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30 docs tagged with "Image capture"

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Camera calibration

How to calibrate a camera model before study imaging, including the calibration board, camera requirements, capture procedure, and submission process.

Clinical Trial Experience

Legit.Health AI scoring is deployed in Phase 2 and Phase 3 clinical trials with top-10 pharma companies across 130+ sites in 12+ countries, spanning psoriasis, acne, alopecia, and atopic dermatitis.

Clinical Trial Workflow and Data Integration

End-to-end clinical trial workflow for acne severity endpoints, covering protocol design, patient enrollment, image capture, AI scoring, severity tracking, data export, EDC integration, and decentralised trial support.

Clinical Trial Workflow and Data Integration

End-to-end clinical trial workflow for SALT endpoints, covering protocol design, site setup, patient enrolment, in-clinic scalp capture, automated SALT scoring, change from baseline and alerts, data export, and EDC integration.

Clinical Trial Workflow and Data Integration

End-to-end workflow for cutaneous lupus erythematosus severity endpoints, covering retrospective image analysis versus prospective CLASI reconstruction, protocol design, capture, scoring, review, longitudinal tracking, and EDC data export.

Clinical Trial Workflow and Data Integration

End-to-end clinical trial workflow for hidradenitis suppurativa severity endpoints, covering protocol design, site setup, patient enrolment, in-clinic image capture, automated IHS4 and HiSCR, and EDC data export.

Clinical Trial Workflow and Data Integration

End-to-end clinical trial workflow for PASI endpoints, covering protocol design, site setup, patient enrolment, image capture, AI scoring, PASI response milestones, data export, and EDC integration.

Image capture

Standardised steps for site staff to place calibration markers and capture lesion photographs, with a do and do-not checklist, how the number of detected markers is reported back, the printable one-page capture guide issued per project, correct and incorrect placement examples by condition, troubleshooting, and storage guidance.

Imaging Protocol

How scalp images are captured for automated SALT scoring: the standard four-quadrant set, DIQA quality control, patient preparation, and site standardisation.

Imaging Protocol

How atopic dermatitis images are captured for automated SCORAD and EASI scoring: the standard body-perspective and close-up set, DIQA quality control, patient preparation, and site standardisation.

Imaging Protocol

How hidradenitis suppurativa images are captured for automated IHS4 and HiSCR: the standard capture regions, photographed only where there are lesions, framing and lighting rules, DIQA quality control, patient preparation and anonymisation.

Imaging Protocol

How psoriasis images are captured for automated PASI scoring: the standard body-perspective and close-up set, DIQA quality control, patient preparation, and site standardisation.

Imaging Protocol: Region Capture, Traceability, and Calibration

Image capture protocol for cutaneous lupus erythematosus clinical trials, covering the 13-region CLASI capture set, target lesions, the metadata required to assemble a CLASI score, DIQA quality control, colour and scale calibration for erythema, pigmentation and lesion area, and facial anonymization.

index

How calibration markers give the Legit.Health platform a known reference for measuring lesion surface area, and for calibrating colour across visits in dermatology clinical trials.

Known Limitations

Transparent documentation of what the AI acne severity scoring can and cannot do, including scope boundaries, validation gaps, and how each limitation is managed.

Known Limitations

Transparent documentation of what AI CLASI component scoring can and cannot do in cutaneous lupus erythematosus, covering the items not derived from an image, the scarring and alopecia boundaries, region traceability, skin phototype, and CLE-specific validation status.

Known Limitations

Transparent documentation of what the automated IHS4 scoring for hidradenitis suppurativa can and cannot do, including the constraints of photograph-based lesion counting and how each limitation is managed.

Known Limitations

Transparent documentation of what the AI psoriasis severity scoring can and cannot do, including the inherent constraints of photograph-based PASI assessment and how each limitation is managed.

Marker specifications

The physical specification of the Legit.Health Color Multi-Marker, its black and white borders, the 5 by 5 colour-patch grid, and the requirements a marker must meet for reliable automated detection.

Sample Outputs and Deliverables

Concrete examples of what sponsors, CROs, and investigators receive from acne severity assessments: per-visit AI reports with lesion detection overlays, longitudinal severity tracking, and structured EDC data exports.

Sample Outputs and Deliverables

What sponsors, CROs and investigators receive from a cutaneous lupus erythematosus assessment. A per-visit report with real device outputs, the repigmentation signal CLASI-D cannot express, segmentation overlays, and structured EDC export fields.

Scoring Methodology: CLASI for Cutaneous Lupus Erythematosus

Item-by-item technical detail on how the AI quantifies the CLASI Activity and CLASI Damage components, the 13-region structure, scale alignment between sign models and CLASI item scales, and how per-image values aggregate into a CLASI score.

Worked Example: From Capture to Scored Report

The psoriasis assessment sequence step by step, from the eleven capture screens the subject sees, through the images they submit, to the segmentation overlays the device returns, the scored PASI report format, and the automatic response-milestone alert.