The Nidek Optical Coherence Tomography RS-3000 including scanning laser ophthalmoscope function with Image Filing Software NAVIS-EX is a non-contact system for imaging the fundus and for axial cross sectional imaging of ocular structures. It is indicated for in vivo imaging and measurement of: - the retina, retinal nerve fiber layer, and optic disc, and - the anterior chamber and cornea (when used with the optional auxiliary anterior chamber adapter), as an aid in the diagnosis and management of adults having or suspected of having ocular disease.
Device Story
The RS-3000 is an ophthalmic instrument for non-contact, non-invasive observation and analysis of the fundus and anterior segment. It utilizes confocal laser scanning ophthalmoscopy (785nm near-infrared) for fundus images (SLO) and spectral domain optical coherence tomography (880nm infrared) for cross-sectional images (OCT). An optional anterior segment adapter enables corneal and anterior chamber angle observation. The system includes a main body, PC, monitor, and NAVIS-EX software. Operated by clinicians in a clinic setting, the device transmits acquired image data to the PC for filing, analysis, and image processing. The software provides quantitative measurements of retinal thickness, RNFL, and optic disc parameters. These outputs assist healthcare providers in diagnosing and managing ocular diseases, such as glaucoma and retinal conditions, by providing objective structural data.
Clinical Evidence
Prospective clinical study at one U.S. site with 89 subjects (Normal, Retinal Disease, Glaucoma, Corneal Disease). Evaluated agreement and precision of retinal thickness, RNFL, optic disc, and corneal measurements against the RTVue predicate. Agreement was assessed via limits of agreement analysis; precision was assessed using a nested ANOVA design. Results showed agreement in most parameters, though absolute values differed between devices due to segmentation software differences. No adverse events occurred. Bench testing confirmed repeatability and reproducibility within ±5% accuracy.
Technological Characteristics
Spectral Domain OCT; Confocal scanning laser ophthalmoscopy. Light sources: 785 nm (diode laser) for SLO, 880 nm (SLD) for OCT. Connectivity: PC-based with NAVIS-EX software via cable. Components: Main body, PC, monitor, isolation transformer. Standards: IEC 60601-1, IEC 60601-1-1, IEC 60601-1-2, IEC 60601-1-4, IEC 62304, IEC 62366, ISO 15004-1, ISO 15004-2.
Indications for Use
Indicated for in vivo imaging and measurement of the retina, retinal nerve fiber layer, optic disc, anterior chamber, and cornea in adults having or suspected of having ocular disease. Used as an aid in diagnosis and management.
Regulatory Classification
Identification
An ophthalmoscope is an AC-powered or battery-powered device containing illumination and viewing optics intended to examine the media (cornea, aqueous, lens, and vitreous) and the retina of the eye.
Special Controls
*Classification.* Class II (special controls). The device, when it is an AC-powered opthalmoscope, a battery-powered opthalmoscope, or a hand-held ophthalmoscope replacement battery, is exempt from the premarket notification procedures in subpart E of part 807 of this chapter subject to the limitations in § 886.9.
Cirrus HD-OCT with Retinal Nerve Fiber Layer and Macular Normative Database (K083291)
Submission Summary (Full Text)
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### 1. 510(K) SUMMARY
Date Prepared: March 14, 2013
MAR 1 4 2013
・・
1
### SPONSOR/510(K) OWNER/ MANUFACTURER
Nidek Co., Ltd. 34-14 Maehama, Hiroishi-cho, Gamagori, Aichi, 443-0038 Japan Telephone: +81-533-67-8901 Facsimile: +81-533-67-6628 Email: yoneji_mizuno@nidek.co.jp Establishment Registration Number: 8030392
### OFFICIAL CONTACT PERSON
Lena Sattler Orasi Consulting, LLC. 1667 Ridgewood Rd. Wadsworth, OH 44281 Telephone: (440) 554-3706 Facsimile: (866) 904-4315 E-mail: lena@orasiconsulting.com
### COMMON/USUAL NAME
Optical Coherence Tomography
### PROPRIETARY OR TRADE NAMES
RS-3000
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K12/622
### K121622 510{k) Summary
### CLASSIFICATION INFORMATION
Classification Name: Medical Specialty: Device Class: Classification Panel: Product Codes:
Ophthalmoscope, A-C Powered Ophthalmic II Ophthalmic Device Panel ово
#### PRODUCT CODE: CLASSIFICATION / CFR TITLE
·OBO:
### Class II § 21 CFR 886.1570
#### LEGALLY MARKETED PREDICATE DEVICE
Trade/Device Name: RTVue with Normative Database Applicant: Optovue 510{k} Premarket Notification number: K101505 Classification: Class II FDA Product Code: HLI Establishment Registration number: 3005950902 Trade/Device Name: RTVue CAM with Corneal Power Measurement Applicant: Optovue 510(k) Premarket Notification number: K11505 Classification: Class II FDA Product Code: OBO, MMQ Establishment Registration number: 3005950902 Trade/Device Name: Cirrus HD-OCT with Retinal Nerve Fiber Layer and Macular Normative Database Applicant: Carl Zeiss 510(k) Premarket Notification number: K083291 Classification: Class II FDA Product Code: HLI Establishment Registration number: 2918630
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K121622
#### K121622 510{k) Summary
### GENERAL DEVICE DESCRIPTION
The Nidek Optical Coherence Tomography RS-3000, with Image Filing Software NAVIS-EX. is an ophthalmic instrument to observe and analyze the fundus, and the shape or the lesion of the retina in a non-contact and non-invasive manner. In addition, the anterior segment adapter attached over the objective lens of the main body enables non-invasive and noncontact observation of the shape of the anterior segment of the eye such as the cornea or anterior chamber angle. The image filing software NAVIS-EX permits management and various diagnoses of captured images. When the personal computer (PC) with the NAVIS-EX installed is connected to the RS-3000 through a cable, the image data acquired by the RS-3000 is transmitted. The software offers the functions such as filing, external 1/F, image processing.
### INDICATIONS FOR USE - RS-3000
The Nidek Optical Coherence Tomography RS-3000 including scanning laser ophthalmoscope function with Image Filing Software NAVIS-EX is a non-contact system for imaging the fundus and for axial cross sectional imaging of ocular structures. It is indicated for in vivo imaging and measurement of:
- the retina, retinal nerve fiber layer, and optic disc, and
- . the anterior chamber and cornea (when used with the optional auxiliary anterior chamber adapter),
as an aid in the diagnosis and management of adults having or suspected of having ocular disease.
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K121622
### K121622 510(k) Summary
### DEVICE DESCRIPTION
Nidek Optical Coherence Tomography RS-3000, with Image Filing Software NAVIS-EX, is an ophthalmic instrument to observe and analyze the fundus, and the shape or the lesion of the retina in a non-contact and non-invasive manner. In addition, the anterior segment adapter attached over the objective lens of the main body enables non-invasive and noncontact observation of the shape of the anterior segment of the eye such as the cornea or anterior chamber angle.
By using confocal laser scanning ophthalmoscopy with a 785nm near-infrared light source, the fundus image (hereinafter referred to as SLO image) is obtained; and by optical coherence tomography with an 880 nm infrared light, the cross-sectional image of the fundus (hereinafter referred to as OCT image) is obtained. '
The images captured using the RS-3000 allow observation of the fundus, and the shape, structure, and lesion of the patient's retina. In addition, the anterior segment adapter attached over the objective lens of the main body of the RS-3000 enables non-invasive and non-contact observation of the shape of the anterior segment of the eye such as the cornea or anterior chamber angle. The RS-3000 system is comprised of the following components: Main body, PC, PC monitor, Image Filing Software NAVIS-EX and isolation transformer. The NAVIS-EX software permits the management of various analyses of the captured images.
The image filing software NAVIS-EX permits management and various diagnoses of captured images. When the personal computer (PC) with the NAVIS-EX installed is connected to the RS-3000 through a cable, the image data acquired by the RS-3000 is transmitted. The software offers functions such as filing, external I/F, and Image processing. ﻟﻤﻤﻠﻜﺔ ﺍﻟﻤﺴﺎﺣﺔ ﺍﻟﻤﺴﺘﻘﻠﺔ ﺍﻟﻤﺘﺤﺪﺓ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘﻮﻯ ﺍﻟﻤﺴﺘ
#### SUBSTANTIAL EQUIVALENCE
The Nidek Optical Coherence Tomography RS-3000, with Image Filing Software NAVIS-EX, is similar in technological characteristics, performance and has the same intended use as the predicate device(s). Any differences in technological characteristics between the Nidek Optical Coherence Tomography RS-3000 with Image Filing Software NAVIS-EX and the predicate device do not raise any new questions of safety or effectiveness. Thus, the RS-3000 with Image Filing Software NAVIS-EX is substantially equivalent to the predicate device(s).
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KI21622
5 •
# K121622 510(k) Summary
# COMPARISON TABLE OF TECHNOLOGICAL CHARACTERISTICS
| Substantial Equivalence Comparison Table: RTVue | | |
|-------------------------------------------------------------|----------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------|-----------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------|
| Feature | RS-3000 with NAVIS-EX | RTVue, CA |
| Manufacturer | NIDEK | Optovue |
| 510(k) Number | K121622 | K101505 |
| Classification | 886.1570 | 886.1570 |
| Product Code | OBO | HLI |
| Intended Use | | |
| | The Nidek Optical Coherence<br>Tomography RS-3000 including<br>scanning laser ophthalmoscope<br>function with Image Filing<br>Software NAVIS-EX is a non-<br>contact system for imaging the<br>fundus and for axial cross<br>sectional imaging of ocular<br>structures. It is indicated for in<br>vivo imaging and measurement<br>of:<br>• the retina, retinal nerve fiber<br>layer, and optic disc, and<br>• the anterior chamber and<br>cornea (when used with the<br>optional auxiliary anterior<br>chamber adapter),<br>as an aid in the diagnosis and<br>management of adults having or<br>suspected of having ocular<br>disease. | The RTVue with Normative<br>Database is an optical<br>coherence tomography system<br>indicated for the in vivo<br>imaging and measurement of<br>the retina, retinal nerve fiber<br>layer, and optic disk as an aid<br>in the diagnosis and<br>management of retinal disease.<br>The RTVue with Normative<br>database is also a quantitative<br>tool for the comparison of<br>retina, retinal nerve fiber layer,<br>and optic disc measurements<br>in the human eye to a database<br>of known normal subjects. It is<br>intended for use as a diagnostic<br>device to aid in the detection<br>and management of ocular<br>disease. |
| Performance Features | | |
| Measurement principle | | |
| Imaging of the<br>Fundus/Anterior<br>Segment | Confocal scanning laser<br>ophthalmoscopy for RS-3000 | Near IR observation |
| Tomographic Imaging<br>of the<br>Fundus/Anterior<br>Segment | Spectral Domain OCT | Spectral Domain OCT |
| Scan rate (in OCT Image<br>capture) | 53,000 A-Scan/s | 26,000 A-Scan/s |
| Light source wavelength | | |
| Imaging of the<br>Fundus/Anterior<br>Segment | 785 nm (Diode laser) for RS-<br>3000, | 735 nm (LED) |
| Tomographic Imaging<br>of the<br>Fundus/Anterior<br>Segment | 880 nm (SLD) | 840 nm (SLD) |
| | | |
| Imaging of the Fundus | 25 µm (in the X and Y directions)<br>for RS-3000(SLO) | 25 µm (in the X and Y<br>directions) |
| Tomographic Imaging<br>of the Fundus | 20 µm (in the X and Y<br>directions), 7 µm (in the Z<br>direction) | 15 µm (in the X and Y<br>directions), 5 µm (in the Z<br>direction) |
| Imaging of the<br>Anterior Segment | 50 µm (in the X and Y directions)<br>for RS-3000(SLO) | 70 µm (in the X and Y<br>directions) |
| Tomographic Imaging<br>of the Anterior<br>Segment | 20 µm (in the X and Y<br>directions), 7 µm (in the Z<br>direction) | 15 µm (in the X and Y<br>directions), 5 µm (in the Z<br>direction) |
| Minimum pupil<br>diameter required | φ2.5 mm | φ2.5mm |
| Focus range | -15 D to +10 D | -15 D to +20 D |
| Field of view | | |
| Imaging of the Fundus | 40°× 30 °for RS-3000, | 32°×22° |
| Tomographic Imaging<br>of the Fundus | Scan width:<br>3 mm to 9 mm<br>Scan depth:<br>2.1 mm | Scan width:<br>2 mm to 12 mm<br>Scan depth:<br>2 mm to 2.3 mm |
| Imaging of the<br>Anterior Segment | 14 mm×12 mm | 5.75mm×4.3mm / 12mm×8mm |
| Tomographic Imaging<br>of the Anterior<br>Segment | Scan width:<br>2 mm to 8 mm<br>Scan depth:<br>2.1 mm | Scan width:<br>1 mm to 3 mm<br>/ 2 mm to 6 mm<br>Scan depth:<br>1.96 mm / 2.3 mm |
| Measurement and Analysis | | |
| 3D Volume Rendering | Yes | Yes |
| Retinal Thickness<br>measurement (Total/Inner<br>layer) | Yes | Yes |
| RNFL Thickness<br>measurement | Yes | Yes |
| Optic Disc analysis | Yes | Yes |
| Pachymetry | Yes | Yes |
| Angle analysis | Yes | Yes |
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K121622
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K12/622
# K121622 510(k) Summary
| Substantial Equivalence Comparison Table: Cirrus HD-OCT with Retinal Nerve Fiber Layer and Macular Normative Database | | |
|-----------------------------------------------------------------------------------------------------------------------|------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------|-----------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------|
| Feature | RS-3000 with NAVIS-EX | Cirrus HD-OCT |
| Manufacturer | NIDEK | Carl Zeiss |
| 510(k) Number | K121622 | K083291 |
| Classification | 886.1570 | 886.1570 |
| Product Code | OBO | OBO |
| Intended Use | | |
| | The Nidek Optical Coherence Tomography<br>RS-3000 including scanning laser<br>ophthalmoscope function with Image Filing<br>Software NAVIS-EX is a non-contact system<br>for imaging the fundus and for axial cross<br>sectional imaging of ocular structures. It is<br>indicated for in vivo imaging and<br>measurement of:<br>the retina, retinal nerve fiber layer, and optic disc, and the anterior chamber and cornea (when used with the optional auxiliary anterior chamber adapter), as an aid in the diagnosis and management<br>of adults having or suspected of having<br>ocular disease. | The Cirrus™ HD-OCT is a non-contact, high<br>resolution tomographic and biomicroscopic<br>imaging device. It is indicated for in-vivo<br>viewing, axial cross-sectional, and three<br>dimensional imaging and measurement of<br>anterior and posterior ocular structures,<br>including cornea, retina, retinal fiber layer,<br>macula, and optic disc. The Cirrus HD-OCT<br>with Retinal Nerve Fiber Layer (RNFL) and<br>Macular Normative Database is a<br>quantitative tool for the comparison of<br>retinal nerve fiber layer and the macula in<br>the human retina to a database of known<br>normal subjects. It is intended for use as a<br>diagnostic device to aid in the detection and<br>management of ocular diseases including,<br>but not limited to, macular holes, cystoid<br>macular edema, diabetic retinopathy, age-<br>related macular degeneration, and<br>glaucoma. |
| Performance Features | | |
| Measurement<br>principle | Confocal scanning laser ophthalmoscopy | Confocal scanning laser ophthalmoscopy |
| Light source<br>wavelength | 785 nm (Diode laser) | 750 nm (SLD) |
| Optical power | 320μW | <1.5mW |
| Frame rate | 10fps | >20Hz |
| Field of view | 40°x 30° | 36°× 30° |
| Lateral resolution | 25 μm | 25 μm |
| Focus adjustment<br>range | -15D to +10D | -20D to +20D |
| Detector type | APD | Line…
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1. Search: exact and fuzzy
Type a phrase like "coronary artery calcification" into the search box. You get two kinds of results. Exact results match the literal phrase — prefix searches work ("coronary artery calcificati") but suffix searches do not. Fuzzy results match on the meaning and intent of your phrase rather than the exact words, and are sorted by relevance score. Hover over the Exact or Fuzzy badge on any row to see exactly why it matched.
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Exact matches on the literal phrase (prefix search works, suffix does not). Fuzzy matches on the meaning and intent of the phrase rather than the exact words. Hover over the badge on any row to see why it matched.
You search "coronary artery calcification" and want only software devices with AI. What two filters do you apply?
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Scroll right in the results table. The intended use is extracted for you — no need to open the PDF. The device story gives a high-level snapshot of what the device does and how it's used. The AI Performance sub-table shows each output name, acceptance criteria, observed values, and development/test dataset descriptions — the same format Innolitics uses for regulatory strategy outputs, and the fastest high-level fingerprint of an AI device. It is AI-generated but has been very reliable in practice.
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Scroll right in the search results table. The intended use column is extracted for you; no need to dig into the 510(k) summary PDF.
What does the AI Performance sub-table show, and why is it useful?
Output name, acceptance criteria, observed values, development dataset description, and test dataset description. It's the same format we use for regulatory strategy output and Fast 510(k) input, and the fastest high-level fingerprint of an AI device. AI-generated but reliable in practice.
3. Judging fuzzy relevance
Fuzzy results trail off in relevance as you scroll. Use three signals to decide how far down to go: the fuzzy badge explanations, the intended use column, and whether your target output (e.g., Cobb angle) still appears in the AI Performance sub-table. Once it stops appearing, you're past the relevant zone. A top hit with a low score (~0.4) and a stretched explanation is a hint the closest predicates are far away — the project may be headed for De Novo. Note the fuzzy search is a pattern match: it doesn't handle negation ("not") well, and hardware devices can appear — filter by SaMD/AI ML to cut them.
How do you judge how far down fuzzy search results to go?
Use the relevancy signals: the fuzzy badge explanations, the intended use column, and whether the target output (e.g., Cobb angle) still appears in the AI Performance sub-table. Once it stops appearing, results are trailing off in relevancy.
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Select multiple rows in the results table (aim for under ~10), then open the PDF Viewer tab. Ask one question — it goes to all selected devices in parallel, each with citations. This is the fastest way to compare and contrast devices: training data, PCCP scope, how they handled adding new scanners, and so on.
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Open the Predicates tab for a family-tree view of predicate relationships. Click a node to trace its parents and children; selections from search carry over pre-selected. Commonly predicated devices are worth reading — a lot of people predicated them for a reason. The visual lineage is also handy on client calls, e.g. to show how a predicate family evolved and justify why your predicate still holds.
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Try it yourself
Head to the search page and work through a few of these AI/ML fuzzy searches to build intuition: perivascular fat on CT · aortic valve calcification opportunistic screening on noncontrast CT · breast cancer prediction on digital pathology slides · autism detection · gestational age prediction · a hearing aid that can also detect a pulse · foundation model based analysis of ECG · large language models · penetration test. Watch how the relevance scores, intended use, and AI Performance tables tell you when results stop being meaningful.