If you found this expecting a finished tool: it isn't one yet. Poke around, but don't file expectations. Use at your own risk.
What it does
- A unified IDA-style listing (continuous disassembly interleaved with data /
undefined heads) as the default code view;
F5/Tabdrops into the decompiler (pseudocode) for the function under the cursor. Both are line-virtualized and page lazily over the Code Mode database. - The startup splash draws the real logo image on terminals that speak the
kitty graphics protocol (~10× the resolution of the block art), and falls back
to
logo.anseverywhere else. Support is detected by asking the terminal, not by sniffing$TERM— under a multiplexer that passes the protocol through, every environment variable you'd test is empty while the protocol works fine. - A control-flow graph (
space, IDA's own key): the current function's basic blocks as boxes with routed, colour-coded edges (green taken / red fall-through / blue unconditional / purple loop), laid out with a proper layered (Sugiyama) algorithm. The boxes hold the same listing rows as the text view, so highlighting, renames, xrefs and comments all work inside them.zcycles three zoom levels,mtoggles a minimap,J/Kwalk edges, and the mode is sticky — following a call lands in the callee's graph. Above 400 blocks it declines and says so, because nothing readable comes out at that size. Details indocs/GRAPH_VIEW.md. - A Ghidra-style split view (
s): listing and pseudocode side by side, kept in cursor sync — the focused pane drives and the other highlights the linked region (every instruction a C line owns), following you across functions.Tabor a click switches which pane leads. - Keyboard navigation: follow (
enter), xrefs (x, tagged call/read/write/ offset), rename (n), retype (y), comment (;), incremental search (/?), history (back), hex view (\), andhome/end/shift+homeline motions. - Literal formats (
o, IDA's own key): cycle how the number under the cursor is displayed — hex → decimal → binary → character → offset → IDA's own choice,Oto go the other way. Only the stops that make sense for that value are visited (nocharunless it prints as one, nooffsetunless the target is something you could name), so no press is a silent no-op. It works in the pseudocode too, on Hex-Rays' separate number formats. The opcode-bytes column, which used to owno, moved toB.
A line usually holds more than one literal (test byte ptr [rsi+rax*2+1], 20h
has two), so the one the cursor is on is marked — that mark is what o
changes, and it keeps up as the text reflows (0x30 ↔ 48 move everything
after them). Land on something with no format of its own — a register — and it
says so and names the operand that does, rather than quietly reformatting a
different one.
- A functions panel (fuzzy symbol palette on Ctrl+N), a strings browser
(", filterable, Enter jumps to the literal), hex viewer, struct
editor, and inline make code/data/function/string edits.
- A command palette (Ctrl+P) with the real ida-tui actions.
- An optional unix-socket RPC layer to puppeteer the live TUI from another
process (agent-driven RE / livestreaming). See docs/RPC.md.
Architecture (three layers, kept separate)
idatui/codemode_client.py— lifecycle and execution adapter. It leases a registered GUI/idalib instance withDatabaseHandle, waits for autoanalysis, normalizes errors, saves, and releases the lease. Address-centric operations are sent through Code Mode'sexecute_pythonsurface and use its preloadedida-domaindbobject.idatui/domain.py— synchronous, thread-safe paging/caching (FunctionIndex,DisasmModel,ListingModel, decompile, xrefs, resolve). It has no process/database ownership logic.idatui/app.py— the Textual app (virtualizedScrollViews, shared cursor/ search/nav mixins, modals).
idatui/pool.py retains LRU project leases. Releasing an entry never kills a GUI
or another client's worker. See docs/CODEMODE_PORT.md for what maps to public
ida-domain APIs and which remaining features require IDAPython inside the Code
Mode execution sandbox.
Requirements
- Python ≥ 3.11
- IDA Pro 9.4+ with idalib configured
ida-codemode-mcpinstalled in the TUI environment (this checkout uses the editable sibling path../ida-codemode-mcp)- The ida-codemode IDA plugin installed so GUI databases register themselves
- Textual ≥ 8 and Pygments ≥ 2 (
uv syncinstalls both)
Code Mode's own worker launcher carries the correct Python environment; ida-tui
no longer searches for a second Python or imports ida_pro_mcp.
Running
Install the project and its TUI dependencies:
uv sync
Pass an executable/IDB path. If the plugin has registered a matching GUI session, ida-tui attaches to it; otherwise Code Mode opens a managed idalib database:
./ida-tui /path/to/binary
With exactly one registered database, the path may be omitted:
./ida-tui
When several databases are registered, the launcher lists their paths and asks for one explicitly. A newly managed single-binary database still needs a writable output location; projects stage binaries and IDBs in their sidecar directory.
Headerless blobs need to be told what they are — a raw firmware dump has no format to detect, and IDA falls back to x86 at address 0, which analyses to nothing:
./ida-tui fw.bin --processor arm --base 0x8000000
ARM images that use Thumb need one more thing: press t on the listing to switch
ARM/Thumb decoding at the cursor (it sets IDA's T register, and the segment to
32-bit, since Thumb doesn't exist in AArch64).
--base is a real address (Code Mode's typed loading address is also natural,
so no paragraph conversion crosses the dependency boundary). In a project the
options are recorded per binary. They apply only when Code Mode must create the
first database; a registered or existing IDB already records them. Arbitrary
--ida-args are rejected because DatabaseHandle.open() has no equivalent;
processor, base, and loader/file type are the supported import surface.
ida-tui never deletes unpacked IDA scratch files during discovery: those files may belong to a registered GUI or another Code Mode client. Registry locks and health probes are the ownership authority.
Execution traces
Load a Tenet trace alongside the binary and explore it in time:
./ida-tui /path/to/binary --trace trace.0.log
A docked pane on the right shows the registers at the current timestamp (the
ones the current instruction wrote are highlighted) and a timeline. ] and [
step one instruction forward and back; } and { step over a call by following
the stack pointer. The code view follows.
Both code views are painted with the execution trail: where you just came from,
where you're about to go, and the instruction you're standing on. The pseudocode
view is painted too — a trace records instructions, but decomp_map says which
instructions each C line covers, so the same trail lands on the decompilation.
The dock also shows the stack as of that instant, read out of the trace.
Bytes the trace never observed print as ?? rather than zeros — a trace knows
what it saw and nothing else. The hex view (\) gets the same treatment: bytes
the trace saw at this timestamp are shown in green over the file's own contents.
Trace addresses are rebased onto the database automatically — a traced process is relocated, so nothing lines up until that's solved.
Traces are recorded separately; see ~/dev/tenet/tenet-original/tracers/ for the
QEMU tracer.
RPC / driving the TUI
Give the TUI --rpc <sock> to expose a unix-socket control channel, then drive
it from another pane:
./ida-tui /abs/path/bin --rpc /tmp/ida.sock
python -m idatui.drive where # ergonomic terse-text helper
python -m idatui.drive pc main # pseudocode of main
python -m idatui.drive rename sub_5BE0 foo # goto + rename
python -m idatui.drive fmt dec # show this literal in decimal
Or let idatui.pane spawn + manage TUI panes in tmux (see the idatui-rpc skill):
python -m idatui.pane spawn --open /abs/path/bin # -> {sock, pane, ready}
python -m idatui.pane list
python -m idatui.pane stop --sock <sock>
See docs/RPC.md for the full protocol.
Tests
tests/run.py is the front door — it runs every suite and prints one table.
The live suites attach through Code Mode (a registered GUI database, or a managed
idalib worker started on demand) for the given binary:
python3 tests/run.py --fast # 257 checks, ~0.5s, any python3 — between edits
python3 tests/run.py trace -x # only files matching "trace", stop at first failure
python3 tests/run.py # all 733 checks, ~2m20s — before a commit
python3 tests/run.py --list # what would run, and whether it needs IDA
It runs the suites serially on purpose: idalib contends hard enough that
running them 4-up took the suite from 153s to 296s and got three of them killed
mid-analysis. See the note in tests/run.py.
Test files come in two kinds and each one declares which with a module-level
NEEDS_IDA marker (run.py reads it without importing the file, and refuses to
run if a file doesn't have one):
- pure — stdlib only, no IDA, no worker, no binary. Seconds. This is what you run between edits.
- IDA — spawns a real idalib worker on a real target and drives the headless
Textual
Pilotagainst it. Minutes, and needs a licensed IDA.
The individual suites still run standalone, which is how you iterate on one:
~/ida-venv/bin/python tests/test_scenarios.py targets/echo # full UI suite
~/ida-venv/bin/python tests/test_scenarios.py --only hex,rename
Docs
docs/RPC.md— the RPC protocoldocs/CODEMODE_PORT.md— port coverage, API gaps, and lifecycle semanticsdocs/PAGING_FINDINGS.md— historical paging/scale findingsdocs/TEXTUAL_NOTES.md— Textual pitfalls encountereddocs/TUI_DRIVING_BLUEPRINT.md— generalizing the driving layer
