
Ryan W. Sherwin
Examiner (ID: 37, Phone: (571)270-7269 , Office: P/2686 )
| Most Active Art Unit | 2688 |
| Art Unit(s) | 2686, 2687, 4133, 2681, 2689, 2612, 2684, 2688 |
| Total Applications | 832 |
| Issued Applications | 554 |
| Pending Applications | 61 |
| Abandoned Applications | 235 |
Applications
| Application number | Title of the application | Filing Date | Status |
|---|---|---|---|
Array
(
[id] => 9699718
[patent_doc_number] => 20140249402
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2014-09-04
[patent_title] => 'RADIOACTIVE EMISSION DETECTOR EQUIPPED WITH A POSITION TRACKING SYSTEM'
[patent_app_type] => utility
[patent_app_number] => 14/058363
[patent_app_country] => US
[patent_app_date] => 2013-10-21
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 35
[patent_figures_cnt] => 35
[patent_no_of_words] => 23115
[patent_no_of_claims] => 36
[patent_no_of_ind_claims] => 2
[patent_words_short_claim] => 0
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 14058363
[rel_patent_id] =>[rel_patent_doc_number] =>) 14/058363 | RADIOACTIVE EMISSION DETECTOR EQUIPPED WITH A POSITION TRACKING SYSTEM | Oct 20, 2013 | Abandoned |
Array
(
[id] => 9436419
[patent_doc_number] => 20140114326
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2014-04-24
[patent_title] => 'Device for Shock Wave Treatment of the Human Brain'
[patent_app_type] => utility
[patent_app_number] => 14/057295
[patent_app_country] => US
[patent_app_date] => 2013-10-18
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 4
[patent_figures_cnt] => 4
[patent_no_of_words] => 3724
[patent_no_of_claims] => 13
[patent_no_of_ind_claims] => 2
[patent_words_short_claim] => 0
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 14057295
[rel_patent_id] =>[rel_patent_doc_number] =>) 14/057295 | Device and method for shock wave treatment of the human brain | Oct 17, 2013 | Issued |
Array
(
[id] => 12309408
[patent_doc_number] => 09939507
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2018-04-10
[patent_title] => Method of providing guide information for photographing object, method of recommending object, and medical image capturing apparatus
[patent_app_type] => utility
[patent_app_number] => 14/050700
[patent_app_country] => US
[patent_app_date] => 2013-10-10
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 20
[patent_figures_cnt] => 29
[patent_no_of_words] => 13066
[patent_no_of_claims] => 61
[patent_no_of_ind_claims] => 6
[patent_words_short_claim] => 157
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 14050700
[rel_patent_id] =>[rel_patent_doc_number] =>) 14/050700 | Method of providing guide information for photographing object, method of recommending object, and medical image capturing apparatus | Oct 9, 2013 | Issued |
Array
(
[id] => 10098086
[patent_doc_number] => 09134393
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2015-09-15
[patent_title] => 'System and method for improved efficiency in magnetic resonance elastography'
[patent_app_type] => utility
[patent_app_number] => 14/049632
[patent_app_country] => US
[patent_app_date] => 2013-10-09
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 5
[patent_figures_cnt] => 10
[patent_no_of_words] => 5232
[patent_no_of_claims] => 13
[patent_no_of_ind_claims] => 2
[patent_words_short_claim] => 224
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 14049632
[rel_patent_id] =>[rel_patent_doc_number] =>) 14/049632 | System and method for improved efficiency in magnetic resonance elastography | Oct 8, 2013 | Issued |
Array
(
[id] => 10404770
[patent_doc_number] => 20150289779
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2015-10-15
[patent_title] => 'SYSTEM AND METHOD FOR DIAGNOSIS OF FOCAL CORTICAL DYSPLASIA'
[patent_app_type] => utility
[patent_app_number] => 14/435246
[patent_app_country] => US
[patent_app_date] => 2013-10-02
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 8
[patent_figures_cnt] => 8
[patent_no_of_words] => 8969
[patent_no_of_claims] => 20
[patent_no_of_ind_claims] => 4
[patent_words_short_claim] => 0
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 14435246
[rel_patent_id] =>[rel_patent_doc_number] =>) 14/435246 | SYSTEM AND METHOD FOR DIAGNOSIS OF FOCAL CORTICAL DYSPLASIA | Oct 1, 2013 | Abandoned |
Array
(
[id] => 10127951
[patent_doc_number] => 09161768
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2015-10-20
[patent_title] => 'Extracorporeal pressure shock wave devices with reversed applicators and methods for using these devices'
[patent_app_type] => utility
[patent_app_number] => 14/036461
[patent_app_country] => US
[patent_app_date] => 2013-09-25
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 84
[patent_figures_cnt] => 156
[patent_no_of_words] => 39666
[patent_no_of_claims] => 12
[patent_no_of_ind_claims] => 1
[patent_words_short_claim] => 91
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 14036461
[rel_patent_id] =>[rel_patent_doc_number] =>) 14/036461 | Extracorporeal pressure shock wave devices with reversed applicators and methods for using these devices | Sep 24, 2013 | Issued |
Array
(
[id] => 9384940
[patent_doc_number] => 20140088422
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2014-03-27
[patent_title] => 'ROBOTIC LOCALIZING AID FOR HIGH INTENSITY FOCUSED ULTRASOUND DELIVERY'
[patent_app_type] => utility
[patent_app_number] => 14/026235
[patent_app_country] => US
[patent_app_date] => 2013-09-13
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 6
[patent_figures_cnt] => 6
[patent_no_of_words] => 2272
[patent_no_of_claims] => 14
[patent_no_of_ind_claims] => 3
[patent_words_short_claim] => 0
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 14026235
[rel_patent_id] =>[rel_patent_doc_number] =>) 14/026235 | ROBOTIC LOCALIZING AID FOR HIGH INTENSITY FOCUSED ULTRASOUND DELIVERY | Sep 12, 2013 | Abandoned |
Array
(
[id] => 9364040
[patent_doc_number] => 20140073913
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2014-03-13
[patent_title] => 'BREAST BIOPSY AND NEEDLE LOCALIZATION USING TOMOSYNTHESIS SYSTEMS'
[patent_app_type] => utility
[patent_app_number] => 14/021624
[patent_app_country] => US
[patent_app_date] => 2013-09-09
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 18
[patent_figures_cnt] => 18
[patent_no_of_words] => 9602
[patent_no_of_claims] => 2
[patent_no_of_ind_claims] => 2
[patent_words_short_claim] => 0
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 14021624
[rel_patent_id] =>[rel_patent_doc_number] =>) 14/021624 | Breast biopsy and needle localization using tomosynthesis systems | Sep 8, 2013 | Issued |
Array
(
[id] => 14028949
[patent_doc_number] => 10226203
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2019-03-12
[patent_title] => Device for anatomical lesion length estimation
[patent_app_type] => utility
[patent_app_number] => 13/974124
[patent_app_country] => US
[patent_app_date] => 2013-08-23
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 9
[patent_figures_cnt] => 20
[patent_no_of_words] => 9751
[patent_no_of_claims] => 20
[patent_no_of_ind_claims] => 2
[patent_words_short_claim] => 147
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 13974124
[rel_patent_id] =>[rel_patent_doc_number] =>) 13/974124 | Device for anatomical lesion length estimation | Aug 22, 2013 | Issued |
Array
(
[id] => 9263617
[patent_doc_number] => 20130345546
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2013-12-26
[patent_title] => 'CT-MRI HYBRID APPARATUS WITH LARGER CT CORE-DIAMETER AND METHOD OF IMPLEMENTING THE SAME'
[patent_app_type] => utility
[patent_app_number] => 13/969550
[patent_app_country] => US
[patent_app_date] => 2013-08-17
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 4
[patent_figures_cnt] => 4
[patent_no_of_words] => 3139
[patent_no_of_claims] => 12
[patent_no_of_ind_claims] => 2
[patent_words_short_claim] => 0
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 13969550
[rel_patent_id] =>[rel_patent_doc_number] =>) 13/969550 | CT-MRI HYBRID APPARATUS WITH LARGER CT CORE-DIAMETER AND METHOD OF IMPLEMENTING THE SAME | Aug 16, 2013 | Abandoned |
Array
(
[id] => 9319664
[patent_doc_number] => 20140052002
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2014-02-20
[patent_title] => 'FLUORESCENT IMAGE ACQUISITION AND PROJECTION APPARATUS FOR REAL-TIME VISUALIZATION OF INVISIBLE FLUORESCENT SIGNAL'
[patent_app_type] => utility
[patent_app_number] => 13/968964
[patent_app_country] => US
[patent_app_date] => 2013-08-16
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 5
[patent_figures_cnt] => 5
[patent_no_of_words] => 4991
[patent_no_of_claims] => 9
[patent_no_of_ind_claims] => 2
[patent_words_short_claim] => 0
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 13968964
[rel_patent_id] =>[rel_patent_doc_number] =>) 13/968964 | Fluorescent image acquisition and projection apparatus and method for real-time visualization of invisible fluorescent signal | Aug 15, 2013 | Issued |
Array
(
[id] => 9270004
[patent_doc_number] => 20140024922
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2014-01-23
[patent_title] => 'Curved Passive Acoustic Driver for Magnetic Resonance Elastography'
[patent_app_type] => utility
[patent_app_number] => 13/948977
[patent_app_country] => US
[patent_app_date] => 2013-07-23
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 8
[patent_figures_cnt] => 8
[patent_no_of_words] => 4774
[patent_no_of_claims] => 44
[patent_no_of_ind_claims] => 3
[patent_words_short_claim] => 0
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 13948977
[rel_patent_id] =>[rel_patent_doc_number] =>) 13/948977 | Curved passive acoustic driver for magnetic resonance elastography | Jul 22, 2013 | Issued |
Array
(
[id] => 12404070
[patent_doc_number] => 09968280
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2018-05-15
[patent_title] => Method for insertion of a medical device within a body during a medical imaging process
[patent_app_type] => utility
[patent_app_number] => 13/948614
[patent_app_country] => US
[patent_app_date] => 2013-07-23
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 36
[patent_figures_cnt] => 42
[patent_no_of_words] => 25390
[patent_no_of_claims] => 9
[patent_no_of_ind_claims] => 1
[patent_words_short_claim] => 246
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 13948614
[rel_patent_id] =>[rel_patent_doc_number] =>) 13/948614 | Method for insertion of a medical device within a body during a medical imaging process | Jul 22, 2013 | Issued |
Array
(
[id] => 10297121
[patent_doc_number] => 20150182121
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2015-07-02
[patent_title] => 'LOW-COST SCREENING SYSTEM FOR BREAST CANCER DETECTION'
[patent_app_type] => utility
[patent_app_number] => 14/415839
[patent_app_country] => US
[patent_app_date] => 2013-07-19
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 7
[patent_figures_cnt] => 7
[patent_no_of_words] => 8313
[patent_no_of_claims] => 20
[patent_no_of_ind_claims] => 2
[patent_words_short_claim] => 0
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 14415839
[rel_patent_id] =>[rel_patent_doc_number] =>) 14/415839 | LOW-COST SCREENING SYSTEM FOR BREAST CANCER DETECTION | Jul 18, 2013 | Abandoned |
Array
(
[id] => 9135982
[patent_doc_number] => 20130296697
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2013-11-07
[patent_title] => 'Imaging, Therapy, and Temperature Monitoring Ultrasonic system and Method'
[patent_app_type] => utility
[patent_app_number] => 13/937190
[patent_app_country] => US
[patent_app_date] => 2013-07-08
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 16
[patent_figures_cnt] => 16
[patent_no_of_words] => 8928
[patent_no_of_claims] => 20
[patent_no_of_ind_claims] => 3
[patent_words_short_claim] => 0
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 13937190
[rel_patent_id] =>[rel_patent_doc_number] =>) 13/937190 | Imaging, therapy, and temperature monitoring ultrasonic method | Jul 7, 2013 | Issued |
Array
(
[id] => 9209973
[patent_doc_number] => 20140009150
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2014-01-09
[patent_title] => 'SYSTEM AND METHOD FOR METABOLIC MR IMAGING OF A HYPERPOLARIZED AGENT'
[patent_app_type] => utility
[patent_app_number] => 13/929411
[patent_app_country] => US
[patent_app_date] => 2013-06-27
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 10
[patent_figures_cnt] => 10
[patent_no_of_words] => 4436
[patent_no_of_claims] => 16
[patent_no_of_ind_claims] => 3
[patent_words_short_claim] => 0
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 13929411
[rel_patent_id] =>[rel_patent_doc_number] =>) 13/929411 | SYSTEM AND METHOD FOR METABOLIC MR IMAGING OF A HYPERPOLARIZED AGENT | Jun 26, 2013 | Abandoned |
Array
(
[id] => 9793701
[patent_doc_number] => 20150005645
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2015-01-01
[patent_title] => 'DETECTION OF A LEADING STROKE RISK INDICATOR'
[patent_app_type] => utility
[patent_app_number] => 14/125422
[patent_app_country] => US
[patent_app_date] => 2013-06-26
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 11
[patent_figures_cnt] => 11
[patent_no_of_words] => 7955
[patent_no_of_claims] => 26
[patent_no_of_ind_claims] => 4
[patent_words_short_claim] => 0
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 14125422
[rel_patent_id] =>[rel_patent_doc_number] =>) 14/125422 | Detection of a leading stroke risk indicator | Jun 25, 2013 | Issued |
Array
(
[id] => 11255528
[patent_doc_number] => 09480414
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2016-11-01
[patent_title] => 'Elastography method, and magnetic resonance system for implementing an elastography method'
[patent_app_type] => utility
[patent_app_number] => 13/927401
[patent_app_country] => US
[patent_app_date] => 2013-06-26
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 6
[patent_figures_cnt] => 7
[patent_no_of_words] => 8041
[patent_no_of_claims] => 18
[patent_no_of_ind_claims] => 2
[patent_words_short_claim] => 240
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 13927401
[rel_patent_id] =>[rel_patent_doc_number] =>) 13/927401 | Elastography method, and magnetic resonance system for implementing an elastography method | Jun 25, 2013 | Issued |
Array
(
[id] => 11296437
[patent_doc_number] => 09504429
[patent_country] => US
[patent_kind] => B1
[patent_issue_date] => 2016-11-29
[patent_title] => 'Apparatus for controlling the operation of an MRI system'
[patent_app_type] => utility
[patent_app_number] => 13/926275
[patent_app_country] => US
[patent_app_date] => 2013-06-25
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 9
[patent_figures_cnt] => 9
[patent_no_of_words] => 6321
[patent_no_of_claims] => 15
[patent_no_of_ind_claims] => 1
[patent_words_short_claim] => 326
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 13926275
[rel_patent_id] =>[rel_patent_doc_number] =>) 13/926275 | Apparatus for controlling the operation of an MRI system | Jun 24, 2013 | Issued |
Array
(
[id] => 11199492
[patent_doc_number] => 09429696
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2016-08-30
[patent_title] => 'Systems and methods for reducing measurement error in optical fiber shape sensors'
[patent_app_type] => utility
[patent_app_number] => 13/925965
[patent_app_country] => US
[patent_app_date] => 2013-06-25
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 7
[patent_figures_cnt] => 13
[patent_no_of_words] => 7454
[patent_no_of_claims] => 7
[patent_no_of_ind_claims] => 3
[patent_words_short_claim] => 182
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 13925965
[rel_patent_id] =>[rel_patent_doc_number] =>) 13/925965 | Systems and methods for reducing measurement error in optical fiber shape sensors | Jun 24, 2013 | Issued |