xlsx
Use this skill any time a spreadsheet file is the primary input or output. This means any task where the user wants to: open, read, edit, or fix an existing .xlsx, .xlsm, .xltx, .csv, or .tsv file (e.g., adding columns, computing formulas, formatting, charting, cleaning messy data); create a new spr…
Install / Use
npx skills add anthropics/skills --skill xlsxInstalls into whichever agent you are using.
SKILL.md
Installable skill definition
Quality Score
Category
Data & AnalyticsSupported Platforms
Tags
Our assessment of xlsx
xlsx scores 93/100 on our quality scale, 9th of 122 Data & Analytics skills we index (top 8%).
Its SKILL.md is 8.3 KB long, split into 7 sections with 1 code example: a thorough specification that gives an agent plenty to work with.
With 177,889 GitHub stars, it is one of the more widely adopted skills in the catalogue.
Maintenance, license and trust
- The repository was last updated 2 days ago, so xlsx is actively maintained.
- No license is declared. By default that means all rights are reserved: you can read it, but reusing or redistributing it is not clearly permitted. Ask the author before building on it commercially.
- Its trust signals score 88/100, with 1 caution from licensing, adoption, age or documentation. These come from repository metadata, not a code audit — read the skill file before letting an agent act on it.
Safety scan
No issues foundOur scan of the whole file found no instruction hijacking, hidden characters, credential access, data exfiltration or destructive commands.
Automated pattern scan on 2026-09-24. It catches known dangerous patterns, not every risk — read a skill before letting an agent act on it.
xlsx compared with similar skills
All 4 of these similar skills score higher than xlsx; compare them before choosing.
| Skill | Score | Stars | Updated | Format |
|---|---|---|---|---|
| xlsx (this skill)by anthropics | 93 | 177.9k | 2d ago | SKILL.md |
| algorithmic-artby anthropics | 100 | 177.9k | 2d ago | SKILL.md |
| pptxby anthropics | 100 | 177.9k | 2d ago | SKILL.md |
| designby nextlevelbuilder | 100 | 130.2k | 3d ago | SKILL.md |
| ui-ux-pro-maxby nextlevelbuilder | 100 | 130.2k | 3d ago | SKILL.md |
Frequently asked questions
- How do I install xlsx?
- Run
npx skills add anthropics/skills --skill xlsx. The install tabs above show the steps for each supported agent. - Which AI agents does xlsx work with?
- It is written for Universal, as a SKILL.md file. Other agents that read the same format can often use it too.
- Is xlsx safe to use?
- Our scan of the whole file found no instruction hijacking, hidden characters, credential access, data exfiltration or destructive commands. It declares no license and scores 88/100 on trust signals. Skills are instructions an agent will follow, so read the file before installing it and do not approve commands you do not understand.
- Is xlsx still maintained?
- The repository was last updated 2 days ago, so xlsx is actively maintained.
Skill content
View source on GitHubname: xlsx description: "Use this skill any time a spreadsheet file is the primary input or output. This means any task where the user wants to: open, read, edit, or fix an existing .xlsx, .xlsm, .xltx, .csv, or .tsv file (e.g., adding columns, computing formulas, formatting, charting, cleaning messy data); create a new spreadsheet from scratch or from other data sources; or convert between tabular file formats. Trigger especially when the user references a spreadsheet file by name or path — even casually (like "the xlsx in my downloads") — and wants something done to it or produced from it. Also trigger for cleaning or restructuring messy tabular data files (malformed rows, misplaced headers, junk data) into proper spreadsheets. The deliverable must be a spreadsheet file. Do NOT trigger when the primary deliverable is a Word document, HTML report, standalone Python script, database pipeline, or Google Sheets API integration, even if tabular data is involved." license: Proprietary. LICENSE.txt has complete terms
XLSX creation, editing, and analysis
| Task | Approach |
|---|---|
| Create or edit with formulas/formatting | openpyxl — see gotchas below |
| Bulk data in or out | pandas (read_excel, to_excel) |
| Quick look at a sheet | markitdown file.xlsx — ## SheetName per sheet; reads .xlsm too. No cell coordinates, so don't plan edits from it |
| Read a model (formulas and values) | two load_workbook passes — see gotchas |
openpyxl,pandas, andmarkitdownare preinstalled — do not runpip installfirst; write the script and import directly. Only if an import fails (or themarkitdowncommand is missing):pip installthe missing package.
Script paths below are relative to this skill's directory.
Requirements for every output
- Professional font (Arial, Times New Roman) throughout, unless the user says otherwise.
- Zero formula errors. Never ship while
recalc.pyreportserrors_found. If you think an error predates you, prove it: load the original withdata_only=Trueand look at that cell. An error you introduced looks exactly like one you inherited. - Use formulas, never hardcoded results. Write
sheet['B10'] = '=SUM(B2:B9)', not the Python-computed total. The sheet must recalculate when its inputs change. - Follow the user's spec literally. Exact tab names, exact column headers, and the formula they spelled out. A redesign that computes something else fails, however elegant.
- Document every assumption and hardcoded number where the reader will see it — a cell comment, or an adjacent cell at a table's end. Cite a real source when one exists (
Source: Company 10-K, FY2024, Page 45, Revenue Note, [SEC EDGAR URL]); when the number came from the user, say so plainly. - A workbook you create for someone to fill in needs a short legend naming which cells to edit, and one example row of realistic values showing the expected format. Never add such a row to a file you were asked to edit.
- Editing an existing file: match its conventions exactly. They override every guideline here. Find its designated input cells first — a distinct font color, fill, or shading marks them — write only there, and leave every existing formula untouched.
Recalculate (mandatory whenever the file contains formulas)
openpyxl writes formulas as strings with no cached values. Until you recalculate, every
formula cell reads back as None to anything reading cached values — pandas,
load_workbook(data_only=True), and most previewers.
python scripts/recalc.py output.xlsx [timeout_seconds] # default 30
LibreOffice computes every formula, the file is rewritten in place, and you get JSON:
status (success | errors_found), total_formulas, total_errors, and an
error_summary naming up to 100 cells per error type (locations_truncated says how many it
withheld — trust total_errors, not the length of the list). Fix what it names and run it
again. JSON with an error key instead of a status means nothing was recalculated, and
only that case exits non-zero — errors_found exits 0, so never treat a clean exit as a clean
workbook.
A green recalc proves your formulas evaluate, not that they are right. An off-by-one range or a reference to the wrong row yields a clean, error-free file with wrong numbers. Write 2–3 formulas first and check they pull the values you expect, before building out a grid.
A workbook that links to another file loses those links if you re-save it with openpyxl and
then recalculate. Such a formula reads ='[1]Returns Analysis'!$B$2 — the [1] is an index
into the workbook's external-reference list, naming a separate file on disk, not a sheet.
That file is rarely present here, so the cell's cached value is the only thing holding its
data. openpyxl strips that value on save; LibreOffice then has to resolve the reference for
real, fails, writes #NAME?, and deletes every link. recalc.py refuses to run in that state
— copy those cells' values out of the original before you save over them (--force overrides,
and accepts the loss).
Choosing formulas that survive verification
LibreOffice implements fewer functions than Excel, and one it cannot evaluate becomes a
literal #NAME? baked into the file you deliver.
- Prefer Excel-2007-era functions —
SUMIFS,INDEX,MATCH,IFERROR,SUMPRODUCT— which need no prefix. - Six post-2007 functions work, but only with an
_xlfn.prefix, because openpyxl writes your formula into the XML verbatim and Excel stores post-2007 names prefixed (its UI hides the prefix):_xlfn.TEXTJOIN,_xlfn.CONCAT,_xlfn.IFS,_xlfn.SWITCH,_xlfn.MAXIFS,_xlfn.MINIFS. Written bare, each yields#NAME?. - Never use
XLOOKUP,XMATCH,SORT,FILTER,UNIQUE, orSEQUENCE. The runtime's LibreOffice cannot evaluate them under any prefix. Newer builds do evaluate them, but they are spilling array functions and an openpyxl-written file has no spill metadata, so only the top-left cell of the range gets a value — andrecalc.pyreportstotal_errors: 0on the truncated result. UseINDEX/MATCHfor lookups, and sort, filter, and de-duplicate in Python before writing the cells. - A formula LibreOffice could not parse is written back lowercased — a quick tell beside a
#NAME?.
openpyxl gotchas
- Reading a model takes two loads.
data_only=Trueyields cached values with the formulas gone; the default yields formula strings with no values. One pass cannot give you both. data_only=Trueis destructive if you save. That workbook has no formulas left, so saving replaces every one with a literal — permanently.data_only=Trueon a file openpyxl just wrote returnsNoneeverywhere — runrecalc.pyfirst. (A formula whose result is""also reads back asNone.)- Merged cells: write the top-left anchor only. Every other cell in the range is a
MergedCellwhose.valueis read-only. .xlsmloses its macros unless you passkeep_vba=Truetoload_workbook.- A sheet name containing a space must be quoted in a cross-sheet reference:
='Assumptions Inputs'!$B$5. Unquoted, it evaluates to#VALUE!.
Financial models
Unless the user says otherwise, or the existing file already does something else.
Color: blue text (0,0,255) for hardcoded inputs and scenario levers · black for formulas ·
green (0,128,0) for links to another sheet · red (255,0,0) for links to another file ·
yellow fill (255,255,0) for key assumptions and cells the user should fill in.
Numbers: currency $#,##0, with the unit named in the header (Revenue ($mm)) · zeros
render as -, including in percentages ($#,##0;($#,##0);-) · negatives in parentheses ·
percentages 0.0%, stored as fractions (0.15 renders 15.0%; storing 15 renders
1500.0%) · valuation multiples 0.0x · years as text ("2024", never 2,024).
Structure: every assumption in its own labeled cell, referenced by the formulas that use it
(=B5*(1+$B$6), never =B5*1.05) · formulas consistent across every projection period, since a
lone edited cell mid-row is the commonest silent error · guard denominators that can be zero.
Dependencies
openpyxl, pandas, markitdown (pip, preinstalled — install only if an import fails or the command is missing) · LibreOffice (soffice, auto-configured for sandboxed environments via scripts/office/soffice.py)
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Languages
Trust signals
From repository metadata: license, adoption, age and documentation. Not a code audit — see the Safety scan above for what the skill file itself contains.
