MCP 서버

netcafe-tables

com.ainetcafe/netcafe-tables
데이터 및 분석 금융 및 투자 공개 · 연결 가능 MCP 2026-07-28

이 MCP로 할 수 있는 일

Cleans, converts, merges, compares, reconciles, and validates CSV, JSON, Excel, chart, and accounting bank-feed data.

clean_table
Messy CSV → tidy CSV, with a report of every change
Tidies a spreadsheet export: removes duplicate rows, trims whitespace (half-width and full-width — Chinese exports are full of  ), unifies the half-dozen ways a cell can say "empty" (NA / null / - / 无), drops empty rows and columns, and can split one column into several. Returns the cleaned CSV plus exactly what changed: rows in, rows out, duplicates removed, cells trimmed per column. It can also transpose rows/columns and unpivot a wide table into a long one. The row arithmetic is verified in code — if in − removed ≠ out, the response says so instead of handing back a table nobody can check. Use when a CSV came out of Excel or an export and needs cleaning before analysis.
읽기 전용 멱등성
입력 스키마
{'type': 'object', 'properties': {'ops': {'type': 'string', 'description': 'Comma-separated, default "dedupe,trim,drop_empty,unify_blank". Also available: split_column, transpose (swap rows/columns), wide_to_long (unpivot a wide table into the long format analysis tools expect).'}, 'url': {'type': 'string', 'description': 'Link to the CSV. Provide this or text.'}, 'keep': {'type': 'string', 'description': 'For wide_to_long: comma-separated id columns to keep as-is. Defaults to the first column.'}, 'text': {'type': 'string', 'description': 'The CSV content itself. Provide this or url.'}, 'split_by': {'type': 'string', 'description': 'Separator to split on, default a single space.'}, 'split_column': {'type': 'string', 'description': 'Column name to split (requires ops to include split_column).'}}}
출력 스키마
{'type': 'object', 'additionalProperties': True}
csv_to_chart
csv to chart
CSV (first column = labels, second = values) → chart PNG in one call.
입력 스키마
{'type': 'object', 'properties': {'csv': {}, 'url': {}, 'type': {}}, 'additionalProperties': True}
csv_to_json
csv to json
CSV (text or URL) → JSON array of objects (first row = keys). Returns a .json file.
입력 스키마
{'type': 'object', 'properties': {'csv': {}, 'url': {}}, 'additionalProperties': True}
csv_to_md_table
csv to md table
CSV (text or URL) → GitHub-flavoured Markdown table.
입력 스키마
{'type': 'object', 'properties': {'csv': {}, 'url': {}}, 'additionalProperties': True}
csv_to_qbo
Transaction CSV → QuickBooks .qbo bank feed file
Convert a transaction CSV into a .qbo / OFX bank-feed file that QuickBooks and similar accounting software import directly. Needs date, description and amount columns (or debit + credit). Pairs with extract_statement: statement PDF in, importable bank feed out.
읽기 전용 멱등성
입력 스키마
{'type': 'object', 'required': [], 'properties': {'csv': {'type': 'string', 'description': 'CSV content with a header row.'}, 'url': {'type': 'string', 'description': 'Or a link to the CSV.'}, 'bank_id': {'type': 'string', 'description': 'Routing / bank identifier, if your import asks for one.'}, 'currency': {'type': 'string', 'description': 'Three-letter currency code, default USD.'}, 'account_id': {'type': 'string', 'description': 'Your account number as the accounting software expects it.'}}}
출력 스키마
{'type': 'object', 'additionalProperties': True}
dedupe_entities
dedupe entities
Find records in a supplier/customer/store list that are probably the SAME entity under different names — "北京星辰科技有限公司" vs "星辰科技(北京)" — by cross-checking name similarity against hard identifiers: tax ID (统一社会信用代码, checksum-verified), phone, domain, bank account, address. It never merges anything: it returns candidate groups with the evidence for each link, pairs that need human review, and — just as
입력 스키마
{'type': 'object', 'properties': {'url': {}, 'bank': {}, 'name': {}, 'text': {}, 'phone': {}, 'sheet': {}, 'domain': {}, 'tax_id': {}, 'address': {}, 'name_threshold': {}}, 'additionalProperties': True}
diff_tables
Two tables → what differs (the VLOOKUP job, no amounts needed)
Matches rows across two CSVs on a key column and reports three things: keys only in A, keys only in B, and keys in both whose other columns disagree — naming the exact column and both values. Unlike reconcile_ledger this needs no amount column, so it also fits name lists, inventory counts, permission tables, and any "these two exports should match" check.
읽기 전용 멱등성
입력 스키마
{'type': 'object', 'required': ['key'], 'properties': {'key': {'type': 'string', 'description': 'Column that identifies a row, e.g. id.'}, 'url_a': {'type': 'string', 'description': 'Link to the first CSV.'}, 'url_b': {'type': 'string', 'description': 'Link to the second CSV.'}, 'text_a': {'type': 'string', 'description': 'Or the first CSV content directly.'}, 'text_b': {'type': 'string', 'description': 'Or the second CSV content directly.'}}}
출력 스키마
{'type': 'object', 'additionalProperties': True}
fix_csv_encoding
Fix a CSV that opens garbled in Excel
Detect the real encoding of a CSV (GB18030, Shift-JIS, Windows-1252…), repair mojibake (UTF-8 that was read as Latin-1, e.g. "é"), and re-emit UTF-8 with a BOM so Excel opens it correctly.
읽기 전용 멱등성
입력 스키마
{'type': 'object', 'required': [], 'properties': {'url': {'type': 'string', 'description': 'Public URL of the CSV.'}, 'text': {'type': 'string', 'description': 'Or paste the CSV content directly.'}}}
출력 스키마
{'type': 'object', 'additionalProperties': True}
json_to_csv
json to csv
JSON array of objects → CSV file. Flattens keys, quotes fields containing commas.
입력 스키마
{'type': 'object', 'properties': {'json': {}}, 'additionalProperties': True}
match_transactions
match transactions
Match bank statement lines to ledger/invoice entries when there is NO shared key — by amount, date window, reference numbers found inside free-text descriptions, and fuzzy counterparty names ("北京XX科技" vs "XX科技(北京)"). Handles split payments (one invoice paid in instalments, 1:N) and combined payments (one transfer covering several invoices, N:1). Its rule is: never guess — a pair is only auto-match
입력 스키마
{'type': 'object', 'properties': {'url_a': {}, 'url_b': {}, 'text_a': {}, 'text_b': {}, 'sheet_a': {}, 'sheet_b': {}, 'fee_tolerance': {}, 'max_group_size': {}, 'date_window_days': {}}, 'additionalProperties': True}
merge_tables
Several CSVs → one, columns unioned, row counts proven
Combines up to 20 CSVs into a single table. Headers do not have to match: columns are unioned and a file missing a column contributes blanks for it, so rows never shift silently — the failure mode that makes hand-merged spreadsheets untrustworthy. Reports each source file row count and checks in code that they sum to the merged total. Use for monthly exports, per-store sheets, or any set of files with the same subject but drifting headers.
읽기 전용 멱등성
입력 스키마
{'type': 'object', 'properties': {'urls': {'type': 'string', 'description': 'Comma-separated CSV links, at least two.'}, 'texts': {'type': 'array', 'items': {'type': 'string'}, 'description': 'Or pass the CSV contents directly as an array.'}}}
출력 스키마
{'type': 'object', 'additionalProperties': True}
read_xlsx
read xlsx
Read an Excel .xlsx workbook (by URL) into rows — every sheet, or one you name. Returns cell values (not formula text), dates as YYYY-MM-DD instead of Excel serial numbers, and keeps leading zeros so ID/postcode columns are not silently mangled. Says plainly which sheet it used, which sheets are hidden, and where merged cells left blanks, instead of guessing for you.
입력 스키마
{'type': 'object', 'properties': {'url': {}, 'sheet': {}, 'inline': {}, 'max_rows': {}, 'preview_rows': {'type': 'number'}, 'keep_formulas': {}}, 'additionalProperties': True}
reconcile_ledger
Two tables → what does not match (the VLOOKUP job), with the arithmetic proof
Reconciles two sets of records — your books against a bank, platform, or supplier statement. Matches rows on a key column, compares an amount column, and returns three lists: only in A, only in B, and same key but different amount. Amounts are compared in integer cents, so 0.1 + 0.2 never invents a phantom difference for someone to chase. The response also proves the result: the listed differences are re-added and must equal the gap between the two totals, checked in code. Use for month-end close, platform payouts vs orders, or any "these two numbers should agree and do not" problem. This is the job people do by hand with VLOOKUP or a groupby and then cannot prove they got right.
읽기 전용 멱등성
입력 스키마
{'type': 'object', 'required': ['key', 'amount'], 'properties': {'key': {'type': 'string', 'description': 'Column name to match rows on, e.g. order_id.'}, 'url_a': {'type': 'string', 'description': 'Link to side A (e.g. your books).'}, 'url_b': {'type': 'string', 'description': 'Link to side B (e.g. the statement).'}, 'amount': {'type': 'string', 'description': 'Numeric column to compare, e.g. amount.'}, 'text_a': {'type': 'string', 'description': 'Or the CSV content of side A directly.'}, 'text_b': {'type': 'string', 'description': 'Or the CSV content of side B directly.'}}}
출력 스키마
{'type': 'object', 'additionalProperties': True}
what_can_you_do
Find the right tool for a task
Describe a task in plain language (any language) and get back exactly which tools on this server do it, with ready-to-run example calls — instead of reading the whole catalogue and guessing. Also returns multi-step recipes when a task needs several tools chained (invoices to a ledger, a bank statement reconciled, a messy CSV turned into a deliverable). Deterministic and free: it calls no model, costs nothing, and never runs out of quota. Call this FIRST when you are not sure what this server offers.
읽기 전용 멱등성
입력 스키마
{'type': 'object', 'required': ['task'], 'properties': {'task': {'type': 'string', 'description': 'What you are trying to do, e.g. "reconcile a bank statement against my books" or "把一堆发票整理成能入账的表格"'}}}
출력 스키마
{'type': 'object', 'additionalProperties': True}
write_xlsx
write xlsx
Build an Excel .xlsx file from rows (CSV text or JSON arrays), optionally several sheets at once. Numbers are written as real numbers so they sum in Excel, while values with leading zeros stay text so IDs and postcodes survive the round trip.
입력 스키마
{'type': 'object', 'properties': {'url': {}, 'text': {}, 'sheets': {}, 'sheet_name': {}}, 'additionalProperties': True}
추가됨
json_to_csv
2026년 9월 17일 12:33 PM
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csv_to_json
2026년 9월 17일 12:33 PM
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csv_to_chart
2026년 9월 17일 12:33 PM
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csv_to_md_table
2026년 9월 17일 12:33 PM
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dedupe_entities
2026년 9월 17일 12:33 PM
추가됨
match_transactions
2026년 9월 17일 12:33 PM
추가됨
write_xlsx
2026년 9월 17일 12:33 PM
추가됨
read_xlsx
2026년 9월 17일 12:33 PM
추가됨
fix_csv_encoding
2026년 9월 17일 12:33 PM
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reconcile_ledger
2026년 9월 17일 12:33 PM
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merge_tables
2026년 9월 17일 12:33 PM
추가됨
clean_table
2026년 9월 17일 12:33 PM
추가됨
diff_tables
2026년 9월 17일 12:33 PM
추가됨
csv_to_qbo
2026년 9월 17일 12:33 PM
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what_can_you_do
2026년 9월 17일 12:33 PM