--- library_name: setfit tags: - setfit - sentence-transformers - text-classification - generated_from_setfit_trainer metrics: - accuracy widget: - text: "* 04 Hindalco Industries Ltd\nHirkaud Smelter Stores\n\n \n\n* Service Recei\ \ ot\nBUYER _ Lp / GATE ENRTY NO:\noe ADL D vA /2/0A\nRECEIPT DATE: 04-MAR-22\ \ ATU\" ! : 1-SAMBALPUR\nUNIQUE ENTERPRISES ad ZL POL CPi pg 6 ee Q/748/2022\n\ ASS Cer ag fe oO\nos \" -\n\n \n \n \n\nORG CODE:\n\nBOE NO:\nBOE DATE:\ncut\n\ \n \n\nTT\n\nWAY BILL AIRBILL NO\n\nPo\nSoe\nDATE:\n\nTOTAL RECEIVED 21074.8 Nes\ \ REMARKS/REFERENCE: | SUPPLY FOR PAINTING\nAMOUNT INCL TAX Reverse Charge: No\ \ ~\n\nINR) : Tax Point Basis : INVOICE\n\nPO Description SUPPLY FOR PAINTER FOR\ \ 85KA EMD\n\n \n\n \n \n \n\n \n \n \n \n\n \n \n \n\n\ \ \n \n \n \n\n \n \n \n\n \n \n\nLOCATOR\nShelf Life\nCONTROL\n\n\ QUANTITY:\nCHALAN/INVOICE\nRECEIVED\n\nQUANTITY:\nACCEPTED\nREJECTED\n\n \n\n\ \ \n\n \n \n\nITEM CODE DESCRIPTION HSN / SAC\nPR NUMBER SUB INVENTORY\ \ CODE\n\nPO NO. BU/cost Center/ Account Code along with GL ACCOUNT\n\nREQUESTER\ \ CODE\n\nNote to receiver\n\n1 - 801015110326 - HIRE: MANPOWER, SKILLED;RATE\ \ TYP:STANDARD, : MANDAY\nLVL/DSGNTN:PAINTER\n\n[=] = b07-\n\nS/PO/SRV/2122/054\n\ 2\n\n- Sekhar, Mr.\nChandra Makthala\n\n \n \n\n: No Control\n\n \n \n\n\ \ \n \n \n\n- 3711.204.910103.50803112.9999.9999.9999.9999.9999\n- Hirakud\ \ Smelter Plant.Aluminium Smelter.Electrical.Repairs to\nMachinery- Electrical.Default.Default.Default.Default.\ \ Default\n\nP ruchasuil dG ~L— gw\n\n \n\n4atos- OF + 2622. .e, oer |\nPREPARER\ \ SECTION HEAD / INSPECTOR SECTION HEAD /\nSTORES KEEPER AREA HEAD -RECEIVING\ \ AREA HEAD — CUSTODY & ISSUE\nor\n\nals\n\f" - text: " \n\n \n\nDELIVERY CHALLAN ~ Phone : (0891) 2577077 |\nALUFLUORIDE LIMITED\n\ MULAGADA VILLAGE, MINDHI POST,\nVISAKHAPATNAM - 530 012 |\n\n \n\n \n\n \n\n \n\ \n \n\n \n\n \n\n \n\n \n\nDc Nox: g22 - - : ; “Date 02-02-2016\n| HINDALCO INDUSTRIES\ \ LTD HIRAKUD\nSAMBALPUR\nODISHA\nPIN CODE: 768016\nYour Order No: ~HKDRM/1516/0001\ \ DT: 01/04/2015\nReceived the below mentioned in good condition. Carrier No:\ \ AP 16 TC 9339\n—SI.No | ~~ PARTICULARS” | Qty. | Rate / MT\n: = | ae\n: 7\n\ ALUMINIUM FLUORIDE . | 21.000 | ; sbatS\n|\n420 BagsX 50.120 kg. = 21.0504 MT\ \ |\nWeight of Emppty Bags:& Liners: 0.050 MT\nSoa Net Weight of Material: ~ 21.000\ \ ~MT\nInvoice No.: 822 Date 02-02-2016\"\nAPVAT TIN : 37900106541 Dt: 02.06.2014\ \ CST No.: 37900106541 Dt: 02.06.2014\nReceiver's Signature Signature\n\n \n\f" - text: " \n\n \n\n \n\n \n\n \n\n \n\n| rad nas Bi Tiapz Ke en\nap | pa\ \ ape EE By EY ED ITT? ON matte / ON moray |\nP| airing swodanraa boc pia oe ne\ \ ed ee v , 4\n! e i ma | VeACLA Baus §uOQ souBisua¢ of\n| “P io | . [ | seBieUo\ \ IS | wal VY | Loo abi +A Buipe spun |\n| | fe) De [ nl oman «| OE U :\nmS, (Spe\ \ fb) to ae\n| eo Ss | | Pepe (GEOUVHO | GE SOF ae\nE 4 ’ : E sapesecascnsctute\ \ saps Ln + ad et an\nme | | a | es ' | xR Uag ob iw aa ae 32\n' a a] i as aN\ \ Ne paneer\nRe is pad on\n| ee | Sel Nmd Oe oy ld,\n| ix | ; | ‘lwnov L PP. ‘dg\ \ py\n| . Pe eh\n\n \n\nmo sory oR! wor,\n\nou d&- ane eer\n\n: \"ORL\n\n \n\ \ \n\n \n\n‘PO 0Es - “ay Sink /BUSIA,\n‘eyemfes eipug weayediueaewueyepsd JeaK\n\ \"UINYD BPISGG SE-’-S7Z ON 100G\n\nBu. NOUMIS BNDIOOS\n\ney\nWeve! se\n\n \n\n\ \ \n\nhceaitbaaor re\n\n! AMoaAM\n\n \n\n \n\n> tewe-3™\n\noy eee\n\nY3WOISH)\ \ Ad GAUNSNI SI ODUYO\n— MSIH S.HSNMO LY\n\nAdOD HONDIS. NOD\n\nene os roarans\n\ \n \n\nKINO NOMIC unr\n\nWaalarad Ta soz - ‘Sn\n\n \n\n- “eu = 3 re\n\neagaee\n\ \nGY oe Ae\n\nBA OFT OVI\nfoe, 17 :\n\n“OL\n\n \n\nivan OL.Givs) NOiAIOSaa\n\ \n \n\neT ea ‘ON aGOW\n\n \n\n \n\n(sour g) 9292 94924 920P : 181 600 OOF\ \ - IVAW angus Wi0l <\n‘OVOY OTIS .G 'Zy “.BSNOH X3dINI PVHIA. ¢°O\"H\n\n? tAd\ \ LHOdSNU 4! 88909 LVENS\n\n-_ wd\nfe\n\n»\n\f" - text: "SOT Ue\n\n \n\n \n\noH\n\n| ia\n\nI\nod\n\nHi\n\na\n\n|\nTo) Sig\ \ Pere\na\n\nal |g\n&%\n5)\n\nwS\\\neB\nSB\n“5\n“O\nS\n€X\n\nBea\n\nem\n\nPe eS\n\ \nse aE a\n\n4 |] | tat [ety\n\ntt pe Ta\n&\na\n\nOK\n\n¢\n\nSRLS ia Leh coe\n\ \n \n \n\f" - text: " \n \n \n \n\nAUSEOOUSRGSEEENSSRCESRORROGS\n\nMise oaeta\nMis tnaes Lo\ \ Q) duty at col ane\n\nDate 12.8820\n‘Stra Bort as Corry Ub 2.\n\nexeauscscotecne:\ \ aneasese\n\nMm. €.M. NBUSTRIES\n\nAn ISO 9001 : 2008 COMPANY\n\n“PODDAR COURT\"\ , Phones : 2235 2096 / 3985 2494 Lo Wi. TEE OLL, a¥ahe Package Ae 2\natadiee Fax\ \ 033-2235 1868\n\nE-mail : cables@memindustries.com Tame Ahr SLM, Freight eng\n\ \n \n\nRaut WAR OKA O Van weg 9 at ai sl age Reve\nCorny u. )\n\nGABLES ARE\ \ IN GUR CONTROL\n\nFrease sign & return VAT No. : 19570720098 e TIN/ CST No.\ \ : 19570720292\n—~ = Office : 55, Ezra Street, 2nd Floor, Kolkata - 700 001\n\ \f" pipeline_tag: text-classification inference: true base_model: BAAI/bge-small-en-v1.5 model-index: - name: SetFit with BAAI/bge-small-en-v1.5 results: - task: type: text-classification name: Text Classification dataset: name: Unknown type: unknown split: test metrics: - type: accuracy value: 1.0 name: Accuracy --- # SetFit with BAAI/bge-small-en-v1.5 This is a [SetFit](https://github.com/huggingface/setfit) model that can be used for Text Classification. This SetFit model uses [BAAI/bge-small-en-v1.5](https://huggingface.co/BAAI/bge-small-en-v1.5) as the Sentence Transformer embedding model. A [LogisticRegression](https://scikit-learn.org/stable/modules/generated/sklearn.linear_model.LogisticRegression.html) instance is used for classification. The model has been trained using an efficient few-shot learning technique that involves: 1. Fine-tuning a [Sentence Transformer](https://www.sbert.net) with contrastive learning. 2. Training a classification head with features from the fine-tuned Sentence Transformer. ## Model Details ### Model Description - **Model Type:** SetFit - **Sentence Transformer body:** [BAAI/bge-small-en-v1.5](https://huggingface.co/BAAI/bge-small-en-v1.5) - **Classification head:** a [LogisticRegression](https://scikit-learn.org/stable/modules/generated/sklearn.linear_model.LogisticRegression.html) instance - **Maximum Sequence Length:** 512 tokens - **Number of Classes:** 2 classes ### Model Sources - **Repository:** [SetFit on GitHub](https://github.com/huggingface/setfit) - **Paper:** [Efficient Few-Shot Learning Without Prompts](https://arxiv.org/abs/2209.11055) - **Blogpost:** [SetFit: Efficient Few-Shot Learning Without Prompts](https://huggingface.co/blog/setfit) ### Model Labels | Label | Examples | 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| 0 |