{"id":376,"date":"2026-09-10T18:38:00","date_gmt":"2026-09-10T18:38:00","guid":{"rendered":"https:\/\/www.fullarchmasters.com\/articles\/immediate-load-full-arch-workflow"},"modified":"2026-09-10T19:08:13","modified_gmt":"2026-09-10T19:08:13","slug":"immediate-load-full-arch-workflow","status":"publish","type":"post","link":"https:\/\/www.fullarchmasters.com\/articles\/immediate-load-full-arch-workflow","title":{"rendered":"The Immediate-Load Full-Arch Lab Workflow: A Guide"},"content":{"rendered":"<p><em>Written by: Ryan Dunlop, CEO and Founder of Full Arch Masters and graduate from the Harvard School of Dental Medicine<\/em><\/p>\n<h2 id=\"key-takeaways\">Key Takeaways<\/h2>\n<ul>\n<li>The laboratory converts preoperative digital records into a functional, screw-retained PMMA provisional within hours, which makes same-day delivery predictable and profitable.<\/li>\n<li>A disciplined seven-step digital workflow of preoperative records, photogrammetry or intraoral scanning, CBCT planning, exocad design, immediate-load conversion, final zirconia finishing, and FP1 scaling supports passive fit and clinical success.<\/li>\n<li>Photogrammetry delivers higher implant-position accuracy than intraoral scanning, which reduces stitching errors and supports passive-fit provisionals.<\/li>\n<li>Milled PMMA remains the benchmark material for high-load immediate-load provisionals, with the highest flexural strength, lowest wear, and fast turnaround compared with 3D-printed resins.<\/li>\n<li>Hands-on training with <a href=\"https:\/\/www.fullarchmasters.com\/\" target=\"_blank\">Full Arch Masters<\/a> helps teams implement the complete immediate-load full-arch lab workflow.<\/li>\n<\/ul>\n<h2>Prerequisites and Context for Same-Day Full-Arch Cases<\/h2>\n<p>This guide speaks to lab technicians, whether in-house or standalone, and to dentists who perform full-arch cases with an on-site lab. Everyone on the team benefits from a shared vocabulary before they move through the seven phases.<\/p>\n<p>Immediate load places a restoration at the time of surgery with occlusal contact. Full-arch describes a complete arch prosthesis usually supported by four to six implants. CBCT (cone-beam computed tomography) supplies three-dimensional bone and anatomy data, while intraoral scanning (IOS) records surface geometry digitally. Photogrammetry uses triangulation from multiple photographs to determine exact implant positions in three-dimensional space. FP1, FP2, and FP3 classify prostheses by tissue replacement, from crown-only to crown, root, and surrounding tissue. exocad provides the CAD environment for prosthetic design. PMMA (polymethyl methacrylate) serves as the standard provisional material, and zirconia is the primary definitive restorative material. Screw-retained prostheses attach via screws rather than cement.<\/p>\n<p>In-house labs and standalone labs share the same goal but hold different responsibilities. The lab technician owns design and fabrication. The clinical team owns data capture. Teams that define this coordination before surgery day give patients a far better chance of walking out with teeth instead of leaving without a provisional.<\/p>\n<h2>The 7-Step Immediate-Load Full-Arch Lab Workflow<\/h2>\n<ol>\n<li><strong>Preoperative Records and Data Acquisition.<\/strong> The lab\u2019s work begins before surgery. Required inputs include CBCT, intraoral scans, clinical photos, and a digital smile design. The lab reviews incoming files for completeness before surgery day and flags incomplete scans or inconsistencies while the patient remains in the practice. Clear digital record requirements should be agreed on with the clinical team in advance, including verified implant-position data, intraoral scans, soft tissue information, bite records, and implant specifications. <a href=\"https:\/\/onlinelibrary.wiley.com\/doi\/10.1111\/jerd.70147\" target=\"_blank\" rel=\"noindex nofollow\">A 2026 clinical workflow by Pelekanos et al. in the Journal of Esthetic and Restorative Dentistry begins with acquisition and registration of complementary digital data, CBCT and intraoral scans, to create a virtual patient representation<\/a>. This confirms that the lab\u2019s preoperative review anchors the entire case.<\/li>\n<li><strong>Photogrammetry and Intraoral Scanning.<\/strong> After implant placement, the team captures exact multi-unit abutment (MUA) or implant coordinates with photogrammetry systems such as iCam4D or with specialized scan bodies. Photogrammetry records inter-implant spatial relationships with high accuracy and is less affected by blood or saliva than conventional scanning, which makes it valuable for immediate loading. A separate IOS records soft tissue contours and occlusal relationships. The lab receives both datasets and merges them in CAD software. Accuracy at this merge step directly affects passive fit.<\/li>\n<li><strong>CBCT and Digital Treatment Planning.<\/strong> CBCT segmentation is fused with intraoral scan data to define the final prosthesis design. Implant planning software such as CoDiagnostiX guides implant position relative to the prosthetic plan. The lab uses this merged dataset to design surgical guides and the provisional prosthesis around predicted implant positions. In-house labs coordinate closely with the surgical team so the digital plan transfers accurately to the operative field.<\/li>\n<li><strong>exocad Design.<\/strong> The provisional arch is designed in exocad using verified implant positions, soft tissue contours, and the preoperative virtual wax-up. Key design considerations include screw access channel positioning, clearance for temporary cylinders, and pontic design for soft tissue support. The occlusal scheme must distribute load evenly across all attachment points. The intaglio surface, the tissue-facing surface that shapes the emergence profile, requires precise design because it governs soft tissue architecture during the provisional phase.<\/li>\n<li><strong>Immediate-Load Conversion.<\/strong> The provisional is fabricated from PMMA via milling or 3D printing. <a href=\"https:\/\/pubmed.ncbi.nlm.nih.gov\/42035479\" target=\"_blank\" rel=\"noindex nofollow\">A 2026 study in Clinical and Experimental Dental Research found that milled PMMA achieved the highest mean flexural strength at 115.5 \u00b1 5.3 MPa, the lowest volume loss in wear testing at 2.5 \u00b1 1.3 mm\u00b3, and the lowest monomer release among tested materials<\/a>. These findings support milled PMMA as the benchmark for high-load full-arch immediates. Temporary titanium cylinders are inserted, the prosthesis is finished and characterized, and fit is verified on surgical analogs before delivery.<\/li>\n<li><strong>Final Zirconia Design and Finishing.<\/strong> After the provisional phase, typically three to six months, the team designs the definitive restoration in monolithic or layered zirconia. The provisional serves as a real-world test for occlusion, phonetics, and soft tissue contours. The final design replicates the emergence profile established by the provisional. Green-stage contouring and ceramic layering support aesthetic outcomes. Fit and occlusion are verified before delivery.<\/li>\n<li><strong>FP1-Specific Design and Workflow Scaling.<\/strong> FP1 restorations, where the prosthesis emerges directly from the implant without visible tissue replacement, require distinct design choices. <a href=\"https:\/\/onlinelibrary.wiley.com\/doi\/10.1111\/jerd.70147\" target=\"_blank\" rel=\"noindex nofollow\">Pelekanos et al. (2026) emphasize that preserving gingival zeniths and papilla architecture is critical in FP1 restorations to achieve undisturbed soft tissue healing in accordance with the final design<\/a>. Root banking supports soft tissue architecture, and precise emergence profile management remains essential. This phase also introduces scaling: standardizing workflows, training team members, and increasing case volume while maintaining quality.<\/li>\n<\/ol>\n<p><a href=\"https:\/\/www.fullarchmasters.com\/\" target=\"_blank\">Train on this seven-step workflow with hands-on Full Arch Masters lab instruction.<\/a><\/p>\n<figure style=\"text-align: center\"><video src=\"https:\/\/cdn.aigrowthmarketer.co\/1782330219919-bc8c0ac4c3da.mp4\" style=\"max-height: 500px\" autoplay=\"\" loop=\"\" muted=\"\" playsinline=\"\"><\/video><figcaption><em>Full Arch Masters alumni deliver same-day teeth in 2 to 4 hours and report adding $1M+ per year to practice revenue.<\/em><\/figcaption><\/figure>\n<h2>Intraoperative Data Capture Within the Workflow: Photogrammetry vs. Scan Bodies<\/h2>\n<p>Step 2 of the workflow hinges on how implant positions are captured after surgery, and that choice strongly influences passive fit. Two approaches dominate current practice: photogrammetry and intraoral scanning with scan bodies.<\/p>\n<p>Photogrammetry uses multiple photographs to determine the three-dimensional position of implants via triangulation. Special scan bodies with unique reference markers attach to the implants. The camera captures them from different angles, and software identifies the same markers across all photographs to calculate exact implant positions. This process removes image stitching and achieves very high accuracy for full-arch cases. The PIC system shows trueness values of 10\u201349 \u03bcm and precision of 5\u201365 \u03bcm, while the iCam4D system demonstrates trueness of 24\u201377 \u03bcm and precision of 2\u2013203 \u03bcm.<\/p>\n<p>Intraoral scanning stitches sequential surface images together, so errors accumulate across long edentulous spans with limited stable anatomical landmarks. In an in vitro study by Ma et al. on a six-implant edentulous model, photogrammetry showed the highest trueness at 29 \u03bcm and was significantly more accurate than both conventional and new-generation intraoral scanners. In a study by Kosago et al. on a mandibular five-implant model, photogrammetry demonstrated trueness of 48.7 \u03bcm and excellent precision below 5.5 \u03bcm. A 2025 systematic review and meta-analysis by Pozzi et al. provided strong statistical evidence that photogrammetry is more accurate than intraoral scanning.<\/p>\n<p>Photogrammetry captures only implant positions, so a supplementary IOS still records soft tissue contours and occlusal relationships. The lab then merges both datasets in CAD software. In vitro data supports this merge step, and careful execution protects accuracy.<\/p>\n<p>Full Arch Masters integrates photogrammetry into its workflow using the iCam4D system. For multi-implant cases where passive fit matters most, photogrammetry is the preferred approach. Scan bodies may work for simpler cases or when photogrammetry equipment is unavailable, and teams should understand the accuracy tradeoff before they choose.<\/p>\n<h2>Fabrication Methods for Same-Day Provisionals: Milling vs. 3D Printing<\/h2>\n<p>Both milling and 3D printing can produce immediate-load provisionals, and the choice depends on mechanical requirements, provisional duration, and available turnaround time.<\/p>\n<p>Milled PMMA remains the benchmark for high-load full-arch immediates. <a href=\"https:\/\/pubmed.ncbi.nlm.nih.gov\/42035479\" target=\"_blank\" rel=\"noindex nofollow\">A 2026 study in Clinical and Experimental Dental Research found milled PMMA (Kerox Premia) achieved flexural strength of 115.5 \u00b1 5.3 MPa versus 60.5 \u00b1 3.8 MPa for 3D-printed resin (FreePrint Splint2.0 printed at 90\u00b0), with milled PMMA also demonstrating the lowest volume loss in wear testing and lowest monomer release.<\/a> <a href=\"https:\/\/worlddentallab.com\/cad-cam-dental-lab-guide\" target=\"_blank\" rel=\"noindex nofollow\">Milling PMMA is two to three times faster than milling zirconia, requires no sintering, and produces a full-arch provisional in under an hour from a digital file.<\/a><\/p>\n<p>3D printing supports rapid turnaround for same-day workflows. <a href=\"https:\/\/revmaterialeplastice.ro\/articles\/12750\" target=\"_blank\" rel=\"noindex nofollow\">A 2026 study by Ongul and Gokcen-Rohlig found that 3D-printed resins at 0\u00b0 orientation showed statistically significantly less wear on opposing natural teeth than the 45\u00b0 group, and that milled PMMA provided the best dental arch fit at 0.058 \u00b1 0.052 mm deviation while 3D-printed groups showed clinically acceptable fit.<\/a> Print orientation and post-processing protocol materially affect mechanical performance.<\/p>\n<p>Material selection should match provisional duration. PMMA suits three-to-six-month healing periods. High-strength composite blocks such as 3M Lava Ultimate or GC Cerasmart offer better wear resistance for provisionals serving longer than six months, while a PEEK framework veneered with composite provides structural performance for twelve-plus-month service or high-load cases.<\/p>\n<h2>Common Pitfalls in Immediate-Load Cases and How to Avoid Them<\/h2>\n<p>Immediate-load full-arch cases tend to fail in predictable ways. Each common pitfall shows specific signs, stems from identifiable causes, and responds to targeted corrective actions.<\/p>\n<p><strong>Scan Body Inaccuracy.<\/strong> When a provisional does not seat passively or shows visible gaps at implant connections, scan body problems often sit at the root. Typical causes include scan body wear, improper seating, and scanning protocol errors. <a href=\"https:\/\/pmc.ncbi.nlm.nih.gov\/articles\/PMC13177126\" target=\"_blank\" rel=\"noindex nofollow\">Digital intraoral scanners carry limitations including potential stitching errors, scan body design issues, implant angulation effects, and reduced accuracy in edentulous arches with multiple implants.<\/a> The practical response is to verify scan body integrity before use, prefer photogrammetry for multi-implant cases, and agree on standardized scanning protocols with the clinical team before surgery day.<\/p>\n<p><strong>Provisional Misfit.<\/strong> Signs include a prosthesis that requires force to seat, stress at the implant interface, and screw loosening. <a href=\"https:\/\/biodentlaboratory.com\/all-on-4-dental-lab-requirements-materials-timeline-case-submission\" target=\"_blank\" rel=\"noindex nofollow\">A prosthesis that does not seat passively, requiring force to seat or creating stress at the implant interface, represents a clinical problem that originates in the laboratory<\/a>. Labs should verify fit on surgical analogs before delivery, use verification jigs, and treat passive fit as a core quality standard. Misfit introduces loading stresses that compromise osseointegration.<\/p>\n<p><strong>Material Selection Errors.<\/strong> Signs include premature wear, fracture, and patient discomfort. These problems often arise when teams use PMMA beyond its service life or choose inadequate reinforcement for the case\u2019s load demands. Matching material to provisional duration, using the framework described in the fabrication section, reduces these failures.<\/p>\n<p><strong>Finishing Challenges.<\/strong> Signs include rough surfaces, poor aesthetics, and tissue irritation. <a href=\"https:\/\/revmaterialeplastice.ro\/articles\/12750\" target=\"_blank\" rel=\"noindex nofollow\">Surface roughness values for all tested occlusal device materials in a 2026 study ranged from 0.038 \u03bcm to 0.087 \u03bcm Ra, all below the 0.2 \u03bcm threshold that promotes bacterial colonization.<\/a> Systematic finishing protocols and verification of surface smoothness before delivery protect both tissue health and appearance.<\/p>\n<p><strong>Occlusal Issues.<\/strong> Signs include uneven load distribution, lateral excursive contacts, and implant overload. For immediate loading with occlusal contact, the occlusal scheme must distribute loads evenly across all attachment points and eliminate lateral excursive contacts that could overload individual implants; generic occlusion designs do not meet this requirement.<\/p>\n<h2>Quality Control and Delivery Checklist<\/h2>\n<p>Before any immediate-load provisional leaves the lab, teams should confirm these checkpoints.<\/p>\n<ul>\n<li>Passive fit confirmed on surgical analogs, with the prosthesis seating without force at all attachment points<\/li>\n<li>Screw access channels functional and consistently positioned<\/li>\n<li>Occlusion verified with even load distribution and no lateral excursive contacts<\/li>\n<li>Intaglio surface smooth and polished below 0.2 \u03bcm Ra<\/li>\n<li>Emergence profile matching the designed soft tissue contours<\/li>\n<li>Prosthesis sterilized or disinfected according to protocol before delivery<\/li>\n<li>Case details documented for final restoration design<\/li>\n<li>Clinical team notified of implant system, torque values, and any intraoperative adjustments that affect the design<\/li>\n<\/ul>\n<h2>Measuring Success in the Full-Arch Lab Workflow<\/h2>\n<p>Objective indicators of workflow performance include turnaround time from data receipt to provisional delivery, remake rate with a target below 5%, patient satisfaction with provisional aesthetics and function, and the rate of chairside adjustments required at delivery.<\/p>\n<p>Teams can track these metrics with a case log that timestamps each workflow phase. Quarterly review of remake reasons highlights systemic issues instead of isolated errors. <a href=\"https:\/\/pmc.ncbi.nlm.nih.gov\/articles\/PMC13207077\" target=\"_blank\" rel=\"noindex nofollow\">A 2026 Italian Consensus Conference on full-arch implant rehabilitations, involving 29 experts using a modified Delphi process, emphasized that risk-stratified maintenance protocols are associated with a reduction in peri-implantitis incidence<\/a>. The same principle of structured, risk-informed review applies to lab workflow quality control.<\/p>\n<h2>Advanced Considerations for Scaling Full-Arch Workflows<\/h2>\n<p>Labs that move from occasional cases to consistent volume benefit from standardizing digital record requirements, establishing clear submission protocols with clinical partners, and investing in redundant production capacity so equipment downtime does not cause delivery failures. Turnaround time depends on more than physical location. In-house workflows can still be delayed by equipment availability, staff workload, software problems, maintenance, or limited internal expertise.<\/p>\n<p>FP1 cases require design skills that differ meaningfully from FP2 and FP3 workflows. Full Arch Masters\u2019 FP1 Course dedicates two days to FP1-specific design instruction for lab technicians, covering root banking, emergence profile management, and soft tissue architecture preservation.<\/p>\n<p>Photogrammetry also supports laboratory quality control through the \u201cFitcheck\u201d procedure. The finished prosthesis attaches to implant analogs, a photogrammetry scan is performed, and the original implant scan is overlaid with the finished prosthesis scan in software. This comparison detects manufacturing errors from milling, zirconia sintering shrinkage, or abutment cementation inaccuracies. Full Arch Masters\u2019 Design and Finish Course provides four days of dedicated lab training, with two days of exocad design and two days of aesthetic finishing on zirconia with MIYO ceramic layering, to help lab technicians build these skills systematically.<\/p>\n<p><a href=\"https:\/\/www.fullarchmasters.com\/\" target=\"_blank\">Explore Full Arch Masters courses to deepen your immediate-load full-arch lab expertise.<\/a><\/p>\n<h2>Frequently Asked Questions<\/h2>\n<h3>What materials are used for immediate-load full-arch provisionals?<\/h3>\n<p>Milled PMMA is the most common material because it mills quickly, adjusts easily, polishes well, and offers superior accuracy and lower porosity than pressed or injected acrylics. For provisionals serving six or more months, high-strength composite blocks such as 3M Lava Ultimate or GC Cerasmart provide better wear resistance. For twelve-plus-month service or high-load cases, a PEEK framework veneered with composite offers strong structural performance. Material selection should always reflect the expected provisional duration and the patient\u2019s occlusal demands.<\/p>\n<h3>How do I ensure passive fit?<\/h3>\n<p>Passive fit means the absence of strain at the implant-prosthesis interface. Labs should verify that the provisional seats on surgical analogs without force at all attachment points before delivery. Photogrammetry for implant-position capture, when available, supports this goal through superior accuracy compared with intraoral scanning. Fit confirmation on a verification jig before delivery adds another safeguard. A prosthesis that requires force to seat introduces loading stresses that compromise osseointegration and cannot be corrected at the chair.<\/p>\n<h3>How long does the immediate-load lab workflow take?<\/h3>\n<p>With a fully digital workflow and a coordinated team, the time from data receipt to a finished provisional varies with the specific workflow, equipment, and case complexity. <a href=\"https:\/\/worlddentallab.com\/cad-cam-dental-lab-guide\" target=\"_blank\" rel=\"noindex nofollow\">Milled PMMA can be produced in under an hour from a digital file<\/a>. The main constraint is usually the accuracy and completeness of incoming data. Incomplete scans, missing bite records, or unverified implant-position data create delays that fabrication speed cannot overcome.<\/p>\n<h3>What is the difference between photogrammetry and intraoral scanning for full-arch cases?<\/h3>\n<p>Photogrammetry captures implant positions via triangulation from multiple photographs, which removes stitching errors and delivers higher accuracy for full-arch work. Intraoral scanning stitches sequential images together, so errors accumulate across long edentulous spans with limited stable anatomical landmarks. Photogrammetry captures only implant positions, so a supplementary intraoral scan still records soft tissue contours and occlusal relationships. Both datasets must be merged in CAD software before design begins.<\/p>\n<h3>What records does the lab need from the clinical team on surgery day?<\/h3>\n<p>The lab needs verified implant-position data, either from photogrammetry or scan body capture, along with intraoral scans of soft tissue, clinical photos, bite records, treatment-planning information, and implant and restorative specifications. These requirements should be established with the clinical team before surgery day. The lab should review incoming files immediately upon receipt to identify gaps while the patient is still in the practice, when corrections remain possible.<\/p>\n<h2>The Lab\u2019s Role in Same-Day Full-Arch Success<\/h2>\n<p>The immediate-load full-arch lab workflow functions as a seven-step integrated system that runs from preoperative records through FP1-specific design and workflow scaling. The lab\u2019s disciplined execution at each phase shapes whether same-day delivery becomes predictable or devolves into remakes and repeated adjustments.<\/p>\n<p>Milled PMMA continues to anchor provisional material selection, and photogrammetry provides a powerful tool for accurate implant-position capture. Passive fit sits at the center of clinical success. Lab technicians who understand all seven phases, rather than focusing only on fabrication, become the professionals who make reliable same-day teeth possible.<\/p>\n<p><a href=\"https:\/\/www.fullarchmasters.com\/\" target=\"_blank\">Ready to bring the FAM Method into your practice? Register for an upcoming Full Arch Masters course.<\/a><\/p>\n<p>For practices ready to operationalize full-arch at scale, <a href=\"https:\/\/www.fullarchmasters.com\/courses#TreatmentCoordinatorBootcamp\" target=\"_blank\">the Treatment Coordinator Bootcamp trains your front office on the closing system that maintains an 80% conversion rate<\/a>. <a href=\"https:\/\/pci.jotform.com\/form\/250515014933146\" target=\"_blank\" rel=\"noindex nofollow\">Register here.<\/a><\/p>\n<section data-read-next=\"true\">\n<h2>Read Next<\/h2>\n<ul>\n<li><a href=\"https:\/\/www.fullarchmasters.com\/articles\/immediate-load-full-arch-implants\" target=\"_blank\">Same-Day Full-Arch Delivery: The FAM Digital Workflow<\/a><\/li>\n<li><a href=\"https:\/\/www.fullarchmasters.com\/articles\/dental-lab-full-arch-workflow\" target=\"_blank\">Full Arch Digital Workflow for Dental Lab Technicians<\/a><\/li>\n<li><a href=\"https:\/\/www.fullarchmasters.com\/articles\/digital-full-arch-workflow\" target=\"_blank\">Dental Lab Technician Digital Full Arch Workflow Guide<\/a><\/li>\n<li><a href=\"https:\/\/www.fullarchmasters.com\/articles\/digital-full-arch-workflow-steps\" target=\"_blank\">Digital Same-Day Full Arch Workflow: 7 Steps Explained<\/a><\/li>\n<li><a href=\"https:\/\/www.fullarchmasters.com\/articles\/digital-full-arch-implant-workflow\" target=\"_blank\">Step-by-Step Digital Full Arch Implant Workflow<\/a><\/li>\n<\/ul>\n<\/section>\n","protected":false},"excerpt":{"rendered":"<p>Learn the 7-step immediate-load full-arch lab workflow for same-day provisionals. Full Arch Masters delivers expert guidance \u2014 start today.<\/p>\n","protected":false},"author":119,"featured_media":375,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"inline_featured_image":false,"footnotes":""},"categories":[1],"tags":[],"class_list":["post-376","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-uncategorized"],"_links":{"self":[{"href":"https:\/\/www.fullarchmasters.com\/articles\/wp-json\/wp\/v2\/posts\/376","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.fullarchmasters.com\/articles\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.fullarchmasters.com\/articles\/wp-json\/wp\/v2\/types\/post"}],"replies":[{"embeddable":true,"href":"https:\/\/www.fullarchmasters.com\/articles\/wp-json\/wp\/v2\/comments?post=376"}],"version-history":[{"count":1,"href":"https:\/\/www.fullarchmasters.com\/articles\/wp-json\/wp\/v2\/posts\/376\/revisions"}],"predecessor-version":[{"id":379,"href":"https:\/\/www.fullarchmasters.com\/articles\/wp-json\/wp\/v2\/posts\/376\/revisions\/379"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/www.fullarchmasters.com\/articles\/wp-json\/wp\/v2\/media\/375"}],"wp:attachment":[{"href":"https:\/\/www.fullarchmasters.com\/articles\/wp-json\/wp\/v2\/media?parent=376"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.fullarchmasters.com\/articles\/wp-json\/wp\/v2\/categories?post=376"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.fullarchmasters.com\/articles\/wp-json\/wp\/v2\/tags?post=376"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}