USPTO Examiner KOPEC MARK T - Art Unit 1761

Recent Applications

Detailed information about the 100 most recent patent applications.

Application NumberTitleFiling DateDisposal DateDispositionTime (months)Office ActionsRestrictionsInterviewAppeal
18861622ELECTRODE MIX FOR SECONDARY BATTERY, ELECTRODE FOR ALL-SOLID-STATE SECONDARY BATTERY, AND ALL-SOLID-STATE SECONDARY BATTERYOctober 2024March 2026Allow1610YesNo
17260929CATHODE MATERIAL FOR A SODIUM-ION BATTERY, PREPARATION METHOD THEREFOR AND APPLICATION THEREOFJanuary 2021July 2021Allow601NoNo
16979520BINDER COMPOSITION FOR SECONDARY BATTERY, CONDUCTIVE MATERIAL PASTE FOR SECONDARY BATTERY ELECTRODE, SLURRY COMPOSITION FOR SECONDARY BATTERY ELECTRODE, METHOD OF PRODUCING SLURRY COMPOSITION FOR SECONDARY BATTERY ELECTRODE, ELECTRODE FOR SECONDARY BATTERY, AND SECSeptember 2020August 2021Allow1110YesNo
17007707POSITIVE ELECTRODE ACTIVE MATERIAL FOR NONAQUEOUS ELECTROLYTE SECONDARY BATTERY, METHOD FOR PRODUCING SAME, AND NONAQUEOUS ELECTROLYTE SECONDARY BATTERY USING SAID POSITIVE ELECTRODE ACTIVE MATERIALAugust 2020March 2021Allow610NoNo
17002908FRONT-SIDE CONDUCTIVE PASTE FOR CRYSTALLINE SILICON SOLAR CELL, PREPARATION METHOD THEREFOR, AND SOLAR CELLAugust 2020September 2020Allow100NoNo
16984892NOVEL MATERIALS WITH EXTREMELY DURABLE INTERCALATION OF LITHIUM AND MANUFACTURING METHODS THEREOFAugust 2020December 2020Allow1010NoNo
16924003ORGANIC SEMICONDUCTOR ELEMENT, ORGANIC SEMICONDUCTOR COMPOSITION, ORGANIC SEMICONDUCTOR FILM, METHOD OF MANUFACTURING ORGANIC SEMICONDUCTOR FILM, AND POLYMER USING THE SAMEJuly 2020December 2020Allow500YesNo
16959178SILVER NANOWIRE INK AND METHOD FOR PRODUCING SAMEJune 2020August 2021Abandon1301NoNo
16907409HYDROPHYLIC SEMICONDUCTING SINGLE-WALLED CARBON NANOTUBE INKSJune 2020May 2021Allow1111NoNo
16955957ELECTRICALLY CONDUCTIVE PARTICLES, COMPOSITION, ARTICLE AND METHOD OF MANUFACTURING ELECTRICALLY CONDUCTIVE PARTICLESJune 2020March 2021Allow910NoNo
16900809POLYMER-SILICA HYBRID PDOTS AND METHODS OF USE THEREOFJune 2020April 2021Allow1010YesNo
16771274CONDUCTIVE PASTEJune 2020February 2021Allow810NoNo
16767964COMPOSITION FOR PRODUCING AN ELECTRICALLY CONDUCTIVE LAYER, IN PARTICULAR FOR AN ELECTROLUMINESCENCE DEVICEMay 2020April 2021Allow1100YesNo
15931758IRIDIUM COMPLEX COMPOUND, COMPOSITION CONTAINING THE COMPOUND AND SOLVENT, ORGANIC ELECTROLUMINESCENT ELEMENT CONTAINING THE COMPOUND, DISPLAY DEVICE, AND ILLUMINATION DEVICEMay 2020February 2021Allow910NoNo
16850119NANOPLATELETApril 2020June 2021Allow1410NoNo
16846287MULTIFUNCTIONAL PAINTS AND CAULKS WITH CONTROLLABLE ELECTROMAGNETIC PROPERTIESApril 2020September 2020Allow510NoNo
16753938Conductive Articles Produced from a Composite Material and Process to Produce Such ArticlesApril 2020May 2021Allow1301NoNo
16753708CONDUCTIVE PASTE FOR FORMING SOLAR CELL ELECTRODEApril 2020July 2020Allow400NoNo
16825880SULFUR-BASED ACTIVE MATERIALMarch 2020March 2021Allow1210NoNo
16811359METAL PASTE AND THERMOELECTRIC MODULEMarch 2020December 2020Allow1010NoNo
16640441THICK-FILM RESISTIVE ELEMENT PASTE AND USE OF THICK-FILM RESISTIVE ELEMENT PASTE IN RESISTORFebruary 2020June 2021Allow1510NoNo
16795158PEST CONTROL AND DETECTION SYSTEM WITH CONDUCTIVE BAIT MATRIXFebruary 2020February 2021Allow1210NoNo
16790964Method of Making Silicon-Carbide Reinforced Solid Electrolyte Battery MaterialsFebruary 2020June 2020Allow410NoNo
16637265SLURRY FOR FLEXIBLE ELECTRODES, AND FLEXIBLE ELECTRODE USING SAMEFebruary 2020March 2021Allow1320NoNo
16746697NOVEL MATERIALS WITH EXTREMELY DURABLE INTERCALATION OF LITHIUM AND MANUFACTURING METHODS THEREOFJanuary 2020July 2020Allow610NoNo
16739880Masterbatches for preparing a composite material based on semi-crystalline polymer with enhanced conductivity properties, process and composite materials produced therefromJanuary 2020August 2021Abandon1901NoNo
16717711FULLERENE DERIVATIVE BLENDS, METHODS OF MAKING AND USES THEREOFDecember 2019November 2020Allow1120YesNo
16714990ELECTRONICALLY ABRUPT BOROPHENE/ORGANIC LATERAL HETEROSTRUCTURES AND PREPARATION THEREOFDecember 2019February 2021Allow1410YesNo
16614403OXIDE SINTERED BODY AND SPUTTERING TARGETNovember 2019March 2021Allow1600NoNo
16614238OXIDE SINTERED BODY AND SPUTTERING TARGETNovember 2019March 2021Allow1600NoNo
16668161Silicon-Carbide Reinforced Solid-State ElectrolytesOctober 2019February 2020Allow300NoNo
16658583Thermally Conductive Polymer Composition for a Heat SinkOctober 2019March 2021Allow1610YesNo
16601095MULTIFUNCTIONAL PAINTS AND CAULKS WITH CONTROLLABLE ELECTROMAGNETIC PROPERTIESOctober 2019April 2020Allow610YesNo
16591129Lithium Complex Oxide for Lithium Secondary Battery Positive Active Material and Method of Preparing the SameOctober 2019April 2020Allow610NoNo
16588574ORGANIC SEMICONDUCTOR ELEMENT, ORGANIC SEMICONDUCTOR COMPOSITION, METHOD OF MANUFACTURING ORGANIC SEMICONDUCTOR FILM, ORGANIC SEMICONDUCTOR FILM, AND COMPOUND AND POLYMER USING THE SAMESeptember 2019May 2021Allow1911NoNo
16579107SILICON-BASED COMPOSITE ANODE ACTIVE MATERIAL FOR SECONDARY BATTERY, ANODE COMPRISING SAMESeptember 2019April 2021Allow1820NoNo
16574309COMPOSITION FOR FORMING SOLAR CELL ELECTRODE AND SOLAR CELL ELECTRODE PREPARED USING THE SAMESeptember 2019May 2021Allow2020YesNo
16554214Silicon-Carbide Reinforced Carbon-Silicon CompositesAugust 2019November 2019Allow310NoNo
16540822Li-CONTAINING SILICON OXIDE POWDER AND PRODUCTION METHOD THEREOFAugust 2019October 2020Allow1410NoNo
16540592PEROVSKITE NANOCRYSTALS AND METHODS OF MAKING THE SAMEAugust 2019January 2021Allow1711YesNo
16534253THIN FILM TRANSISTOR AND THIN FILM TRANSISTOR ARRAY AND ELECTRONIC DEVICEAugust 2019April 2021Allow2010YesNo
16483845CONDUCTIVE POLYAMIDE RESIN COMPOSITIONAugust 2019November 2020Allow1510YesNo
16479232HIGH-PERFORMANCE POSITIVE ELECTRODE ACTIVE MATERIAL FOR LITHIUM ION BATTERY AND METHOD FOR PRODUCING SAMEJuly 2019July 2020Allow1201NoNo
16479444COMPOSITIONS USEFUL FOR THE FORMATION OF AN ANTISTATIC LAYER OR AN ELECTROMAGNETIC RADIATION SHIELDJuly 2019April 2021Allow2121YesNo
164789901T-PHASE TRANSITION METAL DICHALCOGENIDE NANOSHEETSJuly 2019December 2020Allow1711YesNo
16478193SILVER-COATED SILICONE RUBBER PARTICLES, CONDUCTIVE PASTE CONTAINING SAME, AND A CONDUCTIVE FILM PRODUCTION METHOD USING CONDUCTIVE PASTEJuly 2019October 2020Allow1510YesNo
16458429SELF-HEALING COMPOSITE AND DEVICE INCLUDING SELF-HEALING FILMJuly 2019September 2020Allow1410NoNo
16452176ELECTRICALLY CONDUCTIVE HYDROGELS WITH TUNABLE PROPERTIESJune 2019October 2020Allow1501NoNo
16447701METHOD OF SPECTRALLY CAMOUFLAGING A STRUCTURE WITH A SURROUNDING ENVIRONMENTJune 2019August 2020Allow1420NoNo
16438806CONDUCTIVE HEATING COMPOSITION AND FLEXIBLE CONDUCTIVE HEATING DEVICE USING THE SAMEJune 2019September 2020Allow1610NoNo
16415252Silicon-Carbide Reinforced Carbon-Silicon CompositesMay 2019September 2019Allow410NoNo
16415298FORMATION OF SILICON-CARBIDE REINFORCED CARBON-SILICON COMPOSITESMay 2019September 2019Allow410NoNo
16411345COMPOSITION COMPRISING OPTICALLY AND ELECTRONICALLY ACTIVE PHOSPHORENEMay 2019September 2020Allow1710YesNo
16404397PHOTOELECTRIC CONVERSION FILM, SOLID-STATE IMAGE SENSOR, AND ELECTRONIC DEVICEMay 2019June 2020Allow1310NoNo
16387206COMPOSITE MATERIALS WITH TAILORED ELECTROMAGNETIC SPECTRAL PROPERTIES, STRUCTURAL ELEMENTS FOR ENHANCED THERMAL MANAGEMENT, AND METHODS FOR MANUFACTURING THEREOFApril 2019January 2020Allow910NoNo
16356992PREPARATION AND CHARACTERIZATION OF MODIFIED OXIDE COMPOSITIONSMarch 2019March 2021Allow2420NoNo
16274841NEGATIVE-ELECTRODE ACTIVE MATERIAL, METHOD OF MANUFACTURING THE SAME, AND NONAQUEOUS SECONDARY BATTERYFebruary 2019May 2020Allow1500NoNo
16254977FRONT-SIDE CONDUCTIVE PASTE FOR CRYSTALLINE SILICON SOLAR CELL, PREPARATION METHOD THEREFOR, AND SOLAR CELLJanuary 2019August 2020Allow1901NoNo
16317348LITHIUM TRANSITION METAL COMPOSITE OXIDE, TRANSITION METAL HYDROXIDE PRECURSOR, METHOD FOR PRODUCING TRANSITION METAL HYDROXIDE PRECURSOR, METHOD FOR PRODUCING LITHIUM TRANSITION METAL COMPOSITE OXIDE, POSITIVE ACTIVE MATERIAL FOR NONAQUEOUS ELECTROLYTE SECONDARY BATTERY, ELECTRODE FOR NONAQUEOUS ELECTROLYTE SECONDARY BATTERY, NONAQUEOUS ELECTROLYTE SECONDARY BATTERY AND ENERGY STORAGE APPARATUSJanuary 2019July 2021Allow3011NoNo
16240257POLYMERIZED IN-SITU HYBRID SOLID ION-CONDUCTIVE COMPOSITIONSJanuary 2019September 2019Allow810YesNo
16227057CONDUCTIVE PASTE COMPOSITION AND SOLAR CELL USING THE CONDUCTIVE PASTE COMPOSITIONDecember 2018November 2020Allow2311YesNo
16309795POLYMER-SILICA HYBRID PDOTS AND METHODS OF USE THEREOFDecember 2018May 2020Allow1720NoNo
16309729SILVER CHLORIDE PASTEDecember 2018January 2020Allow1320NoNo
16207801POLYIMIDE-BASED POLYMER THICK FILM RESISTOR COMPOSITIONDecember 2018August 2019Allow810NoNo
16202649COMPOSITION FOR FORMING ELECTRODE, ELECTRODE MANUFACTURED USING THE SAME AND SOLAR CELLNovember 2018September 2020Allow2210NoNo
16304034METHOD FOR PRODUCING CATHODE ACTIVE MATERIAL POWDER FOR SECONDARY BATTERYNovember 2018May 2021Allow3020YesNo
15780472POSITIVE ELECTRODE ACTIVE MATERIAL FOR POTASSIUM ION SECONDARY CELLNovember 2018September 2020Allow2710YesNo
16183112GLASS COMPOSITION, GLASS POWDER, CONDUCTIVE PASTE, AND SOLAR CELLNovember 2018May 2019Allow600NoNo
16182885QUANTUM DOT HAVING CORE-SHELL STRUCTURENovember 2018July 2020Allow2110NoNo
16181357POLYMERIZABLE LIQUID CRYSTAL COMPOSITION AND OPTICAL ANISOTROPICAL BODY THEREOFNovember 2018October 2019Allow1210NoNo
15781254POTASSIUM COMPOUND AND POSITIVE ELECTRODE ACTIVE MATERIAL FOR POTASSIUM ION SECONDARY BATTERIES CONTAINING SAMENovember 2018June 2020Allow2410NoNo
16179828RADIATION-SHIELDING MATERIAL AND MANUFACTURE THEREOFNovember 2018January 2021Allow2711YesNo
16176987COMPOSITIONS AND METHODS FOR PARALLEL PROCESSING OF ELECTRODE FILM MIXTURESOctober 2018September 2021Abandon3521NoYes
16089172ELECTROACTIVE MATERIALS FOR LITHIUM-ION BATTERIES AND OTHER APPLICATIONSSeptember 2018March 2020Abandon1810NoNo
16085940Ceramic Material, Varistor and Methods of Preparing the Ceramic Material and the VaristorSeptember 2018February 2021Allow2921NoNo
16128409COMPOSITE MATERIALS WITH IMPROVED ELECTRICAL CONDUCTIVITY AND METHODS OF MANUFACTURE THEREOFSeptember 2018June 2019Allow1010NoNo
16082545SHEET-SHAPED NITROGEN-PHOSPHORUS CO-DOPED POROUS CARBON MATERIAL AND METHOD FOR PREPARATION THEREOF AND USE THEREOFSeptember 2018September 2020Allow2510NoNo
16118212INK COMPOSITION FOR LIGHT SINTERING, WIRING BOARD USING SAME AND MANUFACTURING METHOD THEREFORAugust 2018July 2019Allow1020NoNo
16118096INK COMPOSITION FOR LIGHT SINTERING, WIRING BOARD USING SAME AND MANUFACTURING METHOD THEREFORAugust 2018June 2019Allow1020NoNo
16110098ORGANIC MOLECULES, IN PARTICULAR FOR USE IN OPTOELECTRONIC DEVICESAugust 2018September 2020Allow2510NoNo
16109220PEST CONTROL AND DETECTION SYSTEM WITH CONDUCTIVE BAIT MATRIXAugust 2018March 2020Allow1921NoNo
16102088SILOXANE-CONTAINING SOLAR CELL METALLIZATION PASTESAugust 2018November 2018Allow300NoNo
16053704SEMICONDUCTIVE COMPOSITION FOR POWER CABLEAugust 2018July 2019Allow1200NoNo
16053725SEMICONDUCTIVE COMPOSITION FOR CABLEAugust 2018January 2020Allow1710YesNo
16046619ELECTRODE MATERIALS WITH HIGH SURFACE CONDUCTIVITYJuly 2018February 2020Allow1910NoNo
16037041IONOMER ELECTRODE MANUFACTURING SLURRYJuly 2018November 2020Abandon2810NoNo
16068176STRETCHABLE CONDUCTOR COMPOSITION, PASTE FOR FORMING STRETCHABLE CONDUCTOR, GARMENT COMPRISING WIRING COMPRISING STRETCHABLE CONDUCTOR COMPOSITION, AND METHOD FOR PRODUCING SAMEJuly 2018September 2019Allow1410NoNo
16068303METHOD OF PRODUCING COBALT-COATED PRECURSOR, COBALT-COATED PRECURSOR PRODUCED THEREBY, AND POSITIVE ELECTRODE ACTIVE MATERIAL PREPARED USING SAMEJuly 2018March 2021Allow3311YesNo
16068298HYDROPHYLIC SEMICONDUCTING SINGLE-WALLED CARBON NANOTUBE INKSJuly 2018March 2020Allow2011NoNo
16027046THERMOSETTING ELECTROCONDUCTIVE PASTE COMPOSITION, AND SOLAR CELL AND SOLAR CELL MODULE BOTH USING THE SAMEJuly 2018March 2020Allow2001NoNo
16067873RESIN COMPOSITION, CONDUCTIVE COPPER PASTE, AND SEMICONDUCTOR DEVICEJuly 2018October 2020Allow2710NoNo
16065874ANODE COMPOSITION, METHOD FOR PREPARING ANODE AND LITHIUM ION BATTERYJune 2018January 2021Allow3120NoNo
16014148SINGLE DOSE LAUNDRY DETERGENT PACKS HAVING ZINC RICINOLEATE AND SODIUM IMINODISUCCINATEJune 2018October 2019Allow1500NoNo
16061888PROTON CONDUCTOR, CELL STRUCTURE, METHODS FOR PRODUCING PROTON CONDUCTOR AND CELL STRUCTURE, FUEL CELL, AND WATER ELECTROLYSIS DEVICEJune 2018May 2021Abandon3521NoNo
16003218WASHING METHODJune 2018March 2020Abandon2201NoNo
16060325FLAME-RETARDANT RESIN COMPOSITION AND METAL CABLE, OPTICAL FIBER CABLE, AND MOLDED ARTICLE USING THE SAMEJune 2018February 2020Allow2120NoNo
15780861CROSSLINKED POLYMER BINDERS FOR ELECTROCHEMICAL ENERGY STORAGE DEVICESJune 2018March 2021Allow3411YesNo
15994276LITHIUM-ION CONDUCTIVE GARNET AND METHOD OF MAKING MEMBRANES THEREOFMay 2018April 2019Allow1000NoNo
15778720METAL-ADHESIVE, HYDROPHOBIC AND ELECTRICALLY CONDUCTIVE COATING, OF USE IN PARTICULAR AS PAINT FOR FUEL CELL BIPOLAR PLATEMay 2018August 2019Allow1510NoNo
15776410BONDING COMPOSITIONMay 2018October 2019Abandon1711NoNo

Appeals Overview

This analysis examines appeal outcomes and the strategic value of filing appeals for examiner KOPEC, MARK T.

Patent Trial and Appeal Board (PTAB) Decisions

Total PTAB Decisions
3
Examiner Affirmed
2
(66.7%)
Examiner Reversed
1
(33.3%)
Reversal Percentile
49.9%
Lower than average

What This Means

With a 33.3% reversal rate, the PTAB reverses the examiner's rejections in a meaningful percentage of cases. This reversal rate is below the USPTO average, indicating that appeals face more challenges here than typical.

Strategic Value of Filing an Appeal

Total Appeal Filings
10
Allowed After Appeal Filing
2
(20.0%)
Not Allowed After Appeal Filing
8
(80.0%)
Filing Benefit Percentile
24.7%
Lower than average

Understanding Appeal Filing Strategy

Filing a Notice of Appeal can sometimes lead to allowance even before the appeal is fully briefed or decided by the PTAB. This occurs when the examiner or their supervisor reconsiders the rejection during the mandatory appeal conference (MPEP § 1207.01) after the appeal is filed.

In this dataset, 20.0% of applications that filed an appeal were subsequently allowed. This appeal filing benefit rate is in the bottom 25% across the USPTO, indicating that filing appeals is less effective here than in most other areas.

Strategic Recommendations

Appeals to PTAB face challenges. Ensure your case has strong merit before committing to full Board review.

Filing a Notice of Appeal shows limited benefit. Consider other strategies like interviews or amendments before appealing.

Examiner KOPEC, MARK T - Prosecution Strategy Guide

Executive Summary

Examiner KOPEC, MARK T works in Art Unit 1761 and has examined 759 patent applications in our dataset. With an allowance rate of 81.6%, this examiner has an above-average tendency to allow applications. Applications typically reach final disposition in approximately 25 months.

Allowance Patterns

Examiner KOPEC, MARK T's allowance rate of 81.6% places them in the 53% percentile among all USPTO examiners. This examiner has an above-average tendency to allow applications.

Office Action Patterns

On average, applications examined by KOPEC, MARK T receive 1.15 office actions before reaching final disposition. This places the examiner in the 13% percentile for office actions issued. This examiner issues significantly fewer office actions than most examiners.

Prosecution Timeline

The median time to disposition (half-life) for applications examined by KOPEC, MARK T is 25 months. This places the examiner in the 78% percentile for prosecution speed. Applications move through prosecution relatively quickly with this examiner.

Interview Effectiveness

Conducting an examiner interview provides a +14.4% benefit to allowance rate for applications examined by KOPEC, MARK T. This interview benefit is in the 53% percentile among all examiners. Recommendation: Interviews provide an above-average benefit with this examiner and are worth considering.

Request for Continued Examination (RCE) Effectiveness

When applicants file an RCE with this examiner, 35.4% of applications are subsequently allowed. This success rate is in the 79% percentile among all examiners. Strategic Insight: RCEs are highly effective with this examiner compared to others. If you receive a final rejection, filing an RCE with substantive amendments or arguments has a strong likelihood of success.

After-Final Amendment Practice

This examiner enters after-final amendments leading to allowance in 70.9% of cases where such amendments are filed. This entry rate is in the 92% percentile among all examiners. Strategic Recommendation: This examiner is highly receptive to after-final amendments compared to other examiners. Per MPEP § 714.12, after-final amendments may be entered "under justifiable circumstances." Consider filing after-final amendments with a clear showing of allowability rather than immediately filing an RCE, as this examiner frequently enters such amendments.

Pre-Appeal Conference Effectiveness

When applicants request a pre-appeal conference (PAC) with this examiner, 0.0% result in withdrawal of the rejection or reopening of prosecution. This success rate is in the 3% percentile among all examiners. Note: Pre-appeal conferences show limited success with this examiner compared to others. While still worth considering, be prepared to proceed with a full appeal brief if the PAC does not result in favorable action.

Appeal Withdrawal and Reconsideration

This examiner withdraws rejections or reopens prosecution in 62.5% of appeals filed. This is in the 40% percentile among all examiners. Of these withdrawals, 60.0% occur early in the appeal process (after Notice of Appeal but before Appeal Brief). Strategic Insight: This examiner shows below-average willingness to reconsider rejections during appeals. Be prepared to fully prosecute appeals if filed.

Petition Practice

When applicants file petitions regarding this examiner's actions, 39.0% are granted (fully or in part). This grant rate is in the 28% percentile among all examiners. Strategic Note: Petitions show below-average success regarding this examiner's actions. Ensure you have a strong procedural basis before filing.

Examiner Cooperation and Flexibility

Examiner's Amendments: This examiner makes examiner's amendments in 1.2% of allowed cases (in the 69% percentile). This examiner makes examiner's amendments more often than average to place applications in condition for allowance (MPEP § 1302.04).

Quayle Actions: This examiner issues Ex Parte Quayle actions in 0.0% of allowed cases (in the 7% percentile). This examiner rarely issues Quayle actions compared to other examiners. Allowances typically come directly without a separate action for formal matters.

Prosecution Strategy Recommendations

Based on the statistical analysis of this examiner's prosecution patterns, here are tailored strategic recommendations:

  • Consider after-final amendments: This examiner frequently enters after-final amendments. If you can clearly overcome rejections with claim amendments, file an after-final amendment before resorting to an RCE.
  • RCEs are effective: This examiner has a high allowance rate after RCE compared to others. If you receive a final rejection and have substantive amendments or arguments, an RCE is likely to be successful.

Relevant MPEP Sections for Prosecution Strategy

  • MPEP § 713.10: Examiner interviews - available before Notice of Allowance or transfer to PTAB
  • MPEP § 714.12: After-final amendments - may be entered "under justifiable circumstances"
  • MPEP § 1002.02(c): Petitionable matters to Technology Center Director
  • MPEP § 1004: Actions requiring primary examiner signature (allowances, final rejections, examiner's answers)
  • MPEP § 1207.01: Appeal conferences - mandatory for all appeals
  • MPEP § 1214.07: Reopening prosecution after appeal

Important Disclaimer

Not Legal Advice: The information provided in this report is for informational purposes only and does not constitute legal advice. You should consult with a qualified patent attorney or agent for advice specific to your situation.

No Guarantees: We do not provide any guarantees as to the accuracy, completeness, or timeliness of the statistics presented above. Patent prosecution statistics are derived from publicly available USPTO data and are subject to data quality limitations, processing errors, and changes in USPTO practices over time.

Limitation of Liability: Under no circumstances will IronCrow AI be liable for any outcome, decision, or action resulting from your reliance on the statistics, analysis, or recommendations presented in this report. Past prosecution patterns do not guarantee future results.

Use at Your Own Risk: While we strive to provide accurate and useful prosecution statistics, you should independently verify any information that is material to your prosecution strategy and use your professional judgment in all patent prosecution matters.