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Skills/anthropics/financial-services/clean-data-xls
clean-data-xls logo

clean-data-xls

anthropics/financial-services
557 installs34K stars
Run it on Hostinger, 20% off →Your friend gets 20% off too, using this linkFree API →|View on GitHub|Create your own skill →

Installation

npx skills add https://github.com/anthropics/financial-services --skill clean-data-xls

Summary

Clean up messy spreadsheet data — trim whitespace, fix inconsistent casing, convert numbers-stored-as-text, standardize dates, remove duplicates, and flag mixed-type columns. Use when data is messy, inconsistent, or needs prep before analysis. Triggers on "clean this data", "clean up this sheet", "normalize this data", "fix formatting", "dedupe", "standardize this column", "this data is messy".

SKILL.md

Clean Data

Clean messy data in the active sheet or a specified range.

Environment

  • If running inside Excel (Office Add-in / Office JS): Use Office JS directly (Excel.run(async (context) => {...})). Read via range.values, write helper-column formulas via range.formulas = [["=TRIM(A2)"]]. The in-place vs helper-column decision still applies.
  • If operating on a standalone .xlsx file: Use Python/openpyxl.

Workflow

Step 1: Scope

  • If a range is given (e.g. A1:F200), use it
  • Otherwise use the full used range of the active sheet
  • Profile each column: detect its dominant type (text / number / date) and identify outliers

Step 2: Detect issues

IssueWhat to look for
Whitespaceleading/trailing spaces, double spaces
Casinginconsistent casing in categorical columns (usa / USA / Usa)
Number-as-textnumeric values stored as text; stray $, ,, % in number cells
Datesmixed formats in the same column (3/8/26, 2026-03-08, March 8 2026)
Duplicatesexact-duplicate rows and near-duplicates (case/whitespace differences)
Blanksempty cells in otherwise-populated columns
Mixed typesa column that's 98% numbers but has 3 text entries
Encodingmojibake (é, ’), non-printing characters
Errors#REF!, #N/A, #VALUE!, #DIV/0!

Step 3: Propose fixes

Show a summary table before changing anything:

ColumnIssueCountProposed Fix

Step 4: Apply

  • Prefer formulas over hardcoded cleaned values — where the cleaned output can be expressed as a formula (e.g. =TRIM(A2), =VALUE(SUBSTITUTE(B2,"$","")), =UPPER(C2), =DATEVALUE(D2)), write the formula in an adjacent helper column rather than computing the result in Python and overwriting the original. This keeps the transformation transparent and auditable.
  • Only overwrite in place with computed values when the user explicitly asks for it, or when no sensible formula equivalent exists (e.g. encoding/mojibake repair)
  • For destructive operations (removing duplicates, filling blanks, overwriting originals), confirm with the user first
  • After each category of fix (whitespace → casing → number conversion → dates → dedup), show the user a sample of what changed and get confirmation before moving to the next category
  • Report a before/after summary of what changed

Score

0–100
75/ 100

Grade

B

Popularity17/30

557 installs — growing adoption. Source repo has 34,157 GitHub stars.

Completeness27/30

Documented: full SKILL.md body, description, one-line install. Missing: category/license metadata.

Trust25/25

Published by anthropics — an official/recognized organization.

Freshness6/15

No update timestamp is tracked for this skill in our catalog.

Scored automatically from popularity, completeness, trust, and freshness — computed only from data in our catalog, never fabricated.

Proud of your score? Add this badge to your README.

Paste a snippet into your GitHub README. The badge updates automatically and links back to this page.

Clean Data Xls skill score badge previewScore badge

Markdown

[![Clean Data Xls skill](https://www.claudemarket.ai/skills/anthropics/financial-services/clean-data-xls/badges/score.svg)](https://www.claudemarket.ai/skills/anthropics/financial-services/clean-data-xls)

HTML

<a href="https://www.claudemarket.ai/skills/anthropics/financial-services/clean-data-xls"><img src="https://www.claudemarket.ai/skills/anthropics/financial-services/clean-data-xls/badges/score.svg" alt="Clean Data Xls skill"/></a>

Clean Data Xls FAQ

How do I install the Clean Data Xls skill?

Run “npx skills add https://github.com/anthropics/financial-services --skill clean-data-xls” in your terminal. The skill is added to your agent's skills directory and picked up automatically on the next run — no restart or extra configuration needed.

What does the Clean Data Xls skill do?

Clean up messy spreadsheet data — trim whitespace, fix inconsistent casing, convert numbers-stored-as-text, standardize dates, remove duplicates, and flag mixed-type columns. Use when data is messy, inconsistent, or needs prep before analysis. Triggers on "clean this data", "clean up this sheet", "normalize this data", "fix formatting", "dedupe", "standardize this column", "this data is messy". The full SKILL.md on this page shows the exact instructions the skill gives your agent.

Is the Clean Data Xls skill free?

Yes. Clean Data Xls is a free, open-source skill published from anthropics/financial-services. As with any third-party skill, review the source repository before installing it into an agent with sensitive access.

Does Clean Data Xls work with Claude Code and OpenClaw?

Yes. Skills use the portable SKILL.md format, so Clean Data Xls works with Claude Code, OpenClaw, Codex, Hermes, and any other agent that reads SKILL.md skills.

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